WO2024002359A1 - 防火装置、氧疗仪及通气治疗系统 - Google Patents
防火装置、氧疗仪及通气治疗系统 Download PDFInfo
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- WO2024002359A1 WO2024002359A1 PCT/CN2023/105040 CN2023105040W WO2024002359A1 WO 2024002359 A1 WO2024002359 A1 WO 2024002359A1 CN 2023105040 W CN2023105040 W CN 2023105040W WO 2024002359 A1 WO2024002359 A1 WO 2024002359A1
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- valve body
- opening
- fluid channel
- fusible
- elastic
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M16/00—Devices for influencing the respiratory system of patients by gas treatment, e.g. ventilators; Tracheal tubes
- A61M16/0087—Environmental safety or protection means, e.g. preventing explosion
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16K—VALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
- F16K17/00—Safety valves; Equalising valves, e.g. pressure relief valves
- F16K17/36—Safety valves; Equalising valves, e.g. pressure relief valves actuated in consequence of extraneous circumstances, e.g. shock, change of position
- F16K17/38—Safety valves; Equalising valves, e.g. pressure relief valves actuated in consequence of extraneous circumstances, e.g. shock, change of position of excessive temperature
- F16K17/383—Safety valves; Equalising valves, e.g. pressure relief valves actuated in consequence of extraneous circumstances, e.g. shock, change of position of excessive temperature the valve comprising fusible, softening or meltable elements, e.g. used as link, blocking element, seal, closure plug
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M16/00—Devices for influencing the respiratory system of patients by gas treatment, e.g. ventilators; Tracheal tubes
- A61M16/0003—Accessories therefor, e.g. sensors, vibrators, negative pressure
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M16/00—Devices for influencing the respiratory system of patients by gas treatment, e.g. ventilators; Tracheal tubes
- A61M16/0057—Pumps therefor
- A61M16/0066—Blowers or centrifugal pumps
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M16/00—Devices for influencing the respiratory system of patients by gas treatment, e.g. ventilators; Tracheal tubes
- A61M16/08—Bellows; Connecting tubes ; Water traps; Patient circuits
- A61M16/0816—Joints or connectors
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M16/00—Devices for influencing the respiratory system of patients by gas treatment, e.g. ventilators; Tracheal tubes
- A61M16/20—Valves specially adapted to medical respiratory devices
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16K—VALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
- F16K15/00—Check valves
- F16K15/02—Check valves with guided rigid valve members
- F16K15/025—Check valves with guided rigid valve members the valve being loaded by a spring
- F16K15/026—Check valves with guided rigid valve members the valve being loaded by a spring the valve member being a movable body around which the medium flows when the valve is open
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16K—VALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
- F16K15/00—Check valves
- F16K15/02—Check valves with guided rigid valve members
- F16K15/06—Check valves with guided rigid valve members with guided stems
- F16K15/063—Check valves with guided rigid valve members with guided stems the valve being loaded by a spring
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16K—VALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
- F16K17/00—Safety valves; Equalising valves, e.g. pressure relief valves
- F16K17/20—Excess-flow valves
- F16K17/22—Excess-flow valves actuated by the difference of pressure between two places in the flow line
- F16K17/24—Excess-flow valves actuated by the difference of pressure between two places in the flow line acting directly on the cutting-off member
- F16K17/26—Excess-flow valves actuated by the difference of pressure between two places in the flow line acting directly on the cutting-off member operating in either direction
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16K—VALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
- F16K17/00—Safety valves; Equalising valves, e.g. pressure relief valves
- F16K17/20—Excess-flow valves
- F16K17/22—Excess-flow valves actuated by the difference of pressure between two places in the flow line
- F16K17/24—Excess-flow valves actuated by the difference of pressure between two places in the flow line acting directly on the cutting-off member
- F16K17/28—Excess-flow valves actuated by the difference of pressure between two places in the flow line acting directly on the cutting-off member operating in one direction only
- F16K17/30—Excess-flow valves actuated by the difference of pressure between two places in the flow line acting directly on the cutting-off member operating in one direction only spring-loaded
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16K—VALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
- F16K17/00—Safety valves; Equalising valves, e.g. pressure relief valves
- F16K17/36—Safety valves; Equalising valves, e.g. pressure relief valves actuated in consequence of extraneous circumstances, e.g. shock, change of position
- F16K17/38—Safety valves; Equalising valves, e.g. pressure relief valves actuated in consequence of extraneous circumstances, e.g. shock, change of position of excessive temperature
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16K—VALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
- F16K27/00—Construction of housing; Use of materials therefor
- F16K27/02—Construction of housing; Use of materials therefor of lift valves
- F16K27/0209—Check valves or pivoted valves
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16K—VALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
- F16K31/00—Actuating devices; Operating means; Releasing devices
- F16K31/002—Actuating devices; Operating means; Releasing devices actuated by temperature variation
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16K—VALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
- F16K5/00—Plug valves; Taps or cocks comprising only cut-off apparatus having at least one of the sealing faces shaped as a more or less complete surface of a solid of revolution, the opening and closing movement being predominantly rotary
- F16K5/04—Plug valves; Taps or cocks comprising only cut-off apparatus having at least one of the sealing faces shaped as a more or less complete surface of a solid of revolution, the opening and closing movement being predominantly rotary with plugs having cylindrical surfaces; Packings therefor
- F16K5/0407—Plug valves; Taps or cocks comprising only cut-off apparatus having at least one of the sealing faces shaped as a more or less complete surface of a solid of revolution, the opening and closing movement being predominantly rotary with plugs having cylindrical surfaces; Packings therefor with particular plug arrangements, e.g. particular shape or built-in means
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16K—VALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
- F16K5/00—Plug valves; Taps or cocks comprising only cut-off apparatus having at least one of the sealing faces shaped as a more or less complete surface of a solid of revolution, the opening and closing movement being predominantly rotary
- F16K5/08—Details
- F16K5/14—Special arrangements for separating the sealing faces or for pressing them together
- F16K5/18—Special arrangements for separating the sealing faces or for pressing them together for plugs with cylindrical surfaces
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M16/00—Devices for influencing the respiratory system of patients by gas treatment, e.g. ventilators; Tracheal tubes
- A61M16/06—Respiratory or anaesthetic masks
- A61M16/0666—Nasal cannulas or tubing
- A61M16/0672—Nasal cannula assemblies for oxygen therapy
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M16/00—Devices for influencing the respiratory system of patients by gas treatment, e.g. ventilators; Tracheal tubes
- A61M16/20—Valves specially adapted to medical respiratory devices
- A61M16/201—Controlled valves
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M2202/00—Special media to be introduced, removed or treated
- A61M2202/0007—Special media to be introduced, removed or treated introduced into the body
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M2202/00—Special media to be introduced, removed or treated
- A61M2202/02—Gases
- A61M2202/0208—Oxygen
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M2205/00—General characteristics of the apparatus
- A61M2205/02—General characteristics of the apparatus characterised by a particular materials
- A61M2205/0227—Materials having sensing or indicating function, e.g. indicating a pressure increase
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M2205/00—General characteristics of the apparatus
- A61M2205/10—General characteristics of the apparatus with powered movement mechanisms
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M2205/00—General characteristics of the apparatus
- A61M2205/33—Controlling, regulating or measuring
- A61M2205/3331—Pressure; Flow
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M2205/00—General characteristics of the apparatus
- A61M2205/82—Internal energy supply devices
- A61M2205/8275—Mechanical
- A61M2205/8281—Mechanical spring operated
Definitions
- the present disclosure relates to the technical field of medical devices, and in particular to a fire prevention device, an oxygen therapy device and a communication device. Qi healing System.
- oxygen therapy has been widely used in clinical treatment and hospital rescue.
- external oxygen supply is usually required.
- External instruments can be used to supply the patient through invasive or non-invasive methods.
- oxygen therapy devices are collectively called oxygen therapy devices.
- a fire prevention device Due to the combustion-supporting properties of oxygen, it is usually necessary to install a fire prevention device on the oxygen therapy device. When oxygen leaks and causes a fire, the fire prevention device can promptly cut off the oxygen path to weaken the spread of the fire and reduce losses.
- a support member with a low melting point is usually provided at the opening of the fire protection device, and the support member is used to support the sealing valve. After the support member is heated and melted, the sealing valve moves to the opening driven by the spring and engages with the opening to block the opening. Cut off the gas line.
- the existing fire prevention device is connected to the oxygen therapy device and the oxygen pipeline at the patient end.
- the metal spring is in an oxygen-rich environment and is prone to oxidation failure. In the event of a fire, there is still a risk of oxygen leakage. The safety factor is low.
- the sealing valve may be deflected when moving within the fire protection device, resulting in the sealing valve being unable to accurately engage with the opening, and the stability of the fire protection device being poor. Moreover, due to the slow melting speed of the support, the sealing valve cannot move to the opening in time and cannot quickly block the air path, which can easily cause the fire to spread.
- the ventilation device is connected to the user's respiratory airway through tubing to continuously provide oxygen to the user through the tubing. Due to the combustion-supporting properties of oxygen, when a fire breaks out on the user side, the oxygen produced by the ventilation equipment will cause the fire to continue to expand.
- oxygen therapy In medical or home settings, external oxygen is often required when a patient's own oxygen intake is insufficient. This method, which relies on external instruments to supply oxygen to the patient through invasive or non-invasive methods, is called oxygen therapy. Instruments used to provide oxygen to patients are collectively called oxygen concentrators. Oxygen concentrators are typically connected via flexible plastic tubing to a respiratory mask or nasal cannula that is worn onto the face of a patient requiring ventilatory therapy (eg, oxygen therapy).
- ventilatory therapy eg, oxygen therapy
- Oxygen is a kind of combustion-supporting gas. If it encounters an open flame (such as smoking, etc.), it will definitely contribute to the fire and can easily cause a fire. Most oxygen concentrators are set up to continuously deliver oxygen to the respirator or nasal cannula at a determined rate based on the patient's needs, and do not stop oxygen delivery even when the respirator or nasal cannula is removed. In this situation, an oxygen-rich environment can easily be established around the patient, preparing the environment for a catastrophic fire based on ignition. The oxygen concentration output by the oxygen generator is generally higher than 90%. If the flexible plastic tube that is outputting oxygen is accidentally ignited, because there is continuous high-concentration oxygen flowing out of the flexible plastic tube, the flame will follow the oxygen.
- the output air pipe gradually burned towards the fuselage, eventually igniting the oxygen generator and causing a fire.
- the oxygen concentrator is used in a home care environment, due to the lack of corresponding supervision conditions, the above fire hazards will worsen in the home environment. If the oxygen output path cannot be closed in time, the fire will become more intense, which will aggravate the difficulty of fire rescue. difficulty.
- the relevant technology In order to block the output path of oxygen in the event of a fire, the relevant technology generally uses a fire isolation device to block it.
- gas such as oxygen
- the compression springs in such fire isolation devices are generally made of metal materials. After the compression springs of metal materials are exposed to oxygen for a long time, especially in humid environments, chemical reactions such as oxidation will inevitably occur, which will destroy the compression springs. Failure will greatly reduce the service life of the fire isolation device and have an impact on the health of the patient.
- the present disclosure provides a fire prevention device, an oxygen therapy device and a ventilation therapy system, aiming to solve the problem in related technologies that the metal spring inside the fire prevention device is in an oxygen-rich environment and is prone to oxidation failure. When a fire occurs, oxygen still leaks. Risk, low safety factor.
- an embodiment of the present disclosure discloses a fire prevention device, including: a housing, a valve body, a torsion spring and a fusible member;
- the fluid channel is provided with a first opening and a second opening.
- the first opening and the second opening are respectively used to communicate with the oxygen therapy device or the pipeline at the patient end;
- the valve body is located in the fluid channel and is rotationally connected to the housing;
- the valve body is provided with an accommodation cavity, and the fluid channel and the accommodation cavity are two mutually independent spaces;
- the torsion spring is embedded in the accommodation cavity to drive the valve body and the housing to rotate relative to each other;
- the fusible component is disposed on the inner wall of the fluid channel
- the fusible member When the fusible member is in a non-melted state, the fusible member supports the valve body in a first position, and both the first opening and the second opening are in an open state;
- the torsion spring drives the valve body to rotate to the second position, and at least one of the first opening and the second opening is in a closed state.
- valve body includes a mounting part, a first connecting part and a first sealing part;
- the mounting part includes an inner sleeve and an outer sleeve, and the accommodation cavity is located between the inner sleeve and the outer sleeve;
- a rotating shaft is provided in the fluid channel, and the inner sleeve is sleeved on the rotating shaft and is rotationally connected with the rotating shaft;
- One end of the first connecting part is connected to the side wall of the outer sleeve, and the other end of the first connecting part is connected to the first sealing part;
- the first sealing portion When the valve body is in the second position, the first sealing portion is engaged with the first opening so that the first opening is in a closed state.
- valve body further includes a second connection part and a second sealing part
- One end of the second connecting part is connected to the side wall of the outer sleeve, and the other end of the second connecting part is connected to the second sealing part;
- the second sealing portion When the valve body is in the second position, the second sealing portion is engaged with the second opening so that the second opening is in a closed state.
- first connection part and/or the second connection part are provided with a gap, and the gap is used to pass fluid.
- the inner wall of the fluid channel is provided with at least one limiting part, and the limiting part is located on the rotation path of the valve body;
- valve body When the valve body is in the second position, the valve body is in contact with the limiting portion.
- the housing is provided with a first pipeline joint and a second pipeline joint;
- the first pipeline joint is provided with a first through hole, and the first through hole is connected with the first opening;
- the second pipeline joint is provided with a second through hole, and the second through hole is connected with the second opening;
- the first pipeline connector and the second pipeline connector are respectively used for pipeline connection with the oxygen therapy device or the patient end.
- the outer wall of the first pipeline connector and/or the second pipeline connector is provided with at least one clamping portion, and the clamping portion is used to connect with the oxygen therapy device or the patient end. Pipe clamping.
- the fusible member has an extension portion, and the extension portion penetrates the first through hole or the second through hole.
- an embodiment of the present disclosure also discloses an oxygen therapy device, including the above-mentioned fire prevention device.
- embodiments of the present disclosure also disclose a ventilation therapy system, which includes the above-mentioned oxygen therapy device.
- the fire prevention device includes: a shell, a valve body, a torsion spring and a fusible member; a fluid channel is provided in the shell, and the fluid channel is provided with a first opening and a second opening, and the first opening and the second opening are respectively It is connected with the oxygen therapy device or the pipeline at the patient end; the valve body is located in the fluid channel and is rotationally connected to the housing; the valve body is provided with an accommodation cavity, and the fluid channel and the accommodation cavity are two independent spaces; the torsion spring is embedded In the accommodation cavity, the valve body and the housing are driven to rotate relative to each other; the fusible component is arranged on the inner wall of the fluid channel.
- the fusible component When the fusible component is in a non-molten state, the fusible component supports the valve body in the first position, the first opening and the second opening are both in an open state, and the fluid channel transmits oxygen normally; in the event of a fire, the fusible component reaches a temperature of At the melting point, it will be in a molten state, and the fusible component is not enough to support the elastic force exerted by the torsion spring on the valve body.
- the torsion spring releases the stored elastic potential energy, and the valve body rotates from the first position to the second position driven by the torsion spring.
- an embodiment of the present disclosure discloses a fire prevention device, which includes: a shell, an elastic member, a valve body, and a fusible member;
- the housing has a receiving cavity and a gas channel, and the gas channel is used to communicate with the oxygen therapy device or the pipeline at the patient end;
- the valve body separates the accommodation chamber and the gas channel into mutually independent spaces
- the elastic member is disposed in the accommodation cavity, the valve body is at least partially located in the gas channel, and the elastic member is in contact with the housing and the valve body respectively;
- the fusible component is disposed between the valve body and the gas channel, and there is a gap between the fusible component and the gas channel;
- the fusible member When the fusible member is in a non-molten state, the fusible member supports the valve body in a third In one position, the gas channel is in an open state;
- the elastic member drives the valve body to the second position, and the gas channel is in a closed state.
- the accommodation cavity has an opening
- the valve body is disposed at the opening of the accommodation cavity, and the valve body is slidably connected to the accommodation cavity;
- the fusible member When the fusible member is in the non-molten state, the fusible member supports the valve body in the first position and the gas channel is in an open state;
- the elastic member drives the valve body to slide to the second position, and the gas channel is in a closed state.
- the housing includes a first housing and a second housing
- the first housing is rotationally connected to the second housing
- the first housing is provided with a first through hole and a second through hole;
- the second housing is provided with a third through hole and a fourth through hole;
- the valve body is fixedly connected to the first housing, and the valve body is provided with a fifth through hole;
- the fusible member is respectively engaged with the valve body and the second housing, and the fusible member is provided with a sixth through hole;
- the elastic member is in contact with the valve body and the second housing respectively;
- the fusible member When the fusible member is in the non-molten state, the fusible member supports the valve body in the first position, and the first through hole, the second through hole, the third through hole The hole, the fourth through hole, the fifth through hole and the sixth through hole are connected to form the gas channel, and the gas channel is in an open state;
- the elastic member drives the first housing and the second housing to rotate relative to each other, the valve body is in the second position, and the first passage
- the hole, the second through hole and the fifth through hole are respectively attached to the shell wall of the second housing, and the gas channel is in a closed state.
- a first protruding part and a second protruding part are provided in the second housing;
- the third through hole is provided on the first protruding part, and the fourth through hole is provided on the second protruding part;
- the fusible component is at least partially embedded in the third through hole or the fourth through hole.
- the first protruding part is provided with a first extension part
- the second protruding part is provided with a third extension part.
- both ends of the fifth through hole are respectively in contact with the first extension part and the second extension part.
- one end of the valve body is provided with a third extension part, and the other end of the valve body is provided with a fourth extension part;
- the third through hole is in contact with the third extension part
- the fourth through hole is in contact with the fourth extension part
- the second housing is provided with at least one limiting portion, the limiting portion is located on the movement path of the valve body;
- valve body When the valve body is in the second position, the valve body is in contact with the limiting portion.
- the first housing is provided with a first connection part and a second connection part;
- the first through hole is provided in the first connecting part, and the second through hole is provided in the second connecting part;
- the first connection part and the second connection part are respectively used to communicate with the pipeline of the oxygen therapy device or the patient.
- the gas channel includes a first pipeline interface, a second pipeline interface and a communication part
- the communicating part has an inner cavity
- the first pipeline interface and the second pipeline interface are respectively located at both ends of the communication part, and are respectively connected with the inner cavity to form the gas channel;
- the first pipeline interface and the second pipeline interface are arranged symmetrically.
- the fusible member is located in the inner cavity, and the fusible member is in clearance fit with a wall of the inner cavity.
- an embodiment of the present disclosure also discloses an oxygen therapy device, including the above-mentioned fire prevention device.
- an embodiment of the present disclosure also discloses a ventilation therapy system, which includes the above-mentioned oxygen therapy device.
- the fire prevention device includes: a shell, an elastic member, a valve body and a fusible member; the shell has a receiving cavity and a gas channel, and the gas channel is used to communicate with the oxygen therapy device or the pipeline at the patient end; the valve body will The accommodating cavity and the gas channel are separated into mutually independent spaces; the elastic member is arranged in the accommodating cavity, the valve body is at least partially located in the gas channel, and the elastic member is in contact with the shell and the valve body respectively; there is a gap between the valve body and the gas channel.
- the fusible component has a gap between the fusible component and the gas channel; in the fusible component When the component is in a non-molten state, the fusible component supports the valve body in the first position and the gas channel is in an open state; when the fusible component is in a molten state, the elastic component drives the valve body in the second position and the gas channel is in a closed state. In the event of a fire, the fusible component will be in a molten state when the temperature reaches the melting point. The fusible component is not enough to support the elastic force exerted by the elastic component on the valve body. The elastic component releases the stored elastic potential energy, and the valve body is driven by the elastic component.
- an embodiment of the present disclosure discloses a fire prevention device, which includes: a housing, a first elastic valve body, and a first fusible member;
- first opening and a second opening are provided on both sides of the accommodation cavity, and the first opening and the second opening are used to communicate with the oxygen therapy device or the pipeline at the patient end;
- the first elastic valve body is positioned in the accommodation cavity, and the first elastic valve body is arranged opposite to the first opening, wherein the first elastic valve body has oxidation resistance;
- the first fusible member is located in the housing and connected to the housing, and the first fusible member is in contact with a side of the first elastic valve body close to the first opening;
- the first fusible component When the first fusible component is in a non-molten state, the first fusible component compresses the first elastic valve body, and there is a gap for gas circulation between the first opening and the first elastic valve body. gap;
- the first elastic valve body When the first fusible component is in a molten state, the first elastic valve body releases at least part of the elastic potential energy, and the first elastic valve body abuts the first end surface of the accommodation cavity, so that the first elastic valve body An opening is in a closed state, wherein the first opening is provided on the first end surface.
- the housing includes a first connection part and a second connection part
- the first connecting part has a first through hole, and the first through hole is connected with the first opening;
- the second connecting part has a second through hole, and the second through hole is connected with the second opening;
- the first fusible component is located in the first through hole, one end of the first fusible component extends to form at least two reinforcing ribs, and the reinforcing ribs are connected to the wall of the first through hole;
- the other end of the first fusible component is in contact with the side of the first elastic valve body close to the first opening.
- the first fusible member is located between the first elastic valve body and the first end surface, and the first fusible member and the first elastic valve body are close to the first opening. Butt on one side.
- the number of the first fusible components is two, and the two first fusible components are symmetrically arranged on the first end face.
- the fire protection device further includes a support member
- the support member is located in the accommodation cavity and connected to the cavity wall of the accommodation cavity;
- the support member is in contact with a side of the first elastic valve body away from the first opening.
- the support member is provided with a first positioning portion at one end close to the first elastic valve body, and a second positioning portion is provided at a side of the first elastic valve body away from the first opening.
- the first positioning part and the second positioning part are positioned and matched.
- the outer side wall of the first connection part and/or the outer side wall of the second connection part is provided with at least one clamping part, and the clamping part is used to connect with the oxygen therapy device or the tube at the patient end. Luca picks up.
- the fire protection device further includes a second elastic valve body and a second fusible component
- the second elastic valve body is arranged opposite to the second opening
- the second fusible component is located in the housing and connected to the housing, and the second fusible component abuts a side of the second elastic valve body close to the second opening, wherein the The second elastic valve body has oxidation resistance;
- the support member is located between the first elastic valve body and the second elastic valve body, and is in contact with the first elastic valve body and the second elastic valve body respectively;
- the second fusible component When the second fusible component is in a non-melted state, the second fusible component compresses the second elastic valve body, and there is a gap for gas circulation between the second opening and the second elastic valve body. gap;
- the second elastic valve body When the second fusible component is in a molten state, the second elastic valve body releases at least part of the elastic potential energy, and the second elastic valve body abuts the second end surface of the accommodation cavity, so that the second elastic valve body The two openings are in a closed state, wherein the second opening is provided on the second end surface.
- the embodiment of the present disclosure also discloses an oxygen therapy device, including the above-mentioned fire prevention device.
- an embodiment of the present disclosure also discloses a ventilation therapy system, including the above-mentioned oxygen therapy device.
- the fire prevention device includes: a shell, a first elastic valve body and a first fusible member; the shell has an accommodation cavity, and a first opening and a second opening are provided on both sides of the accommodation cavity, and the first opening and The second opening is used to communicate with the oxygen therapy device or the pipeline at the patient end; the first elastic valve body is positioned in the accommodation cavity, and the first elastic valve body is arranged opposite to the first opening, wherein the first elastic valve body has a resistance to Oxidation properties.
- the first fusible component is located in the housing and connected to the housing, and the first fusible component is connected to the first elastic component.
- the side of the elastic valve body close to the first opening abuts; when the first fusible component is in a non-molten state, the first fusible component compresses the first elastic valve body, the thickness of the first elastic valve body decreases, and the first opening and There is a gap for gas circulation between the first elastic valve bodies; in the event of a fire, the fusible component will be in a molten state when the temperature reaches the melting point, and the first elastic valve body releases at least part of the elastic potential energy, and the first elastic valve body and The first end surface of the accommodation cavity is in contact to keep the first opening in a closed state, thereby cutting off the oxygen passage and preventing the continuous leakage of oxygen from causing the spread of fire, wherein the first opening is provided on the first end surface. Since the first elastic valve body has oxidation resistance, the problem of oxidation of the first elastic valve body is avoided, and the durability and safety factor of the device are improved.
- the present disclosure also provides a fire prevention device, an oxygen therapy device and a ventilation therapy system, aiming to solve the problem in related technologies that the oxygen is transmitted by opening small holes on the support, which has a great impact on the smoothness of the air path and is not very stable. It is easy to block the air path under non-fire conditions and affect the treatment effect.
- an embodiment of the present disclosure discloses a fire prevention device, which includes: a housing, a first moving rod, a first fusible member, a first valve body, and a first elastic member;
- the fluid channel is provided with a first narrowing part and a second narrowing part, the first moving rod, the first fusible member, the first valve body and the first elastic member are all provided with in the fluid channel;
- the first fusible component is disposed at one end of the fluid channel and connected to the inner wall of the fluid channel;
- the first moving rod is slidingly connected to the inner wall of the fluid channel, and the first fusible member is provided on the first moving rod;
- the first valve body passes through the first narrowing part and is slidingly connected to the inner wall of the fluid channel.
- One end of the first valve body is connected to the first moving rod.
- the first valve body The other end is provided with the first elastic member, and the first elastic member is in contact with the housing;
- a first sealing member is provided near the first narrowing portion of the first valve body
- the first fusible member supports the first moving rod and the first valve body is in a first position, and the first sealing member and the first retracting member
- the narrow part has a clearance fit and the fluid channel is in an open state
- the first fusible member is provided with a first snap-fitting portion
- the first moving rod is provided with a first snap-fitting portion
- the first fusible member is snap-fitted with the first moving rod.
- the side wall of the first moving rod is provided with at least one first guide portion
- the inner wall of the fluid channel is provided with a first chute
- the first guide portion is in sliding fit with the first chute.
- the side wall of the first valve body is provided with at least one second guide portion
- the inner wall of the fluid channel is provided with a second slide groove
- the second guide portion is in sliding fit with the second slide groove.
- the other end of the first valve body is provided with a groove body, and the first elastic member is at least partially located in the groove body;
- One end of the first elastic member is in contact with the bottom of the tank body, and the other end of the first elastic member is in contact with the housing.
- a mounting shaft is provided in the tank body, and the mounting shaft is coaxially arranged with the tank body;
- the first elastic member is sleeved on the mounting shaft.
- the housing further includes a baffle, which is disposed in the fluid channel and connected to the inner wall of the fluid channel;
- the first elastic member is in contact with the baffle.
- the fire protection device further includes a second moving rod, a second fusible member, a second valve body and a second elastic member;
- the second moving rod, the second fusible member, the second valve body and the second elastic member are all provided in the fluid channel;
- the second fusible component is disposed at the other end of the fluid channel and connected to the inner wall of the fluid channel;
- the second moving rod is slidingly connected to the inner wall of the fluid channel, and the second fusible member is provided on the second moving rod;
- the second valve body passes through the second narrowing part and is slidingly connected to the inner wall of the fluid channel.
- One end of the second valve body is connected to the second moving rod.
- the second valve body The other end is provided with the second elastic member, and the second elastic member is in contact with the housing;
- a second sealing member is provided near the second narrowing portion of the second valve body
- the second fusible member supports the second moving rod and the second valve body is in a third position, and the second sealing member and the second closing member
- the narrow part has a clearance fit and the fluid channel is in an open state
- the second fusible member is provided with a second snap-fitting portion
- the second moving rod is provided with a second snap-fitting portion
- the second fusible member is clipped with the second moving rod.
- the housing is provided with a first pipeline connector and a second pipeline connector, and the first pipeline connector and the second pipeline connector are respectively used for pipeline connection with the oxygen therapy device or the patient end. ;
- the outer wall of the first pipeline connector and/or the second pipeline connector is provided with at least one third clamping portion, and the third clamping portion is used to connect with the oxygen therapy device or the patient end. Pipe clamping.
- the first moving rod and the first valve body are an integral structure.
- the first moving rod and the first valve body have a separate structure.
- an embodiment of the present disclosure also discloses an oxygen therapy device, including the above-mentioned fire prevention device.
- embodiments of the present disclosure also disclose a ventilation therapy system, which includes the above-mentioned oxygen therapy device.
- the fire prevention device includes: a housing, a first moving rod, a first fusible member, a first valve body, and a first elastic member; a fluid channel is provided in the housing, and the fluid channel is provided with a first narrowing portion and a first elastic member.
- the second narrowing part, the first moving rod, the first fusible member, the first valve body and the first elastic member are all arranged in the fluid channel;
- the first fusible member is arranged at one end of the fluid channel and in contact with the inner wall of the fluid channel Connection;
- the first moving rod is slidingly connected to the inner wall of the fluid channel, and the first fusible member is provided on the first moving rod;
- the first valve body is penetrated through the first narrowing part and is slidingly connected to the inner wall of the fluid channel, and the first valve body is connected to the inner wall of the fluid channel.
- One end of the valve body is connected to the first moving rod, the other end of the first valve body is provided with a first elastic member, and the first elastic member is in contact with the housing; the first valve body is provided with a first elastic member near the first narrowing portion. Seals. When the first valve body is in the open state, the first fusible member supports the first moving rod and the first valve body is in the first position, the first sealing member is in clearance fit with the first narrowing portion, and the fluid channel is in the open state, without Opening holes in the first fusible component can also ensure the normal transmission of oxygen and improve the stability of the fire protection device.
- the first fusible component melts and is insufficient to support the elastic force exerted by the first elastic member on the first valve body and the first moving rod.
- the first valve body and the first moving rod are driven by the first elastic member. Slide from the first position to the second position, the first valve body is in a closed state, the first sealing member is engaged with the first narrowing part, and the fluid channel is in a closed state, thus cutting off the oxygen path and preventing the continued leakage of oxygen from causing the spread of fire. .
- the present disclosure also provides a fire prevention device and ventilation treatment equipment, which is also intended to solve the problem in related technologies that the fire prevention device is prone to aging and failure. When a fire occurs, there is still a risk of oxygen leakage and the safety factor is low.
- an embodiment of the present disclosure discloses a fire prevention device, including: a housing, a first positioning member and a first sealing member;
- the housing There is a fluid channel in the housing, and a first opening and a second opening are provided on opposite sides of the fluid channel.
- the first opening and the second opening are respectively used to communicate with the oxygen therapy device or the pipeline at the patient end. ;
- the first positioning member is disposed in the fluid channel and connected to the housing;
- the first sealing member is sleeved on the first positioning member, and the first sealing member has oxidation resistance
- the first sealing member is in clearance fit with the inner wall of the fluid channel, and the fluid channel is in an open state;
- the volume of the first seal increases and fits the inner wall of the fluid channel, and the fluid channel is in a closed state
- the second temperature is higher than the first temperature.
- the first sealing member is thermally induced shape memory plastic
- the first sealing member expands due to heat and is in contact with the inner wall of the fluid channel, and the fluid channel is in a closed state.
- the inner wall of the fluid channel is provided with at least one annular protrusion
- the annular protrusion abuts the first seal, and the fluid channel is in a closed state.
- the inner wall of the fluid channel is provided with a first protruding structure and a second protruding structure;
- the first protruding structure and the second protruding structure are respectively located at both ends of the first positioning member
- the first convex structure is provided with a first positioning part
- the second convex structure is provided with a second positioning part
- both ends of the first positioning member are respectively connected with the first positioning part and the second positioning part.
- the positioning part is snap-connected.
- the inner wall of the fluid channel is provided with a mounting portion, and the mounting portion is provided with a receiving groove;
- One end of the first positioning member is embedded in the receiving groove.
- one end of the first positioning member is provided with a snap-fitting portion
- the groove wall of the accommodating groove is provided with a snap-fitting portion
- one end of the first positioning member is clipped with the accommodating groove.
- one end of the first positioning member is provided with external threads
- the groove wall of the receiving groove is provided with internal threads
- one end of the first positioning member is threadedly connected to the receiving groove.
- one end of the first positioning member is interference-fitted with the receiving groove.
- the mounting portion is provided with at least one connecting rib, and the mounting portion is connected to the inner wall of the fluid channel through the connecting rib.
- the fire protection device further includes a fusible component
- the first sealing member is an elastomer, and the fusible member wraps the first sealing member
- the fusible member When the fusible member is in a non-molten state, the fusible member compresses the first seal, the fusible member is in clearance fit with the inner wall of the fluid channel, and the fluid channel is in an open state;
- the first sealing member When the fusible component is in a molten state, the first sealing member releases at least part of the elastic potential energy, the volume of the first sealing member increases and fits the inner wall of the fluid channel, and the fluid channel is in a closed state. .
- the fire protection device further includes a second positioning member and a second sealing member;
- the second positioning member is disposed in the fluid channel and connected to the housing, the first positioning member is close to the first opening, and the second positioning member is close to the second opening;
- the second sealing member is sleeved on the second positioning member, and the second sealing member has oxidation resistance
- the first seal and the second seal respectively fit with the inner wall of the fluid channel, and the fluid channel is in an open state;
- the first sealing member and the second sealing member increase in volume and are respectively in contact with the inner wall of the fluid channel, and the fluid channel is in a closed state.
- an embodiment of the present disclosure also discloses a ventilation treatment device, including the above-mentioned fire prevention device.
- the fire protection device includes: a housing, a first positioning member and a first sealing member; a fluid channel is provided in the housing, and a first opening and a second opening are provided on opposite sides of the fluid channel.
- the two openings are respectively used to communicate with the oxygen therapy device or the pipeline at the patient end;
- the first positioning member is arranged in the fluid channel and connected to the housing;
- the first sealing member is sleeved on the first positioning member, and the first sealing member has a resistance to Oxidation properties.
- the fire protection device When a fire does not occur, the fire protection device is at the first temperature, the first sealing member is in clearance fit with the inner wall of the fluid channel, and the fluid channel is in an open state; when a fire occurs, the fire protection device is at the second temperature, and the volume of the first sealing member increases And fit with the inner wall of the fluid channel, the fluid channel In a closed state, the oxygen passage is cut off to avoid the continuous leakage of oxygen causing the fire to spread, wherein the second temperature is higher than the first temperature. Since the first seal has oxidation resistance, the problem of oxidation of the first seal is avoided, and the durability and safety factor of the device are improved.
- the present disclosure also provides a fire prevention device and ventilation treatment equipment, aiming to solve the problem in related technologies that when the sealing valve moves within the fire prevention device, it will deflect, resulting in the sealing valve being unable to accurately engage with the opening, and the fire prevention device having poor stability. Bad question.
- an embodiment of the present disclosure discloses a fire protection device, which includes: a housing and a valve body;
- the fluid channel is provided with a first narrowing part and a second narrowing part, and the valve body is arranged in the fluid channel;
- the valve body is slidingly connected to the inner wall of the fluid channel, and the outer side wall of the valve body is provided with at least one guide portion, and the guide portion is slidably matched with the inner wall of the fluid channel;
- the valve body has a first position and a second position relative to the fluid passage
- valve body When the valve body is in the first position, the valve body is in clearance fit with the first narrowing part and the second narrowing part respectively, and the fluid channel is in an open state;
- valve body When the valve body is in the second position, the valve body is engaged with the first narrowing part and/or the second narrowing part, and the fluid channel is in a closed state.
- the fire protection device further includes: a first fusible component and a first elastic component;
- the valve body includes opposing first and second ends, the first end being adjacent to the first narrowing portion, and the second end being adjacent to the second narrowing portion;
- the housing is provided with a fixing portion close to the first narrowing portion
- the first end of the valve body is provided with a first groove body, and the first elastic member is at least partially located in the first groove body;
- One end of the first elastic member is in contact with the bottom of the first tank body, and the other end of the first elastic member is in contact with the end surface of the fixing part;
- the first fusible component is disposed at the first end of the valve body and is engaged with the fixed portion to support the valve body in the first position;
- the first fusible component melts, the first elastic member drives the valve body to slide to the second position, the second end of the valve body engages with the second narrowing portion, and the fluid channel is closed.
- a first installation shaft is provided in the first tank body, and the first installation shaft is coaxially arranged with the first tank body;
- the first elastic member is sleeved on the first installation shaft, and the first fusible component is connected to the first installation shaft.
- the second end of the valve body is provided with a first seal, and the first seal at least partially wraps the second end;
- the fire protection device further includes: a second fusible component and a second elastic component;
- the valve body includes opposing first and second ends, the first end being adjacent to the first narrowing portion, and the second end being adjacent to the second narrowing portion;
- the second end of the valve body is provided with a second groove body, and the second elastic member is at least partially located in the second groove body;
- One end of the second elastic member is in contact with the bottom of the second tank body, and the other end of the second elastic member is in contact with the housing;
- the second fusible component is disposed on the first narrowing portion and is engaged with the first narrowing portion, and the second fusible component is provided with a through hole for passing fluid;
- the first end of the valve body abuts the second fusible member to support the valve body in the first position
- the second fusible component melts, the second elastic member drives the valve body to slide to the second position, the first end of the valve body engages the first narrowing portion, and the fluid channel is closed.
- a second installation shaft is provided in the second tank body, and the second installation shaft is coaxially arranged with the second tank body;
- the second elastic member is sleeved on the second mounting shaft.
- the first end of the valve body is provided with a second seal, and the second seal at least partially wraps the first end;
- the second sealing member When the valve body is in the second position, the second sealing member is engaged with the first narrowing portion, and the fluid channel is in a closed state.
- the first narrowing portion is provided with a first positioning structure
- the second fusible member is provided with There is a second positioning structure, and the first positioning structure and the second positioning structure are positioned and matched.
- the first narrowing portion is provided with a first positioning structure
- the second sealing member is provided with a third positioning structure
- the first positioning structure and the third positioning structure are positionally matched.
- the outer side wall of the valve body is provided with at least one positioning rib
- the inner wall of the fluid channel is provided with at least one positioning groove, and the positioning rib is slidably matched with the positioning groove.
- an embodiment of the present disclosure also discloses a ventilation treatment device, including the above-mentioned fire prevention device.
- the fire protection device includes: a shell and a valve body; a fluid channel is provided in the shell, the fluid channel is provided with a first narrowing part and a second narrowing part, and the valve body is disposed in the fluid channel; the valve body and the fluid The inner wall of the channel is slidingly connected, and the outer wall of the valve body is provided with at least one guide part, which slides with the inner wall of the fluid channel; the valve body has a first position and a second position relative to the fluid channel; when the valve body is in the first position When the valve body is in the second position, the valve body is in clearance fit with the first narrowing part and/or the second narrowing part, and the fluid channel is in an open state.
- the fluid channel is closed, thereby cutting off the oxygen path and preventing oxygen from continuously leaking out and causing the fire to spread.
- the guide part can play a limiting role when the valve body slides relative to the fluid channel, avoiding the problems of deflection and jamming of the valve body, and ensuring that the valve body can be connected with the first The narrowing part and/or the second narrowing part are accurately joined, which improves the stability of the fire protection device.
- the present disclosure also provides a fire prevention device and ventilation treatment equipment, aiming to solve the problem in related technologies that the support member melts slowly, causing the sealing valve to be unable to move to the opening in time, and the air path cannot be quickly blocked, which easily causes the spread of fire. .
- a fire protection device including: a shell, a base, a valve body, an elastic member and a fusible ferrule;
- the housing has a fluid channel, and the fluid channel is used to communicate with the oxygen therapy device or the pipeline at the patient end;
- the base is positioned in the fluid channel, the valve body is connected to the base, and the elastic member is provided between the base and the valve body;
- a sealing portion is provided at one end of the valve body away from the base, and at least one narrowing portion is provided in the fluid channel, and the sealing portion is opposite to the narrowing portion;
- the fusible ferrule is nested in the whole body composed of the base, the elastic member and at least part of the valve body to compress the elastic member so that the There is a gap for fluid to pass between the sealing part and the narrowing part;
- the elastic member releases at least part of its elastic potential energy and pushes against the valve body, causing the sealing portion to engage with the narrowing portion to block the fluid channel.
- valve body further includes a bearing portion connected to the base, and the sealing portion is provided at an end of the bearing portion away from the base;
- a protruding first support structure is provided on the peripheral side of the load-bearing part.
- the elastic member is sleeved on the load-bearing part. One end of the elastic member is in contact with the base, and the other end of the elastic member is in contact with the base.
- the first support structure is in contact.
- the bearing portion is provided with a hollow structure along its length direction, and the hollow structure is used for fluid to pass through.
- valve body further includes a connecting portion, the connecting portion is provided between the bearing portion and the sealing portion, and is connected to the bearing portion and the sealing portion respectively;
- the connecting part is provided with a snap-in structure, and the snap-in structure is used to snap and position the fusible ferrule.
- the peripheral side of the sealing portion extends to form a convex guide portion, and the guide portion is slidably matched with the inner wall of the fluid channel.
- the base is provided with a ventilation hole
- the edge of the base is provided with at least one first positioning groove, and the first positioning groove is used to snap and position the fusible ferrule.
- valve body includes a first valve body and a second valve body, the first valve body and the second valve body are respectively located on both sides of the base and are respectively connected to the base;
- the elastic member includes a first elastic member and a second elastic member.
- the first elastic member is disposed between the base and the first valve body.
- the second elastic member is disposed between the base and the first valve body. between the second valve body;
- a first narrowing part and a second narrowing part are provided in the fluid channel.
- An end of the first valve body away from the base is provided with a first sealing part.
- the first sealing part is connected with the first narrowing part.
- the narrow parts are arranged oppositely, and an end of the second valve body away from the base is provided with a second sealing part, and the second sealing part is arranged oppositely to the second narrowing part;
- the fusible ferrule is nested in the base, the first elastic member, the second elastic member, and the third elastic member.
- a valve body and the second valve body are integrally formed to compress the first elastic member and the second elastic member so that the first sealing part and the first narrowing part and the There is a gap for fluid to pass between the second sealing part and the second narrowing part;
- the first elastic member releases at least part of the elastic potential energy and pushes against the first valve body, so that the first sealing part and the first narrowing part are engaged,
- the second elastic member releases at least part of its elastic potential energy and pushes against the second valve body, causing the second sealing portion to engage with the second narrowing portion to block the fluid channel.
- the first valve body includes a first mounting sleeve
- the second valve body includes a second mounting sleeve
- the first sealing portion is provided on the first mounting sleeve away from the base.
- the second sealing portion is provided at an end of the second installation sleeve away from the base;
- the base is provided with a protruding first positioning portion toward the first valve body, and the base is provided with a protruding second positioning portion toward the second valve body;
- the first positioning portion is at least partially embedded in the first mounting sleeve, and the second positioning portion is at least partially embedded in the second mounting sleeve;
- a raised second support structure is provided on the peripheral side of the first mounting sleeve, the first elastic member is sleeved on the outer wall of the first mounting sleeve, and one end of the first elastic member is connected to the outer wall of the first mounting sleeve.
- the base is in contact, and the other end of the first elastic member is in contact with the second support structure;
- a raised third support structure is provided on the peripheral side of the second mounting sleeve, the second elastic member is sleeved on the outer wall of the second mounting sleeve, and one end of the second elastic member is connected to the outer wall of the second mounting sleeve.
- the base is in contact, and the other end of the second elastic member is in contact with the third support structure.
- a raised flange is provided on the peripheral side of the base, and two opposite end surfaces of the flange respectively extend toward the first valve body and the second valve body to form a first limiting portion and a first limiting portion. the second limiting part;
- the second support structure extends toward the base to form a third limiting portion, and the third support structure extends toward the base to form a fourth limiting portion;
- a first limiting space is formed between the first limiting part, the third limiting part and the outer wall of the first mounting sleeve, and the first elastic member is embedded in the first limiting space. within space;
- a second limiting space is formed between the second limiting part, the fourth limiting part and the outer wall of the second mounting sleeve, and the second elastic member is embedded in the second limiting space. within the space.
- the first sealing part is provided with a second positioning groove
- the second sealing part is provided with a third positioning groove
- the second positioning groove and the third positioning groove are used for snap positioning.
- an embodiment of the present disclosure also discloses a ventilation treatment device, including the above-mentioned fire prevention device.
- the base, the valve body, the elastic member and the fusible ferrule together constitute the valve body triggering system.
- the fusible ferrule does not melt, under the constraints of the fusible ferrule, the elastic member is in In the compressed state, there is a gap for fluid to pass between the sealing part of the valve body and the narrowing part of the fluid channel, and oxygen can pass normally; after the fusible ferrule melts, the elastic member releases at least part of its elastic potential energy and pushes against the valve body , so that the sealing part and the narrowing part are engaged, thereby blocking the fluid channel.
- the fusible ferrule itself is prone to fusing when heated, the fusing speed is further accelerated by the elastic force of the elastic member, thereby increasing the triggering speed of the valve body and reducing the risk of fire spreading due to untimely triggering. Improved the safety factor of fire protection devices.
- the present disclosure also provides a fire prevention device and ventilation treatment equipment, aiming to solve the problem in related technologies that the support member melts slowly, causing the sealing valve to be unable to move to the opening in time, and the air path cannot be quickly blocked, which easily causes the spread of fire. .
- an embodiment of the present disclosure discloses a fire prevention device, including: a housing, an inner housing, a valve body and an elastic member;
- the housing has a fluid channel, and the fluid channel is used to communicate with the oxygen therapy device or the pipeline at the patient end;
- the inner shell is disposed in the fluid channel and is sealingly connected to the inner wall of the fluid channel, and the inner shell is provided with a through hole for fluid to pass;
- the valve body is slidingly connected to the inner wall of the fluid channel, and has a first position and a second position relative to the fluid channel;
- valve body When in the second position, the valve body is in contact with the peripheral side of the through hole, so that the fluid channel is in a blocked state;
- the elastic member is disposed between the valve body and the inner wall of the fluid channel;
- the inner walls at both ends of the fluid channel are respectively provided with at least one raised support portion.
- One end of the valve body is opposite to the through hole, and the other end of the valve body is engaged with the support portion to support The valve body is in the first position, and the elastic member is in a compressed state;
- the elastic member releases at least part of the elastic potential energy to drive the valve body to switch from the first position to the second position.
- the support portion is provided on an inner wall of the fluid channel close to the opening.
- valve body includes a clamping member and a sealing member, the clamping member and the sealing member are of separate structure, and the clamping member and the sealing member are respectively connected with the inner wall of the fluid channel. sliding connection;
- the elastic member is disposed between the clamping member and the inner wall of the fluid channel;
- One end of the clamping member is used to clamp with the support part, and the other end of the clamping member is used to push against the sealing member, so that the sealing member is in contact with the peripheral side of the through hole. ;
- a protruding first guide portion is provided at one end of the clamping member close to the sealing member, and the first guide portion is slidably matched with the inner wall of the fluid channel;
- the elastic member is sleeved on the clamping member, one end of the elastic member is in contact with the inner wall of the fluid channel, and the other end of the elastic member is in contact with the first guide part;
- the elastic member When the clamping member is clamped with the support part, the elastic member is compressed by the inner wall of the fluid channel and the first guide part.
- the fluid channel includes a main body and openings provided at both ends of the main body, wherein the inner diameter of the opening is smaller than the inner diameter of the main body;
- connection between the main body and the opening narrows to form a shoulder
- the support part is provided on the inner wall of the opening part
- One end of the elastic member is in contact with the shoulder, and the other end of the elastic member is in contact with the first guide portion.
- the latch is provided with a protruding second guide portion, and the second guide portion is slidably matched with the inner wall of the opening.
- the sealing member has an end face on one side facing the clamping member, and a peripheral side of the end face extends toward the clamping member to form a third guide portion, and the third guide portion is in contact with the fluid channel.
- the inner wall slides into place.
- the third guide part and the end surface enclose a limiting groove
- the latch extends toward one end of the seal to form a limiting portion, and the limiting portion is at least partially embedded in the limiting groove.
- the outer side wall of the seal extends to form a raised fourth guide portion, and the fourth guide portion is slidably engaged with the inner wall of the fluid channel.
- one end of the clamping member is provided with a groove toward the sealing member, and one end of the sealing member is provided with a boss toward the clamping member, and the boss is at least partially embedded in the recess. groove.
- a sealing structure is provided in the assembly gap between the housing and the inner housing.
- the number of the supporting parts is two or more, and the supporting parts are arranged at intervals along the circumference of the inner wall of the opening.
- a fusible part is provided at one end of the valve body close to the support part;
- valve body When the support part and the fusible part are in a non-melted state, the valve body is engaged with the support part to support the valve body in the first position;
- the elastic member releases at least part of the elastic potential energy to drive the valve body to the second position.
- valve body includes a first valve body and a second valve body
- the first valve body and the second valve body are symmetrically arranged on both sides of the through hole;
- the body passage is in a blocked state.
- an elastic support member is provided between the first valve body and the second valve body, and the elastic support member passes through the through hole;
- Both ends of the elastic support member are in contact with the first valve body and the second valve body respectively;
- the elastic force of the elastic support member is smaller than the elastic force of the elastic member.
- the first valve body is provided with a first installation groove at one end toward the second valve body
- the second valve body is provided with a second installation groove at one end toward the first valve body
- the The first mounting slot is arranged opposite to the second mounting slot
- the elastic support member is at least partially embedded in the first installation groove and the second installation groove.
- an embodiment of the present disclosure discloses a fire prevention device, including: a housing and a valve body;
- the housing has a fluid channel, and the fluid channel is used to communicate with the oxygen therapy device or the pipeline at the patient end;
- the valve body is disposed in the fluid channel, and the valve body has a first position and a second position relative to the fluid channel;
- valve body When in the second position, the valve body blocks the fluid channel
- the inner walls at both ends of the fluid channel are respectively provided with at least one raised fusible support portion
- the valve body When the fusible support part is in a non-melted state, the valve body is engaged with the fusible support part to support the valve body in the first position;
- the valve body switches from the first position to the second position.
- the fire protection device further includes: an elastic member;
- the elastic member is disposed between the valve body and the inner wall of the fluid channel;
- the elastic member is used to provide elastic driving force when the valve body switches from the first position to the second position.
- valve body includes a clamping member and a sealing member, the clamping member and the sealing member are of separate structure, and the clamping member and the sealing member are respectively connected with the inner wall of the fluid channel. sliding connection;
- the elastic member is disposed between the clamping member and the inner wall of the fluid channel;
- One end of the clamping member is used to clamp with the fusible support part, and the other end of the clamping member is used to push against the sealing member;
- a protruding first guide portion is provided at one end of the clamping member close to the sealing member, and the first guide portion is slidably matched with the inner wall of the fluid channel;
- the elastic member is sleeved on the clamping member, one end of the elastic member is in contact with the inner wall of the fluid channel, and the other end of the elastic member is in contact with the first guide part;
- the elastic member When the clamping member is clamped with the fusible support part, the elastic member is compressed by the inner wall of the fluid channel and the first guide part.
- the fluid channel includes a main body and openings provided at both ends of the main body, wherein the inner diameter of the opening is smaller than the inner diameter of the main body;
- connection between the main body and the opening narrows to form a shoulder
- the fusible support part is provided on the inner wall of the opening;
- One end of the elastic member is in contact with the shoulder, and the other end of the elastic member is in contact with the first guide portion.
- the latch is provided with a protruding second guide portion, and the second guide portion is slidably matched with the inner wall of the opening.
- the sealing member has an end face on one side facing the clamping member, and a peripheral side of the end face extends toward the clamping member to form a third guide portion, and the third guide portion is in contact with the fluid channel.
- the inner wall slides into place.
- the third guide part and the end surface enclose a limiting groove
- the latch extends toward one end of the seal to form a limiting portion, and the limiting portion is at least partially embedded in the limiting groove.
- the outer side wall of the sealing member extends to form a raised fourth guide portion, and the fourth guide portion is slidably engaged with the inner wall of the fluid channel.
- one end of the clamping member is provided with a groove toward the sealing member, and one end of the sealing member is provided with a boss toward the clamping member, and the boss is at least partially embedded in the recess. groove.
- a fire prevention device including: a housing and a valve body;
- the housing has a fluid channel, and the fluid channel is used to communicate with the oxygen therapy device or the pipeline at the patient end;
- the valve body is disposed in the fluid channel, and the valve body has a first position and a second position relative to the fluid channel;
- valve body When in the second position, the valve body blocks the fluid channel
- the inner walls at both ends of the fluid channel are respectively provided with at least one raised support portion
- a fusible part is provided at one end of the valve body close to the support part
- the valve body When the fusible part is in a non-melted state, the valve body is engaged with the supporting part to support the valve body in the first position;
- the valve body switches from the first position to the second position.
- the outer diameter of the fusible portion is smaller than the outer diameter of other positions of the valve body.
- the fire protection device further includes: an elastic member;
- the elastic member is disposed between the valve body and the inner wall of the fluid channel;
- the elastic member is used to provide elastic driving force when the valve body switches from the first position to the second position.
- valve body includes a clamping member and a sealing member, the clamping member and the sealing member are of separate structure, and the clamping member and the sealing member are respectively connected with the inner wall of the fluid channel. sliding connection;
- the fusible part is provided at one end of the clamping member close to the support part, and the elastic member is provided between the clamping member and the inner wall of the fluid channel;
- One end of the clamping member is used to clamp with the support part, and the other end of the clamping member is used to push against the sealing member;
- a protruding first guide portion is provided at one end of the clamping member close to the sealing member, and the first guide portion is slidably matched with the inner wall of the fluid channel;
- the elastic member is sleeved on the clamping member, one end of the elastic member is in contact with the inner wall of the fluid channel, and the other end of the elastic member is in contact with the first guide part;
- the elastic member When the clamping member is clamped with the support part, the elastic member is compressed by the inner wall of the fluid channel and the first guide part.
- the fluid channel includes a main body and openings provided at both ends of the main body, wherein the inner diameter of the opening is smaller than the inner diameter of the main body;
- connection between the main body and the opening narrows to form a shoulder
- the support part is provided on the inner wall of the opening part
- One end of the elastic member is in contact with the shoulder, and the other end of the elastic member is in contact with the first guide portion.
- the latch is provided with a protruding second guide portion, and the second guide portion is slidably matched with the inner wall of the opening.
- the sealing member has an end face on one side facing the clamping member, and a peripheral side of the end face extends toward the clamping member to form a third guide portion, and the third guide portion is in contact with the fluid channel.
- the inner wall slides into place.
- the third guide part and the end surface enclose a limiting groove
- the latch extends toward one end of the seal to form a limiting portion, and the limiting portion is at least partially embedded in the limiting groove.
- the outer side wall of the seal extends to form a raised fourth guide portion, and the fourth guide portion The upward part is slidably engaged with the inner wall of the fluid channel.
- one end of the clamping member is provided with a groove toward the sealing member, and one end of the sealing member is provided with a boss toward the clamping member, and the boss is at least partially embedded in the recess. groove.
- an embodiment of the present disclosure also discloses a ventilation treatment device, including the above-mentioned fire prevention device.
- the inner wall of the fluid channel is provided with a support part
- the valve body is engaged with the fusible support part, so that the valve body is in the first position, and there is a gap for fluid to pass between the valve body and the through hole of the inner shell.
- the elastic member is in a compressed state; after at least one of the support part and the valve body is melted, the elastic member releases at least part of the elastic potential energy, driving the valve body to contact the peripheral side of the through hole, so that the fluid channel is in a blocked state.
- the trigger system composed of a support part, an elastic member and a valve body can cause the valve body to move to the second position in time and contact the peripheral side of the through hole when any one of the valve body and the support part melts. Blocking the air path increases the triggering speed of the valve body, reduces the risk of fire spreading due to untimely triggering, and thereby improves the safety factor of the fire protection device.
- the present disclosure also provides a fire prevention device and ventilation treatment equipment, aiming to solve the problem in related technologies that the support member melts slowly, causing the sealing valve to be unable to move to the opening in time, and the air path cannot be quickly blocked, which easily causes the spread of fire. .
- an embodiment of the present disclosure discloses a fire prevention device, which includes: a housing, a seal, a valve body and an elastic member;
- the fluid channel is used to communicate with the oxygen therapy device or the pipeline at the patient end;
- the sealing member is connected to the inner wall of the fluid channel, the sealing member is provided with a gap, and the gap is used to pass fluid;
- valve body is slidingly connected to the inner wall of the fluid channel, and the elastic member is disposed between the valve body and the inner wall of the fluid channel;
- the valve body is provided with a fusible portion, the inner wall of the fluid channel is provided with at least one protruding fusible support portion, one end of the valve body is arranged opposite to the notch, and the other end of the valve body is provided with To snap into place with the fusible support part;
- the valve body has a first position and a second position relative to the fluid passage
- the valve body When the fusible support part and the fusible part are in a non-melted state, the valve body is engaged with the fusible support part to support the valve body in the first position, and The valve body is sealed with the There is a gap for fluid to pass between the seals, and the elastic member is in a compressed state;
- the elastic member releases at least part of the elastic potential energy to drive the valve body to the second position, and the valve body is in contact with the The notch of the sealing member is engaged so that the fluid channel is in a blocked state.
- valve body has an integrated structure.
- the notch has opposing first and second sides
- the valve body is provided on at least one side of the notch, and when at least one side of the notch is engaged with the valve body, the fluid channel is in a blocked state.
- valve body includes a clamping part, a connecting part and a sealing part, and the clamping part and the sealing part are connected through the connecting part;
- the clamping part is used to clamp with the fusible support part to support the valve body in the first position
- the sealing portion is arranged opposite to the notch and is used to engage with the notch when the valve body is in the second position;
- the fusible part is provided at the connecting part.
- the elastic member is sleeved on the connecting part, one end of the elastic member is in contact with the inner wall of the fluid channel, and the other end of the elastic member is in contact with the sealing part;
- the elastic member When the engaging portion is engaged with the fusible support portion, the elastic member is compressed by the inner wall of the fluid channel and the sealing portion;
- the elastic member releases at least part of the elastic potential energy, driving the sealing part to engage with the gap, so that the fluid channel is in a molten state. blocking state.
- the fluid channel includes a main body and openings provided at both ends of the main body, wherein the inner diameter of the opening is smaller than the inner diameter of the main body;
- connection between the main body and the opening narrows to form a shoulder
- the fusible support part is provided on the inner wall of the opening, and the sealing member is connected to the inner wall of the main body;
- One end of the elastic member is in contact with the shoulder portion, and the other end of the elastic member is in contact with the sealing portion.
- the sealing part is provided with a raised first guide part, and the first guide part is in sliding fit with the inner wall of the main body;
- One end of the elastic member is in contact with the shoulder, and the other end of the elastic member is in contact with the first guide portion.
- the connecting part is provided with a raised second guide part, and the second guide part is slidably matched with the inner wall of the opening part.
- the number of the fusible support parts is two or more, and the fusible support parts are arranged at intervals along the circumference of the inner wall of the opening.
- the housing includes a first housing and a second housing
- the first housing and/or the second housing are provided with mounting slots;
- the sealing member When the first housing and the second housing are assembled, the sealing member has an interference fit with the installation slot.
- the installation slot is provided with an expansion portion
- the edge of the seal extends to form an embedded portion, and the embedded portion is at least partially embedded in the expanded portion.
- the fire protection device includes two valve bodies symmetrically arranged in the fluid channel;
- the two valve bodies are located on both sides of the seal;
- the elastic member is disposed between each valve body and the inner wall of the fluid channel;
- the fusible support parts are respectively provided in the openings at both ends of the main body.
- an embodiment of the present disclosure also discloses a ventilation treatment device, including the above-mentioned fire prevention device.
- the valve body is provided with a fusible part
- the inner wall of the fluid channel is provided with a fusible support part.
- the valve body and the fusible support part are The valve body is clamped to support the valve body in the first position, there is a gap for fluid to pass between the valve body and the sealing member, and the elastic member is in a compressed state; when the fusible support part and/or the fusible part is in a molten state, The elastic member releases at least part of the elastic potential energy to drive the valve body to the second position, and the valve body engages with the notch of the sealing member so that the fluid channel is in a blocked state.
- the valve body By utilizing the combination of the fusible part and the fusible support part, when any one of the fusible part and the fusible support part melts, the valve body can be moved to the second position in time and engaged with the gap of the seal. This further blocks the air path, increases the triggering speed of the valve body, reduces the risk of fire spreading due to untimely triggering, and thereby improves the safety factor of the fire protection device.
- Embodiments of the present disclosure also provide a fire damper and ventilation equipment to block the delivery of oxygen when a fire breaks out on the user side.
- the present disclosure provides a fire damper for use in ventilation equipment, including a housing and a seal; the housing is provided with a penetrating air flow channel, and the air flow channel is provided with a third air flow channel that separates the air flow channel.
- a partition, the first partition is provided with a first vent hole; the seal is located in the air flow channel, and has a first gap between it and the first vent hole before being heated, so that the gas Flows from one end of the airflow channel to the other end through the first vent hole and the first gap;
- the sealing member includes a heat shrinkable material layer, so that the sealing member shrinks after being heated and blocks the first A vent.
- the first vent hole faces the sealing member, and the projection of the sealing member completely covers the first vent hole, so that the sealing member shrinks and fits after being heated. on the first partition and covering the first vent hole.
- the first partition includes a first vent tube, and the first vent hole is provided on a side wall of the first vent tube; the sealing member is tubular and is sleeved on the first vent tube. The outside of the trachea.
- the first vent pipe divides the airflow channel into a first channel and a second channel
- the sealing member is located in the second channel
- the outer wall of the sealing member is in contact with the second channel.
- the sealing member is in a tubular shape, and one end of the sealing member is connected to the periphery of the first vent hole; the other end of the sealing member is in an open state before being heated, and is in a closed state after shrinking by heat.
- the seal further includes a hot melt layer located inside the heat shrinkable material layer.
- the wall thickness of the end of the hot melt layer away from the first vent hole is greater than the wall thickness of the end close to the first vent hole.
- the hot melt layer is provided with a plurality of protrusions facing the inside of the seal.
- a second partition is also provided in the air flow channel, and a second ventilation hole is provided on the second partition.
- the first partition and the second partition are arranged along the axis of the air flow channel.
- the sealing member is arranged to be spaced apart, and the sealing member seals the second vent hole after being heated and shrinking.
- the present disclosure provides a ventilation device, including the fire damper.
- a first partition is provided in the housing.
- the first partition separates the air flow channel in the housing into two parts that are connected through the first vent hole.
- a first gap is provided between the sealing member and the first vent hole before being heated, thereby allowing normal communication between the two parts of the air flow channel.
- the sealing member includes a layer of heat shrinkable material, so that the sealing member can block the first vent hole after being heated, so that the air flow channel can be There is no connection between the two parts, thus cutting off the oxygen transport channel.
- the fire damper provided by the present disclosure includes a shell and a seal, has a smaller number of parts, and has a simple structure.
- the present disclosure provides an automatic fire protection device used in oxygen therapy equipment, which can avoid failure when in contact with oxygen for a long time, thereby increasing the service life of the automatic fire protection device.
- the present disclosure provides an automatic fire prevention device applied to oxygen therapy equipment, including:
- the sealing member when the sealing member is in the first state, there is a gap between the sealing part and the gas outlet end of the gas channel, so that the gas channel is opened; when the sealing member is in the second state, the sealing part Fitted with the gas outlet end of the gas channel, so that the gas channel is closed.
- the seal further includes a first connecting piece and a second connecting piece respectively provided on the sealing part, and the first connecting piece and the second connecting piece are respectively fixed on the gas
- the first connecting member and the second connecting member are both fixed in the housing and in a stretched state, so that the sealing part A gap is formed away from the gas channel and the outlet end of the gas channel;
- the first connecting member is fixed in the housing and is in a stretched state, and the The second connecting piece is disconnected and in a natural state, so that the sealing portion is close to the gas channel and fits the air outlet end of the gas channel.
- the second connecting piece is fixed in the housing through a fixing structure, and the fixing structure is configured to be fused after being heated beyond a preset temperature, so that the second connecting piece is formed by the The stretched state is transformed into the natural state.
- the housing is further provided with a mounting arm for mounting the seal, and the first connecting piece and the second connecting piece are respectively fixedly connected to both ends of the mounting arm;
- the second connecting piece is connected to the mounting arm through the fixing structure to be fixed in the housing.
- the fixing structure can be fused after being heated beyond the preset temperature, so that the second The connecting piece is disconnected from the mounting arm, and the second connecting piece is transformed from the stretched state to the natural state.
- the first connecting piece is disposed on a side wall of the sealing part, and the second connecting piece is disposed on an end side of the sealing part, wherein the first connecting piece and When the second connecting members are in their natural state, the extension direction of the first connecting member is consistent with the extension direction of the second connecting member.
- the extension direction is vertical:
- first connecting piece and the second connecting piece are respectively provided on corresponding sides of the sealing part, and the first connecting piece is located on a side of the sealing part away from the second connecting piece. Side: wherein, when the first connecting piece and the second connecting piece are both in a natural state, the first connecting piece and the second connecting piece respectively extend in opposite directions.
- the mounting arm includes:
- a transfer block a receiving hole is provided in the transfer block, and the gas channel is provided penetratingly in the receiving hole; a mounting column, the mounting column is provided on the side wall of the transfer block, the The mounting post is used to connect with the first connecting piece; and
- a connecting plate extending along the axial direction of the receiving hole.
- a triggering post is provided on the side of the connecting plate away from the adapter block. The triggering post is used to connect to the second connecting piece.
- the first connecting piece is connected to the mounting post, and when the second connecting piece is connected to the triggering post, the sealing member is in the first state in the housing; the first connecting piece is connected to the mounting post.
- the sealing member is in the second state in the housing.
- the fixed structure includes a connecting ring located at the end of the second connecting piece and the triggering post, and the connecting ring can cooperate with the triggering post:
- connecting ring and/or the triggering post can be fused after being heated beyond the preset temperature.
- the mounting post includes:
- a connecting post extending along the radial direction of the accommodation hole on the side wall of the adapter block
- a stopper truncated cone which is disposed on the connecting column; and a fixing column, which is disposed on the end of the stopper circus cone and is used to connect with the inner wall of the housing, thereby connecting the The mounting arm is fixed in the housing.
- the first connecting member is provided with a first connecting hole extending through its thickness direction, and the inner diameter of the first connecting hole is smaller than the maximum outer diameter of the stopper truncated cone.
- the mounting posts are symmetrically arranged on the side walls of the adapter block, and the number and distribution of the first connectors are the same as the number and distribution of the mounting posts, so The number of both the first connecting piece and the mounting post is at least two.
- connection plate includes:
- a recessed portion one end of which is connected to the side wall of the adapter block, and the recessed portion is used to receive the sealing portion;
- An extension plate is connected to the other end of the recessed portion, the extension plate extends along the axial direction of the receiving hole, and the triggering post is disposed on a side of the extension plate away from the recessed portion.
- the housing includes a first housing and a second housing. After the first housing and the second housing are connected, a sealed chamber is formed inside the first housing and the second housing, and the gas channel passes from the first housing to the second housing.
- the inner wall of the chamber extends on one side:
- a first nozzle is provided on one side of the first housing, and a second nozzle is provided on the side of the second housing opposite to the first housing:
- the sealing member when the sealing member is in the first state, the first nozzle, the gas channel, the chamber and the second nozzle are in fluid communication; when the sealing member is in the second state, the first nozzle, the gas channel, the chamber and the second nozzle are in fluid communication; Fluid entering the gas channel through a nozzle is isolated from the chamber outside the gas channel.
- a connecting groove is provided on the inner wall of the chamber, and the connecting groove is used to connect with the fixed column.
- the trigger post is disposed in the chamber or in the second nozzle.
- the outer walls of the first nozzle and the second nozzle are both provided with anti-separation parts.
- first housing and the second housing are connected by sealing buckle, welding or threaded connection.
- the seal is made of elastic non-metallic material, even if it is in contact with oxygen for a long time, it will not undergo chemical reactions such as oxidation, thereby increasing the service life of the automatic fire protection device used in oxygen therapy equipment, and Avoid affecting the health of users.
- the purpose of this disclosure is to provide a fire prevention device and ventilation treatment equipment that can solve the problem of using an oxygen therapy device in related technologies. If a flame appears, the flame will gradually burn towards the fuselage along with the oxygen tube, easily causing the fire to spread. Eventually, a serious fire broke out in the oxygen concentrator.
- the present disclosure provides a fire protection device, including: a housing, a first valve body, a second
- the valve body and the elastic member have a fluid channel inside the housing, and one end of the housing has a first opening, and the second end of the housing has a second opening, and the first opening and the The second openings are all connected to the fluid channel, and the first opening and the second opening are used to communicate with the pipeline of the oxygen therapy device or the pipeline of the oxygen supply end;
- the first valve body and the second valve body are both located in the fluid channel, and the first valve body and the second valve body are arranged along the first opening to the second opening.
- a first limiting rib is fixed on the hole wall of the first opening
- a second limiting rib is fixed on the hole wall of the second opening
- the first end of the first valve body The first end of the second valve body is in contact with the first limiting rib
- the first end of the second valve body is in contact with the second limiting rib.
- the elastic member is located between the first valve body and the second valve body.
- the elastic member When the first limiting rib is in a molten state, the elastic member is elongated, the first valve body is in the first position, and the first valve body is sealingly connected to the channel wall of the fluid channel, to block the fluid channel; when the second limiting rib is in a molten state, the elastic member is extended, the second valve body is in the second position, and the second valve body is in contact with the The channel walls of the fluid channel are sealingly connected to block the fluid channel.
- the first valve body includes a first mounting rod and a first mounting seat.
- the axial direction of the first mounting rod is consistent with the expansion and contraction direction of the elastic member.
- One end of the first mounting rod is in contact with the first mounting seat.
- the first mounting seat is connected, the other end of the first mounting rod is in contact with the first limiting rib, and one end of the elastic member is in contact with the first mounting seat;
- the second valve body includes a second mounting rod and a second mounting seat.
- the axis direction of the second mounting rod is consistent with the expansion and contraction direction of the elastic member.
- One end of the second mounting rod is in contact with the second mounting seat.
- the other end of the second mounting rod is in contact with the second limiting rib, and the other end of the elastic member is in contact with the second installation seat;
- the channel wall of the fluid channel of the first mounting seat is sealed and connected;
- the channel walls of the fluid channel of the second mounting seat are sealed and connected.
- an end of the first mounting base away from the first mounting rod is provided with a first mounting cavity
- a second installation cavity is provided at one end of the second installation seat away from the second installation rod.
- the first installation cavity is opposite to the second installation cavity.
- One end of the elastic member is connected to the first installation cavity.
- the bottom of the installation cavity is in contact with the bottom of the second installation cavity, and the other end of the elastic member is in contact with the bottom of the second installation cavity.
- the bottom of the first installation cavity is connected to a first guide rod
- the bottom of the second installation cavity is connected to a second guide rod
- the elastic member is sleeved on the first Guide rod and/or the second guide rod, the first guide rod and the second guide rod are used to guide the expansion and contraction of the elastic member.
- a first positioning portion is provided around the first mounting seat, and a first positioning groove is provided on the inner wall of the fluid channel.
- the extension direction of the first positioning groove is consistent with the expansion and contraction direction of the elastic member. Consistently, the first positioning portion is embedded in the first positioning groove, and the first positioning groove is used to position the first mounting base when the first limiting rib is in a molten state. limit the movement direction;
- a second positioning portion is provided around the second mounting seat, a second positioning groove is provided on the inner wall of the fluid channel, and the extension direction of the second positioning groove is consistent with the expansion and contraction direction of the elastic member. Consistently, the second positioning portion is embedded in the second positioning groove, and the second positioning groove is used to position the second mounting base when the second limiting rib is in a molten state. limit the movement direction.
- a first mounting groove is provided on the inner wall of the fluid channel, the first mounting groove extends along the circumferential direction of the fluid channel and surrounds the fluid channel, and a first mounting groove is provided in the first mounting groove.
- There is a first sealing member and a part of the first sealing member extends out of the first installation groove, the first sealing member is opposite to the first valve body, and the first sealing member is used in the When the first limiting rib is in a molten state, it abuts against the first valve body, so that the first valve body is sealingly connected to the channel wall of the fluid channel;
- a second mounting groove is provided on the inner wall of the fluid channel, the second mounting groove extends along the circumferential direction of the fluid channel and surrounds the fluid channel, and a second mounting groove is provided in the second mounting groove.
- the channel wall of the fluid channel has a first groove along the circumferential direction of the fluid channel.
- a blocking platform and a second blocking platform and the first blocking platform and the second blocking platform are spaced apart along the direction from the first opening to the second opening;
- the first valve body and the The second valve body is located between the first blocking platform and the second blocking platform.
- the projection of the first blocking platform is in line with the projection of the first blocking platform.
- the projection of the first valve body has an overlapping portion, and the projection of the second blocking platform and the projection of the second valve body have an overlapping portion;
- the first blocking platform has a first surface facing the first valve body in the direction from the first opening to the second opening, and the first mounting groove is provided on the first surface, so The first mounting groove extends along the circumferential direction of the fluid channel, and in the direction from the first opening to the second opening, the projection of the first mounting groove is located at the first valve inside the body’s projection;
- the second blocking platform has a second surface facing the second valve body in the direction from the first opening to the second opening, and the second mounting groove is provided on the second On the surface, the second mounting groove extends along the circumferential direction of the fluid channel, and the projection of the second mounting groove is located at the direction from the first opening to the second opening. The projected interior of the second valve body.
- the housing includes a first sub-housing and a second sub-housing, the first sub-housing is arranged opposite to the second sub-housing, and a third sub-housing is provided inside the first sub-housing.
- a channel, a second channel is provided in the second sub-casing, the first sub-casing is connected to the second sub-casing, and the first channel and the second channel are connected to form the fluid channel, the first valve body is arranged in the first housing, and the second valve body is arranged in the second housing.
- the first opening is connected to a first joint, and the first joint is connected to the fluid channel;
- the second opening is connected with a second joint, and the second joint is connected with the fluid channel;
- the first connector and the second connector are used to communicate with the pipeline of the oxygen therapy device or the pipeline of the oxygen supply end.
- the present disclosure provides a ventilation treatment device, specifically including an oxygen therapy device, an oxygen supply end, and the fire prevention device described in any one of the above first aspects; the first opening is connected to the oxygen therapy device, The second opening is connected to the oxygen supply end; or the second opening is connected to the oxygen therapy device, and the first opening is connected to the oxygen supply end.
- the fire protection device includes a shell, a first valve body, a second valve body and an elastic member.
- the shell has a fluid channel inside, one end of the shell has a first opening, and the second end of the shell has a second opening, since the first opening and the second opening are both connected to the fluid channel, therefore, the first opening and the fluid passage
- the channel, the second opening may form a channel for allowing gas to flow.
- the first opening and the second opening are used to communicate with the pipeline of the oxygen therapy device or the pipeline of the oxygen supply end, so that one end of the fluid channel can be connected with the oxygen therapy device through the first opening and the second opening.
- the pipeline is connected so that the other end of the fluid channel is connected to the pipeline at the oxygen supply end, and the oxygen therapy instrument can deliver oxygen to the patient through the oxygen supply end.
- a first limiting rib is fixed on the hole wall of the first opening
- a second limiting rib is fixed on the hole wall of the second opening
- the first end of the first valve body is in contact with the first limiting rib
- the first limiting rib is fixed on the hole wall of the second opening.
- the second end of the second valve body is in contact with the second limiting rib
- an elastic member is connected between the second end of the first valve body and the second end of the second valve body, so that the first valve body and the second The valve bodies are spaced apart along the direction from the first opening to the second opening.
- the elastic member can move the first valve body and the second opening.
- the two valve bodies exert force so that the first valve body has a tendency to move toward the first opening, and the second valve body has a tendency to move toward the second opening.
- the first limiting rib can move toward the second opening.
- One valve body blocks, and the second limiting rib can block the second valve body. Since there is a gap for gas to flow between the peripheral portion of the first valve body and the peripheral portion of the second valve body and the channel wall of the fluid channel, during normal use, gas can flow through the gap so that the oxygen therapy device Can be used normally.
- the first limiting rib When the first limiting rib is in a molten state, the first limiting rib loses its blocking effect on the first valve body. At this time, the elastic member stretches, that is, the elastic member releases elastic potential energy, and the first valve body moves between the elastic member and the elastic member. It moves to the first position in the direction of the first opening under the action of elastic force, so that the first valve body is sealingly connected with the channel wall of the fluid channel, thereby blocking the fluid channel and preventing oxygen from continuing to flow in the fluid channel; at the second limit When the positioning rib is in a molten state, the second limiting rib loses its blocking effect on the second valve body.
- the elastic member stretches, that is, the elastic member releases elastic potential energy, and the second valve body moves toward the second valve body under the elastic force of the elastic member.
- the direction of the second opening moves to the second position so that the second valve body is sealingly connected to the channel wall of the fluid channel, thereby blocking the fluid channel and preventing oxygen from continuing to flow in the fluid channel.
- the first limiting rib or the second limiting rib burns in a molten state.
- the first valve body and the second valve body The elastic member provided between the bodies can push the first valve body or the second valve body to move, so that the first valve body or the second valve body is sealingly connected with the fluid channel, so that the fluid channel can be blocked.
- the fire prevention device can prevent oxygen from continuing to flow in the fluid channel and prevent the flame from gradually burning toward the fuselage along with the oxygen pipe, which can easily cause the fire to spread and eventually ignite the oxygen concentrator and cause a serious fire.
- Figure 1 shows a schematic diagram of the explosion structure of the first fire protection device described in the embodiment of the present disclosure
- Figure 2 shows a schematic structural diagram of the first fire prevention device described in the embodiment of the present disclosure in an open state
- Figure 3 shows a schematic structural diagram of the first fire protection device described in the embodiment of the present disclosure in a closed state
- Figure 4 shows one of the structural schematic diagrams of the first valve body described in the embodiment of the present disclosure
- Figure 5 shows the second structural schematic diagram of the first valve body described in the embodiment of the present disclosure
- Figure 6 shows one of the schematic structural diagrams of the first housing described in the embodiment of the present disclosure
- Figure 7 shows the second schematic structural diagram of the first housing described in the embodiment of the present disclosure
- Figure 8 shows one of the structural schematic diagrams of the second fire protection device described in the embodiment of the present disclosure
- Figure 9 shows the second structural schematic diagram of the second fire protection device described in the embodiment of the present disclosure.
- Figure 10 shows the third structural schematic diagram of the second fire protection device described in the embodiment of the present disclosure.
- Figure 11 shows a schematic structural diagram of the first housing described in the embodiment of the present disclosure
- Figure 12 shows a schematic diagram of the assembly structure of the first housing and the second housing described in the embodiment of the present disclosure
- Figure 13 shows one of the structural schematic diagrams of the second housing described in the embodiment of the present disclosure
- Figure 14 shows the second schematic structural diagram of the second housing described in the embodiment of the present disclosure
- Figure 15 shows a schematic structural diagram of the gas channel in an open state according to the embodiment of the present disclosure
- Figure 16 shows a schematic structural diagram of the gas channel in a closed state in the embodiment of the present disclosure
- Figure 17 shows one of the structural schematic diagrams of the third fire protection device described in the embodiment of the present disclosure in an open state
- Figure 18 shows the second structural schematic diagram of the third fire protection device in the open state in the embodiment of the present disclosure
- Figure 19 shows the structure of the third fire protection device described in the embodiment of the present disclosure in a closed state.
- Figure 20 shows the second structural schematic diagram of the third fire prevention device described in the embodiment of the present disclosure in a closed state
- Figure 21 shows a schematic structural diagram of the third fire prevention device described in the embodiment of the present disclosure.
- Figure 22 shows a schematic diagram of the assembly structure of the support member and the first elastic valve body described in the embodiment of the present disclosure
- Figure 23 shows the third structural schematic diagram of the third fire protection device in the open state in the embodiment of the present disclosure
- Figure 24 shows the fourth structural schematic diagram of the third fire protection device in the open state in the embodiment of the present disclosure
- Figure 25 shows the third structural schematic diagram of the third fire prevention device described in the embodiment of the present disclosure in a closed state
- Figure 26 shows the fourth structural schematic diagram of the third fire prevention device described in the embodiment of the present disclosure in a closed state
- Figure 27 shows the fifth structural schematic diagram of the third fire protection device in the open state in the embodiment of the present disclosure
- Figure 28 shows the sixth structural schematic diagram of the third fire protection device in the open state in the embodiment of the present disclosure
- Figure 29 shows one of the structural schematic diagrams of the fourth fire prevention device described in the embodiment of the present disclosure.
- Figure 30 shows the second structural schematic diagram of the fourth fire prevention device described in the embodiment of the present disclosure
- Figure 31 shows the third structural schematic diagram of the fourth fire protection device described in the embodiment of the present disclosure.
- Figure 32 shows the fourth structural schematic diagram of the fourth fire prevention device described in the embodiment of the present disclosure
- Figure 33 shows one of the structural schematic diagrams of the fifth fire prevention device described in the embodiment of the present disclosure in an open state
- Figure 34 shows one of the structural schematic diagrams of the fifth fire prevention device described in the embodiment of the present disclosure in a closed state
- Figure 35 shows the second structural schematic diagram of the fifth fire prevention device described in the embodiment of the present disclosure in an open state
- Figure 36 shows the third structural schematic diagram of the fifth fire protection device in the open state according to the embodiment of the present disclosure
- Figure 37 shows the fourth structural schematic diagram of the fifth fire protection device in the open state in the embodiment of the present disclosure
- Figure 38 shows one of the schematic diagrams of the assembly structure of the first positioning member and the second housing described in the embodiment of the present disclosure
- Figure 39 shows the second schematic diagram of the assembly structure of the first positioning member and the second housing described in the embodiment of the present disclosure
- Figure 40 shows a schematic structural diagram of the fifth fire prevention device described in the embodiment of the present disclosure.
- Figure 41 shows the fifth structural schematic diagram of the fifth fire protection device in the open state according to the embodiment of the present disclosure
- Figure 42 shows the second structural schematic diagram of the fifth fire prevention device described in the embodiment of the present disclosure in a closed state
- Figure 43 shows the sixth structural schematic diagram of the fifth fire protection device in the open state in the embodiment of the present disclosure
- Figure 44 shows the seventh structural schematic diagram of the fifth fire prevention device described in the embodiment of the present disclosure in the open state
- Figure 45 shows the third structural schematic diagram of the fifth fire prevention device described in the embodiment of the present disclosure in a closed state
- Figure 46 shows one of the structural schematic diagrams in which the fluid channel in the sixth fire protection device described in the embodiment of the present disclosure is in an open state
- Figure 47 shows the second structural schematic diagram of the fluid channel in the open state of the sixth fire prevention device described in the embodiment of the present disclosure
- Figure 48 shows one of the structural schematic diagrams in which the fluid channel in the sixth fire protection device described in the embodiment of the present disclosure is in a closed state
- Figure 49 shows the second structural schematic diagram in which the fluid channel in the sixth fire protection device described in the embodiment of the present disclosure is in a closed state
- Figure 50 shows one of the structural schematic diagrams of the second valve body described in the embodiment of the present disclosure
- Figure 51 shows a schematic structural diagram of the third housing described in the embodiment of the present disclosure.
- Figure 52 shows the third structural schematic diagram in which the fluid channel in the sixth fire protection device described in the embodiment of the present disclosure is in an open state
- Figure 53 shows that the fluid channel in the sixth fire protection device described in the embodiment of the present disclosure is open.
- Figure 54 shows the third structural schematic diagram in which the fluid channel in the sixth fire prevention device described in the embodiment of the present disclosure is in a closed state
- Figure 55 shows the fourth structural schematic diagram in which the fluid channel in the sixth fire protection device described in the embodiment of the present disclosure is in a closed state
- Figure 56 shows the second structural schematic diagram of the second valve body described in the embodiment of the present disclosure
- Figure 57 shows one of the structural schematic diagrams of the seventh fire prevention device described in the embodiment of the present disclosure.
- Figure 58 shows a schematic structural diagram of the third valve body described in the embodiment of the present disclosure.
- Figure 59 shows one of the schematic structural diagrams of the base described in the embodiment of the present disclosure.
- Figure 60 shows one of the schematic diagrams of the third valve body assembly structure described in the embodiment of the present disclosure.
- Figure 61 shows the second structural schematic diagram of the seventh fire prevention device described in the embodiment of the present disclosure.
- Figure 62 shows the second schematic diagram of the third valve body assembly structure described in the embodiment of the present disclosure.
- Figure 63 shows the third structural schematic diagram of the seventh fire prevention device described in the embodiment of the present disclosure.
- Figure 64 shows a schematic structural diagram of the first valve body described in one embodiment of the present disclosure
- Figure 65 shows the second schematic diagram of the base structure described in the embodiment of the present disclosure.
- Figure 66 shows a schematic diagram of the assembly structure of the first valve body according to an embodiment of the present disclosure
- Figure 67 shows a schematic diagram of the assembly structure of the first valve body, the second valve body and the base described in one embodiment of the present disclosure
- Figure 68 shows one of the structural schematic diagrams of the eighth fire prevention device described in the embodiment of the present disclosure.
- Figure 69 shows the second structural schematic diagram of the eighth fire prevention device described in the embodiment of the present disclosure.
- Figure 70 shows the third structural schematic diagram of the eighth fire prevention device described in the embodiment of the present disclosure.
- Figure 71 shows the fourth structural schematic diagram of the eighth fire prevention device described in the embodiment of the present disclosure.
- Figure 72 shows the fifth structural schematic diagram of the eighth fire prevention device described in the embodiment of the present disclosure.
- Figure 73 shows one of the structural schematic diagrams of the ninth fire prevention device described in the embodiment of the present disclosure.
- Figure 74 shows the second structural schematic diagram of the ninth fire prevention device described in the embodiment of the present disclosure.
- Figure 75 shows the third structural schematic diagram of the ninth fire prevention device described in the embodiment of the present disclosure.
- Figure 76 is a cross-sectional view of a fire damper in the related art
- Figure 77 is a isometric view of a fire damper provided by an embodiment of the present disclosure.
- Figure 78 is a cross-sectional view of a fire damper provided by an embodiment of the present disclosure.
- Figure 79 is a second cross-sectional view of a fire damper provided by an embodiment of the present disclosure.
- Figure 80 is a cross-sectional view of another fire damper provided by an embodiment of the present disclosure.
- Figure 81 is a second cross-sectional view of another fire damper provided by an embodiment of the present disclosure.
- Figure 82 is a cross-sectional view of another fire damper provided by an embodiment of the present disclosure.
- Figure 83 is a second cross-sectional view of another fire damper provided by an embodiment of the present disclosure.
- Figure 84 is a cross-sectional view of another fire damper provided by an embodiment of the present disclosure.
- Figure 85 is a partial enlarged view of the quick-plug connector in Figure 84;
- Figure 86 is a cross-sectional view of a fire damper provided by an embodiment of the present disclosure.
- Figure 87 is a second cross-sectional view of a fire damper provided by an embodiment of the present disclosure.
- Figure 88 is a cross-sectional view of another fire damper provided by an embodiment of the present disclosure.
- Figure 89 is a cross-sectional view of another fire damper provided by an embodiment of the present disclosure.
- Figure 90 is a cross-sectional view of another fire damper provided by an embodiment of the present disclosure.
- Figure 91 is a schematic structural diagram of a fire isolation device in the related art.
- Figure 92 is a schematic three-dimensional structural diagram of an automatic fire prevention device applied to oxygen therapy equipment in one embodiment of the present disclosure
- Figure 93 is a perspective cross-sectional view of the automatic fire protection device shown in Figure 92, which shows that the seal is in a first state and the trigger column and the connecting ring are connected in the chamber;
- Figure 94 is a cross-sectional view of the automatic fire protection device shown in Figure 92;
- Figure 95 is a schematic three-dimensional structural view of the seal shown in Figure 93, in which the seal is in an unstretched state;
- Figure 96 is a schematic three-dimensional structural view of the seal shown in Figure 93, in which the seal is in a stretched state;
- Figure 97 is a schematic three-dimensional structural view of the mounting arm shown in Figure 96;
- Figure 98 is a structural schematic diagram of the seal shown in Figure 93 being stretched and installed on the mounting arm;
- Figure 99 is a perspective cross-sectional view of the automatic fire protection device shown in Figure 92, showing the seal in a second state;
- Figure 100 is a perspective cross-sectional view of an automatic fire protection device applied to oxygen therapy equipment in another embodiment of the present disclosure, which shows that the trigger column and the connecting ring are connected in the second nozzle.
- Figure 101 is a cross-sectional view of a tenth fire prevention device provided by an embodiment of the present disclosure
- Figure 102 is a schematic diagram of the first limiting rib in a molten state in the tenth fire prevention device provided by an embodiment of the present disclosure
- Figure 103 is a side view of a tenth fire prevention device provided by an embodiment of the present disclosure.
- Figure 104 is a schematic diagram of a tenth fire prevention device provided by an embodiment of the present disclosure.
- Figure 105 is a cross-sectional view of an eleventh fire prevention device provided by an embodiment of the present disclosure.
- Figure 106 is a structural diagram of a first valve body provided by another embodiment of the present disclosure.
- Figure 107 is one of the side views of the first valve body provided by another embodiment of the present disclosure.
- Figure 108 is the second side view of the first valve body provided by another embodiment of the present disclosure.
- Second connecting piece 1-421, first connection hole; 1-431, connection ring; 1-432, second connection hole; 1-50, installation arm; 1-51, adapter block; 1-52, mounting column; 1-53, connecting plate; 1-511, receiving hole; 1-521, connecting column; 1-522, stopper round cone; 1-523, fixed column; 1-531, depression; 1-532, extension plate; 1-533, trigger column; 2-100: Fire protection device; 2-20: First valve body; 2-30: Second valve body; 2-40: Elastic member; 2-11: Fluid channel; 2-12: first limiting rib; 2-13: second limiting rib; 2-21: first mounting rod; 2-22: first mounting seat; 2-23: first mounting cavity; 2-24: The first guide rod; 2-25: The first positioning part; 2-31: The second mounting rod; 2-32: The second mounting seat; 2-33: The second mounting cavity; 2-34: The second Two guide rods; 2-35: second positioning part; 2-14: first positioning groove; 2-15: second positioning groove; 2-16: first installation groove; 2
- a first fire protection device including: a housing 10, a valve body 20, a torsion spring 30 and a fusible member 40;
- the housing 10 has a fluid channel 101 , the fluid channel 101 is provided with a first opening 102 and a second opening 103, the first opening 102 and the second opening 103 are respectively used to communicate with the oxygen therapy device or the pipeline at the patient end;
- the valve body 20 It is located in the fluid channel 101 and is rotationally connected to the housing 10;
- the valve body 20 is provided with an accommodation cavity 201, and the fluid channel 101 and the accommodation cavity 201 are two mutually independent spaces;
- the torsion spring 30 is embedded in the accommodation cavity 201 to drive the valve body 20 and the housing 10 to rotate relative to each other;
- the fusible member 40 is provided on the inner wall of the fluid channel 101; in the fusible When the component 40 is in a non-melted state, the fusible component 40 supports the valve body 20 in the first position, and both the first opening 102 and
- the first fire protection device includes a housing 10 , a valve body 20 , a torsion spring 30 and a fusible member 40 .
- the housing 10 can be made of materials that are not prone to chemical reactions with oxygen and are resistant to high temperatures, such as stainless steel or ceramic materials.
- the fluid channel 101 is provided with a first opening 102 and a second opening 103.
- the first opening 102 and the second opening 103 may be located on opposite sides of the fluid channel 101.
- the first opening 102 and the second opening 103 are provided in the housing 10.
- the axes of the openings 103 are collinear; the first opening 102 and the second opening 103 can also be arranged at an angle on the fluid channel 101 .
- the first opening 102 and the second opening 103 are respectively used to communicate with the oxygen therapy device or the patient-side pipeline.
- the first opening 102 is connected to the oxygen therapy device-side pipeline
- the second opening 103 is connected to the patient-side pipeline.
- Oxygen flows from the third opening 102 to the patient-side pipeline.
- An opening 102 enters the fluid channel 101 and is then transmitted to the patient through a second opening 103 .
- the second opening 103 may also be connected to the pipeline at the oxygen therapy device end, and the first opening 102 may be connected to the pipeline at the patient end, which is not limited in the embodiment of the present disclosure.
- the valve body 20 is located in the fluid channel 101 and is rotationally connected to the housing 10 .
- the valve body 20 and the housing 10 can be rotationally connected using a rotating shaft 104 or a roller.
- a rotating shaft 104 is provided on the housing 10 , and the valve body 20 is sleeved on the rotating shaft 104 ; or a roller is provided on the valve body 20 , and the roller rotates relative to the inner wall of the housing 10 .
- the valve body 20 can also be made of materials that are not prone to chemical reactions with oxygen and are resistant to high temperatures.
- the valve body 20 is also provided with a sealing portion that is joined to the first opening 102 or the second opening 103.
- the sealing portion can be made of silicone, rubber or other materials, which can achieve a good sealing effect.
- the valve body 20 is provided with an accommodation cavity 201, and the fluid channel 101 and the accommodation cavity 201 are two independent spaces.
- the torsion spring 30 is embedded in the accommodation cavity 201 to drive the valve body 20 and the housing 10 to rotate relative to each other.
- the torsion spring 30 can be a metal spring such as iron, copper, or alloy, or a soft rubber that can store elastic potential energy, such as silicone or rubber.
- the torsion spring 30 can store elastic potential energy and drive the valve body 20 to rotate when a fire occurs, closing the fluid channel 101 and blocking the oxygen channel, thus achieving a fire prevention effect.
- the fusible component 40 is disposed on the inner wall of the fluid channel 101 and is located on the rotation path of the valve body 20 to support the valve body 20.
- the fusible component 40 can be made of a material with a lower melting point, such as PP, PVC and other materials.
- the fusible component 40 and the inner wall of the fluid channel 101 can be assembled by bonding, snapping, or other methods.
- the fusible member 40 When a fire does not occur (the temperature is low), the fusible member 40 is in a non-melted state, has a certain rigidity, and can support the valve body 20. At this time, the valve body 20 is in the first position, and the first opening 102 and the second opening 102 are in the first position. Both openings 103 are in an open state, and oxygen can be transmitted normally in the fluid channel 101 through the first opening 102 and the second opening 103 .
- the elastic force exerted by the torsion spring 30 on the valve body 20 and the supporting force exerted by the fusible member 40 on the valve body 20 are in a balanced state.
- the fusible member 40 When a fire occurs (high temperature), the fusible member 40 is in a molten state, and the fusible member 40 cannot continue to support the valve body 20, and the equilibrium state of the valve body 20 is broken. At this time, under the elastic force of the torsion spring 30, The valve body 20 will rotate from the first position to the second position, and the sealing portion on the valve body 20 will engage with at least one of the first opening 102 and the second opening 103 , so that the first opening 102 and the second opening 103 are At least one of them is in a closed state. At this time, the fluid channel 101 is blocked and oxygen cannot continue to be transmitted.
- the fusible member 40 when the fusible member 40 is in a non-melted state, the fusible member 40 supports the valve body 20 in the first position, the first opening 102 and the second opening 103 are both in an open state, and the fluid channel 101 normally transmits oxygen. ; In the event of a fire, the fusible component 40 will be in a molten state when the temperature reaches the melting point. The fusible component 40 is not enough to support the elastic force exerted by the torsion spring 30 on the valve body 20. The torsion spring 30 releases the stored elastic potential energy, and the valve The body 20 is driven by the torsion spring 30 to rotate from the first position to the second position.
- At least one of the first opening 102 and the second opening 103 is in a closed state, thereby cutting off the oxygen passage and preventing the continuous leakage of oxygen from causing the fire to spread; and, the accommodation cavity 201 where the torsion spring 30 is located and the fluid channel 101 Being independent of each other avoids the problem of oxidation of the torsion spring 30 and improves the durability and safety factor of the device.
- the valve body 20 includes a mounting part 202, a first connecting part 203 and a first sealing part 204; the mounting part 202 includes an inner sleeve 2021 and an outer sleeve 2022.
- the accommodation cavity 201 is located between the inner sleeve 2021 and the outer sleeve 2022; a rotating shaft 104 is provided in the fluid channel 101, and the inner sleeve 2021 is sleeved on the rotating shaft 104 and is connected with the rotating shaft 104.
- the rotating shaft 104 is rotationally connected; one end of the first connecting part 203 is connected to the side wall of the outer sleeve 2022, and the other end of the first connecting part 203 is connected to the first sealing part 204; in the valve When the body 20 is in the second position, the first sealing part 204 is engaged with the first opening 102 so that the first opening 102 is in a closed state.
- the fluid channel 101 has a first opening 102 and a second opening 103 .
- the first opening 102 and the second opening 103 When at least one of the first opening 102 and the second opening 103 is in a closed state, the fluid channel 101 is closed. Block.
- the valve body 20 includes a mounting part 202, a first connecting part 203 and a first sealing part 204.
- the valve body 20 is assembled with the housing 10 through the mounting part 202.
- the installation part 202 includes an inner sleeve 2021 and an outer sleeve 2022.
- the inner sleeve 2021 and the outer sleeve 2022 are coaxially arranged.
- the bottom surfaces of the inner sleeve 2021 and the outer sleeve 2022 are closed on one side, and the other side is in an open state.
- the outer side wall of the shaft sleeve 2021 and the inner side wall of the outer shaft sleeve 2022 together form an accommodating cavity 201, and the torsion spring 30 is embedded in the accommodating cavity 201.
- a rotating shaft 104 is provided in the fluid channel 101.
- the rotating shaft 104 and the inner wall of the fluid channel 101 can be made by an integral molding process, or they can be assembled separately and then assembled by bonding or snapping.
- the inner sleeve 2021 is sleeved on the rotating shaft 104.
- the inner sleeve 2021 is coaxially arranged with the rotating shaft 104 and is rotationally connected with the rotating shaft 104, thereby realizing relative rotation between the valve body 20 and the housing 10.
- One end of the first connecting part 203 is connected to the side wall of the outer sleeve 2022, and the other end of the first connecting part 203 is connected to the first sealing part 204.
- the first connecting part 203, the outer sleeve 2022 and the inner sleeve 2021 can be Made of the same material and made in one piece.
- the first sealing part 204 is close to the first opening 102.
- the first sealing part 204 can be made of silicone, rubber or other materials, which can achieve a good sealing effect.
- the valve body 20 further includes a second connection part 205 and a second sealing part 206 ; one end of the second connection part 205 is connected to the side of the outer sleeve 2022 wall connection, the other end of the second connection part 205 is connected to the second sealing part 206; when the valve body 20 is in the second position, the second sealing part 206 is connected to the second opening 103 is engaged, so that the second opening 103 is in a closed state.
- the valve body 20 further includes a second connection part 205 and a second sealing part 206 .
- the second sealing part 206 is close to the second opening 103 .
- the first connection part 203 and the second connection part 206 are close to the second opening 103 .
- Parts 205 are respectively located on both sides of the mounting part 202.
- One end of the second connecting part 205 is connected to the side wall of the outer sleeve 2022, and the other end of the second connecting part 205 is connected to the second sealing part 206.
- the outer sleeve 2022 can be made of the same material and made by one-piece molding.
- the second sealing part 206 can be made of silicone, rubber or other materials, which can achieve a good sealing effect.
- the second sealing portion 206 is engaged with the second opening 103 , that is, the end surface of the second sealing portion 206 is in contact with the inner wall of the fluid channel 101 around the second opening 103 and covers the second opening. 103, at this time, the second opening 103 is in a closed state, and the fluid channel 101 is blocked.
- the first connection part 203 and/or the second connection part 205 are provided with a gap 207 , and the gap 207 is used to pass fluid.
- oxygen is transmitted in the fluid channel 101 through the first opening 102 and the second opening 103 , and the first connection part 203 and the second connection part 205 are located in the fluid channel 101 , in order to avoid The first connection part 203 and the second connection part 205 hinder the normal transmission of oxygen.
- a gap 207 is provided in the first connection part 203 and/or the second connection part 205 through which oxygen can be transmitted normally in the fluid channel 101. Does not affect oxygen transfer rate.
- the notch 207 can be provided only on the first connecting part 203 or the second connecting part 205, or the notch 207 can be provided on both the first connecting part 203 and the second connecting part 205 to improve the ventilation effect.
- the shape and size of the notch 207 can be determined according to The selection is made according to actual needs, and the embodiments of the present disclosure do not limit this.
- the inner wall of the fluid channel 101 is provided with at least one limiting portion 105, and the limiting portion 105 is located on the rotation path of the valve body 20; in the valve When the body 20 is in the second position, the valve body 20 is in contact with the limiting portion 105 .
- the limiting part 105 is provided on the inner wall of the fluid channel 101 , and the limiting part 105 may be a plate-shaped, cylindrical, or other structure.
- the limiting part 105 and the housing 10 can be made using an integral molding process.
- the limiting portion 105 is located on the rotation path of the valve body 20 , that is, when the valve body 20 rotates relative to the housing 10 , it will come into contact with the limiting portion 105 .
- the number of the limiting parts 105 may be one or two. When the number of the limiting parts 105 is two, the two limiting parts 105 may be located on both sides of the valve body 20 respectively.
- the fusible component 40 When a fire occurs, the fusible component 40 is heated and melted, which is not enough to offset the rotational torque exerted by the torsion spring 30 on the valve body 20. At this time, the torsion spring 30 releases the stored elastic potential energy and promotes the interaction between the valve body 20 and the housing 10.
- the valve body 20 rotates relative to each other until the valve body 20 stops rotating when it contacts the limiting portion 105.
- the valve body 20 is just in the second position, and the fluid channel 101 is in a closed state. Under the joint action of the torsion spring 30 and the limiting portion 105, a stable assembly is formed between the valve body 20 and the housing 10.
- the housing 10 is provided with a first pipeline joint 106 and a second pipeline joint 108; the first pipeline joint 106 is provided with a first through hole 107, The first through hole 107 is connected to the first opening 102; the second pipe joint 108 is provided with a second through hole 109, and the second through hole 109 is connected to the second opening 103; The first pipeline connector 106 and the second pipeline connector 108 are respectively used to connect to the pipeline of the oxygen therapy device or the patient.
- the first pipeline joint 106 and the second pipeline joint 108 are respectively located on both sides of the fluid channel 101 , and the first pipeline joint 106 is provided with a first through hole 107 .
- a through hole 107 is connected to the first opening 102
- the second pipe joint 108 is provided with a second through hole 109
- the second through hole 109 is connected to the second opening 103 .
- the first pipe joint 106, the second pipe joint 108 and the housing 10 can be an integrated structure, or can be made separately and then assembled.
- the first pipeline connector 106 and the second pipeline connector 108 are used to communicate with the oxygen therapy device or the pipeline at the patient end.
- the pipeline at the oxygen therapy device or the patient end can be connected to the first pipeline connector 106 or the second pipeline connector 108. Assembly is achieved by threaded connection or interference fit.
- At least one clamping portion 110 is provided on the outer wall of the first pipeline connector 106 and/or the second pipeline connector 108 , and the clamping portion 110 for use with the The oxygen therapy device or the pipeline on the patient side is clamped.
- the first pipeline connector 106 and the second pipeline connector 108 are used to connect the oxygen therapy device or the patient's pipeline.
- the pipeline usually adopts a conduit, and the conduit is sleeved on the outside of the first pipeline joint 106 and the second pipeline joint 108.
- the outer wall of a pipeline connector 106 and/or the outer wall of the second pipeline connector 108 is provided with at least one snap-in portion 110 .
- the snap-in portion 110 is in the shape of a trumpet.
- the clamping portion 110 When the conduit is sleeved on the first pipeline connector 106 When the outer wall of the pipe and/or the outer wall of the second pipe joint 108 is connected, the clamping portion 110 is clamped with the conduit, ensuring the airtightness between the conduit and the first pipe joint 106 and/or the second pipe joint 108 properties to avoid oxygen leakage problems.
- the number of clamping parts 110 can be selected according to the sizes of the first pipeline connector 106 and the second pipeline connector 108 .
- the fusible member 40 has an extension portion 401 , and the extension portion 401 penetrates the first through hole 107 or the second through hole 109 .
- the fusible member 40 is located in the fluid channel 101 , that is, inside the housing 10 , and is not in direct contact with the external environment. There is a response delay, that is, when a fire occurs in the external environment, it can The molten component 40 cannot be heated and melted quickly, and the oxygen passage cannot be blocked in time. Therefore, an extension 401 is provided on the fusible member 40 and passes through the first through hole 107 or the second through hole 109 . The extension part 401 is generally close to the pipeline at the patient end.
- Whether the extension part 401 passes through the first through hole 107 or the second through hole 109 can be determined according to the assembly method of the first pipeline connector 106 and the second pipeline connector 108, for example If the first pipeline connector 106 is connected to the pipeline at the patient end, the extension part 401 can be disposed in the first through hole 107; if the second pipeline connector 108 is connected to the pipeline at the patient end, the extension part 401 can be disposed in the first through hole 107. two through holes 109.
- the extension part 401 and the fusible component 40 can be made of the same material, and the extension part 401 can also be made of copper, iron or other materials with good thermal conductivity.
- the extension 401 can burn first and ignite the fusible component 40 inside the fluid channel 101, so that the fusible component 40 melts in time; if The extension 401 made of copper, iron or other materials can quickly conduct heat to the fusible component 40 inside the fluid channel 101, allowing it to quickly reach the melting point, blocking the oxygen path in time, and reducing losses caused by fire.
- the embodiment of the present disclosure also discloses a first oxygen therapy device, including a first fire prevention device.
- oxygen therapy equipment usually consists of three parts: an oxygen generating device (such as an oxygen tank, an oxygen concentrator, etc.), an interface used to deliver oxygen to the patient (such as a nasal oxygen tube, a mask, etc.), and a connection between the generating device and the patient interface.
- An oxygen generating device such as an oxygen tank, an oxygen concentrator, etc.
- An interface used to deliver oxygen to the patient such as a nasal oxygen tube, a mask, etc.
- Pipeline A fire prevention device is arranged in series in the pipeline between the oxygen generating device and the patient interface.
- the fire prevention device has a fluid channel 101.
- the fluid channel 101 is used to communicate with the oxygen therapy device or the patient's pipeline.
- the fire protection device can control the fluid channel.
- the opening or closing of 101 controls the opening or closing of the oxygen therapy instrument pipeline.
- a first fire prevention device is connected in series in the pipeline of the first oxygen therapy device.
- the fusible member 40 When the fusible member 40 is in a non-molten state, the fusible member 40 supports the valve body 20 in the first position. Both the opening 102 and the second opening 103 are in an open state, and the fluid channel 101 transmits oxygen normally; in the event of a fire, the fusible component 40 will be in a molten state when the temperature reaches the melting point, and the fusible component 40 is not enough to support the torsion spring 30 to exert The elastic force on the valve body 20 and the torsion spring 30 release the stored elastic potential energy.
- the valve body 20 is driven by the torsion spring 30 to rotate from the first position to the second position, so that at least one of the first opening 102 and the second opening 103 One is in a closed state, thus cutting off the oxygen passage and preventing the continuous leakage of oxygen from causing the fire to spread; and, the accommodation cavity 201 where the torsion spring 30 is located and the fluid channel 101 are independent of each other, which avoids the problem of oxidation of the torsion spring 30 and improves the device durability and safety factor.
- the embodiment of the present disclosure also discloses a first ventilation treatment system, including a first oxygen therapy instrument.
- the first ventilation therapy system includes a control device and a first oxygen therapy device.
- the control device is used to control the oxygen supply amount, working time, etc. of the first oxygen therapy device.
- the control device can be an electronic device, or it can be Components in electronic equipment, such as integrated circuits or chips.
- the electronic device may be a terminal or other devices other than the terminal.
- the electronic device may be a mobile phone, a tablet computer, a notebook computer, a palmtop computer, a mobile Internet device, a robot, a wearable device, etc., which are not specifically limited in the embodiments of this disclosure.
- the first ventilation therapy system includes a first oxygen therapy device, and a first fire prevention device is connected in series in the pipeline of the first oxygen therapy device.
- a first fire prevention device is connected in series in the pipeline of the first oxygen therapy device.
- the torsion spring 30 releases the stored elastic potential energy, and the valve body 20 is driven by the torsion spring 30 to rotate from the first position to the second position. , so that at least one of the first opening 102 and the second opening 103 is in a closed state, thereby cutting off the oxygen passage and preventing the continued leakage of oxygen from causing the fire to spread; and, the torsion spring
- the accommodation cavity 201 in which the torsion spring 30 is located is independent of the fluid channel 101, which avoids the problem of oxidation of the torsion spring 30 and improves the durability and safety factor of the device.
- the second fire prevention device includes: a housing 210, an elastic member 220, a valve body 230 and a fusible member 240;
- the housing 210 has a Accommodation chamber 2101 and gas channel 2102, the gas channel 2102 is used to communicate with the oxygen therapy device or the pipeline at the patient end;
- the valve body 230 separates the accommodation chamber 2101 and the gas channel 2102 into mutually independent spaces;
- the elastic member 220 is provided in the accommodation chamber 2101 Inside, the valve body 230 is at least partially located in the gas channel 2102, and the elastic member 220 is in contact with the housing 210 and the valve body 230 respectively;
- a fusible member 240 is provided between the valve body 230 and the gas channel 2102, and the fusible member 240 is in contact with the gas.
- the fusible member 240 when the fusible member 240 is in a non-melted state, the fusible member 240 supports the valve body 230 in the first position, and the gas channel 2102 is in an open state; when the fusible member 240 is in a molten state, the elastic member 220 drives the valve body 230 to the second position, and the gas channel 2102 is in a closed state.
- the second fire prevention device includes a housing 210 , an elastic member 220 , a valve body 230 and a fusible member 240 .
- the housing 210 can be made of materials such as plastic that are not easily chemically reactive with oxygen.
- the housing 210 has an accommodation cavity 2101 and a gas channel 2102.
- the internal shell wall of the housing 210 and the valve body 230 separate the accommodation cavity 2101 and the gas channel 2102 into mutually independent spaces. Oxygen in the gas channel 2102 cannot enter the accommodation cavity 2101.
- the accommodating cavity 2101 and the shell 210 can be made using an integrated molding process, such as open mold casting. The position of the accommodating cavity 2101 can be reserved on the mold.
- the integrated molding process can ensure the structural strength of the shell 210. and the airtightness of the accommodating cavity 2101; the accommodating cavity 2101 and the shell 210 can also be made in a separate manner, and the accommodating cavity 2101 is divided by adding partitions and other components to the shell 210.
- the embodiment of the present disclosure is This is not limited.
- the valve body 230 can be made of rubber, which can have good fit with the gas channel 2102 and the accommodation cavity 2101.
- the elastic member 220 is disposed in the accommodation cavity 2101.
- the elastic member 220 can be a metal spring such as iron, copper, or alloy, or a soft rubber that can store elastic potential energy, such as silicone or rubber.
- the elastic member 220 can store elastic potential energy, and push the valve body 230 to close the gas channel 2102 when a fire occurs, blocking the passage of oxygen, thereby achieving a fire prevention effect.
- the fusible member 240 is disposed between the valve body 230 and the gas channel 2102 to support the valve body 230. There is a gap between the fusible member 240 and the gas channel 2102, and oxygen can flow normally through the gap. Pass.
- the fusible component 240 is usually made of a material with a lower melting point, such as PP, PVC and other materials.
- the fusible component 240 When a fire does not occur (the temperature is low), the fusible component 240 is in a non-melted state, has a certain rigidity, and can support the valve body 230. At this time, the valve body 230 is in the first position and the gas channel 2102 is in an open state. , oxygen can circulate normally in the gas channel 2102. When the valve body 230 is in the first position, the elastic force exerted by the elastic member 220 on the valve body 230 and the supporting force exerted by the fusible member 240 on the valve body 230 are in a balanced state.
- the fusible component 240 When a fire occurs (high temperature), the fusible component 240 is in a molten state, and the fusible component 240 cannot continue to support the valve body 230 , and the equilibrium state of the valve body 230 is broken. At this time, the valve body 230 will move between the elastic member 220 and the valve body 230 . Under the action of elastic force, when moving from the first position to the second position, the gas channel 2102 is in a closed state and the oxygen channel is blocked.
- the first position and the second position of the valve body 230 are the positions of the valve body 230 relative to the gas channel 2102.
- the valve body 230 can be a sliding switch or a rotational switch. Switching only requires that the gas channel 2102 can be opened and closed, and the embodiment of the present disclosure does not limit this.
- the fusible member 240 in the event of a fire, the fusible member 240 will be in a molten state when the temperature reaches the melting point.
- the fusible member 240 is not enough to support the elastic force exerted by the elastic member 220 on the valve body 230, and the elastic member 220 releases the stored energy.
- the elastic potential energy of the valve body 230 is driven by the elastic member 220 to switch from the first position to the second position, occupying the space of the gas channel 2102, thereby cutting off the oxygen passage and preventing the continuous leakage of oxygen from causing the fire to spread; and, the elastic member 220
- the accommodation cavity 2101 and the gas channel 2102 are independent of each other, which avoids the problem of oxidation of the elastic member 220 and improves the durability and safety factor of the device.
- the accommodation cavity 2101 has an opening, and the valve body 230 is disposed at the opening of the accommodation cavity 2101.
- the valve body 230 is slidably connected to the accommodation cavity 2101; when the fusible member 240 is in a non-molten state When the fusible member 240 is in a molten state, the elastic member 220 drives the valve body 230 to slide to the second position, and the gas channel 2102 is closed. state.
- the accommodation cavity 2101 has an opening, which is U-shaped.
- the opening of the accommodation cavity 2101 faces the gas channel 2102, and the valve body 230 is at least partially located in the accommodation cavity 2101. And is slidably connected to the accommodation cavity 2101 through the opening.
- the valve body 230 can be a sphere, a cylinder or a bowl-shaped structure.
- the valve body 230 is made of rubber material and has an interference fit with the inner wall of the accommodation cavity 2101. During the sliding process, the airtightness inside the accommodation cavity 2101 can still be ensured, so that the accommodation cavity 2101 and the gas channel 2102 are separated from each other, which can effectively prevent the chemical reaction between the elastic member 220 and oxygen under long-term use.
- the elastic member 220 is located in the accommodation cavity 2101. One end of the elastic member 220 is in contact with the bottom of the accommodation cavity 2101, and the other end is in contact with the valve body 230. When the valve body 230 is in the first position, the elastic member 220 is in a compressed state and accumulates elastic potential energy.
- the fusible member 240 is located on the side of the valve body 230 close to the gas channel 2102 to support the valve body 230 .
- the fusible member 240 can be a series of protruding structures. When the fusible member 240 contacts the valve body 230, a gap can be formed between the protruding structure and the valve body 230, which facilitates the transportation of oxygen through the gap when a fire does not occur. to patients.
- the fusible member 240 can also be provided with a hollow structure or a small hole structure, and when a fire does not occur, oxygen is delivered to the patient through the hollow structure or the small hole structure.
- the gas channel 2102 may include multiple sub-channels, and the multiple sub-channels may be arranged in a meandering manner, as shown in FIG. 8 ; or may be arranged in only one segment of the channel, as shown in FIG. 9 . Arranged in a section of channel, the structure is simpler, the volume is smaller, and during the oxygen transmission process, the inner wall of the gas channel 2102 produces less resistance to oxygen.
- the fusible component 240 When a fire does not occur (the temperature is low), the fusible component 240 is in a non-melted state, has a certain rigidity, and can support the valve body 230. At this time, the valve body 230 is in the first position and the gas channel 2102 is in an open state. , oxygen can circulate normally in the gas channel 2102. When the valve body 230 is in the first position, the elastic force exerted by the elastic member 220 on the valve body 230 and the supporting force exerted by the fusible member 240 on the valve body 230 are in a balanced state.
- the fusible component 240 When a fire occurs (high temperature), the fusible component 240 is in a molten state, and the fusible component 240 cannot continue to support the valve body 230 , and the equilibrium state of the valve body 230 is broken. At this time, the valve body 230 will move between the elastic member 220 and the valve body 230 . Under the action of elastic force, it slides relative to the accommodation cavity 2101 and slides from the first position to the second position. The valve body 230 enters the gas channel 2102 and fits the inner wall of the gas channel 2102, occupying the space of the gas channel 2102 and the gas channel 2102. As a result, the oxygen passage is blocked and the gas channel 2102 is closed. It prevents further leakage of oxygen, avoids further deterioration of fire, and achieves fire prevention effect.
- the first position and the second position of the valve body 230 are the positions of the valve body 230 relative to the gas channel 2102.
- the valve body 230 When the valve body 230 is in the first position, it is far away from the gas channel 2102, and the gas channel 2102 is in an open state; the valve body 230 is in the open state.
- the valve body 230 In the second position, slide to the side closer to the gas channel 2102 and block it. Gas channel 2102, at this time, the gas channel 2102 is in a closed state.
- the housing 210 includes a first housing 2103 and a second housing 2104; the first housing 2103 and the second housing 2104 are rotationally connected; the first housing 2103 is provided with The first through hole 2105 and the second through hole 2106; the second housing 2104 is provided with a third through hole 2107 and a fourth through hole 2108; the valve body 230 is fixedly connected to the first housing 2103, and the valve body 230 is provided with a fifth through hole 2107 and a fourth through hole 2108.
- Through hole 2301; the fusible member 240 is respectively engaged with the valve body 230 and the second housing 2104.
- the fusible member 240 is provided with a sixth through hole 2401; the elastic member 220 is in contact with the valve body 230 and the second housing 2104 respectively. ; When the fusible member 240 is in a non-melted state, the fusible member 240 supports the valve body 230 in the first position, the first through hole 2105, the second through hole 2106, the third through hole 2107, the fourth through hole 2108, and the The fifth through hole 2301 and the sixth through hole 2401 are connected to form a gas channel 2102, which is in an open state; when the fusible member 240 is in a molten state, the elastic member 220 drives the first shell 2103 and the second shell 2104 Relative rotation, the valve body 230 is in the second position, the first through hole 2105, the second through hole 2106 and the fifth through hole 2301 are respectively in contact with the shell wall of the second housing 2104, and the gas channel 2102 is in a closed state.
- the housing 210 includes a first housing 2103 and a second housing 2104.
- the first housing 2103 and the second housing 2104 may be in the form of disks. Shape, with base and side walls.
- the diameter of the first housing 2103 is slightly larger than the diameter of the second housing 2104, and the first housing 2103 and the second housing 2104 are locked together to form an internal space.
- the first housing 2103 and the second housing 2104 may also adopt a spherical structure, which is not limited in this embodiment of the disclosure.
- the first housing 2103 and the second housing 2104 are rotationally connected. Specifically, a rotating shaft can be provided at the axis center of the first housing 2103 and the second housing 2104. The first housing 2103 and the second housing 2104 rotate relatively around the rotating shaft. . It is also possible that the side wall of the first housing 2103 and the side wall of the second housing 2104 are attached to each other and rotate relative to each other around the attachment surface.
- the side wall of the first housing 2103 is provided with a first through hole 2105 and a second through hole 2106.
- the first through hole 2105 and the second through hole 2106 are respectively used to connect the oxygen therapy device or the pipeline at the patient end. Oxygen can be supplied from the third through hole.
- a through hole 2105 is input into the housing 210, and then flows out through a second through hole 2106.
- the valve body 230 is fixedly connected to the first housing 2103.
- the valve body 230 is provided with a fifth through hole 2301.
- the openings at both ends of the fifth through hole 2301 are opposite to the first through hole 2105 and the second through hole 2106 respectively.
- the side wall of the second housing 2104 is also provided with a third through hole 2107 and a fourth through hole 2108.
- the fusible member 240 is a hollow cylindrical structure and is provided with a sixth through hole 2401. The fusible member 240 can be disposed between the valve body 230 and the second shell 2104, and is connected to the valve body 230 and the second shell 2104 respectively.
- the fusible component 240 has a certain rigidity and limits the relative rotation of the first housing 2103 and the second housing 2104.
- the number of the fusible member 240 may be one or two. When the number of the fusible member 240 is one, the fusible member 240 may be engaged with the fifth through hole 2301 and the third through hole 2107 respectively, or may be engaged with the third through hole 2107 respectively.
- the fifth through hole 2301 and the fourth through hole 2108 are snap-fitted. When the number of fusible members 240 is two, the fusible members 240 may be provided between the fifth through hole 2301 and the third through hole 2107 and between the fifth through hole 2301 and the fourth through hole 2108 .
- the elastic member 220 is located in the installation cavity formed by the first housing 2103 and the second housing 2104.
- the elastic member 220 contacts the valve body 230 and the second housing 2104 respectively to accumulate elastic potential energy.
- the elastic member 220 can be a metal torsion spring, spring, etc., such as iron, copper, or alloy, or a soft rubber structure that can store elastic potential energy, such as silicone or rubber.
- the number of the elastic member 220 may be one or multiple.
- the fusible member 240 When a fire does not occur (the temperature is low), the fusible member 240 is in a non-molten state and has a certain rigidity, and can support the valve body 230 so that the first shell 2103 and the second shell 2104 are in a relatively static state.
- the valve body 230 is in the first position, and the first through hole 2105, the second through hole 2106, the third through hole 2107, the fourth through hole 2108, the fifth through hole 2301 and the sixth through hole 2401 are connected to form a gas channel 2102.
- the gas channel 2102 is in an open state, oxygen can enter the gas channel 2102 through the first through hole 2105, and then flow out through the second through hole 2106.
- the gas channel 2102 and the accommodation cavity 2101 in which the elastic member 220 is located are independent of each other, which avoids the problem of oxidation of the elastic member 220 and improves the durability and safety factor of the device.
- the first through hole 2105, the second through hole 2106, the third through hole 2107, the fourth through hole 2108, the fifth through hole 2301 and the sixth through hole 2401 can be located on the same straight line to form a linear gas channel 2102; They can also be bent at a certain angle instead of being in the same straight line, so that normal oxygen transmission can be achieved.
- the fusible member 240 When a fire occurs (high temperature), the fusible member 240 is in a molten state, and the fusible member 240 is insufficient to support the rotational torque exerted by the elastic member 220 between the first housing 2103 and the second housing 2104.
- the first housing The equilibrium state between the body 2103 and the second shell 2104 is broken.
- the elastic member 220 releases the stored elastic potential energy, and the valve body 230 and the first shell 2103 will contact the second shell under the elastic force of the elastic member 220.
- the bodies 2104 rotate relative to each other, and the valve body 230 rotates from the first position to the second position.
- the fifth through hole 2301 on the body 230 is staggered with the third through hole 2107 and the fourth through hole 2108 on the second housing 2104.
- the first through hole 2105 and the second through hole 2106 are also respectively separated from the third through hole 2107 and the fourth through hole 2108.
- the fourth through holes 2108 are staggered. After the first housing 2103 and the second housing 2104 rotate relative to each other, the first through hole 2105, the second through hole 2106 and the fifth through hole 2301 respectively fit into the shell wall of the second housing 2104, so that the oxygen passage is blocked. , the gas channel 2102 is in a closed state. It prevents further leakage of oxygen, avoids further deterioration of fire, and achieves fire prevention effect.
- the first position and the second position of the valve body 230 are the positions of the valve body 230 relative to the second housing 2104.
- the first through hole 2105, the second through hole 2106, the third The through hole 2107, the fourth through hole 2108, the fifth through hole 2301 and the sixth through hole 2401 are connected, and the gas channel 2102 is in an open state.
- the first housing 2103 and the second housing 2104 rotate relative to each other.
- the gas channel 2102 is divided into multiple sections and blocked by the shell wall of the second housing 2104. At this time, the gas channel 2102 is closed.
- the second housing 2104 is provided with a first protruding portion 2109 and a second protruding portion 2110 ; a third through hole 2107 is provided in the first protruding portion 2109 , The four through holes 2108 are provided in the second protruding portion 2110; the fusible member 240 is at least partially embedded in the third through hole 2107 or the fourth through hole 2108.
- a first protruding portion 2109 and a second protruding portion 2110 are provided extending from the side wall.
- the outlet portions 2110 are arranged oppositely.
- the first protruding part 2109 and the second protruding part 2110 and the second housing 2104 can be made by an integral molding process.
- the third through hole 2107 is provided in the first protruding part 2109, and the fourth through hole 2108 is provided in the second protruding part 2110.
- Two sections of gas passages 2102 are formed in the second housing 2104.
- the fusible member 240 When the fusible member 240 is engaged with the valve body 230 and the second housing 2104, the fusible member 240 is at least partially embedded in the third through hole 2107 or the fourth through hole 2108.
- the specific embedded position can be determined according to the fusible member 240. The number of components 240 and their installation locations are selected.
- the residue after the fusible member 240 is heated and melted is stored in the third through hole 2107 or the fourth through hole 2108 respectively, and will not enter the oxygen delivery pipeline, so that the patient does not have the risk of inhaling foreign matter.
- the first protruding portion 2109 is provided with a first extension portion 2111
- the second protruding portion 2110 is provided with a second extension portion 2112; when the valve body 230 is in the second position , both ends of the fifth through hole 2301 are respectively attached to the first extension part 2111 and the second extension part 2112.
- the first protruding portion 2109 is provided on a side close to the valve body 230.
- a first extension part 2111 is provided, and a second extension part 2112 is provided on a side of the second protruding part 2110 close to the valve body 230 .
- the first extension part 2111 and the first protrusion part 2109, the second extension part 2112 and the second protrusion part 2110 can be made by an integral molding process.
- the first extension part 2111 and the second extension part 2112 may adopt an arc-shaped structure, and the arc-shaped structure matches the end shape of the valve body 230 .
- both ends of the fifth through hole 2301 are respectively in contact with the first extension part 2111 and the second extension part 2112 to achieve sealing, thereby preventing the residual oxygen in the valve body 230 from leaking to the accommodation cavity 2101 , while improving the fire protection effect.
- a third extension 2302 is provided at one end of the valve body 230
- a fourth extension 2303 is provided at the other end of the valve body 230 ; when the valve body 230 is in the second position, The third through hole 2107 is attached to the third extension part 2302, and the fourth through hole 2108 is attached to the fourth extension part 2303.
- the valve body 230 is provided with a fifth through hole 2301, and a third extension portion 2302 and a fourth extension portion 2303 are respectively extended at both ends of the fifth through hole 2301.
- the third extension part 2302 and the fourth extension part 2303 and the valve body 230 can be made by an integral molding process.
- the third extension part 2302 and the fourth extension part 2303 may adopt an arc-shaped structure, and the arc-shaped structure matches the end shapes of the third through-hole 2107 and the fourth through-hole 2108.
- the third through hole 2107 is in contact with the third extension part 2302, and the third extension part 2302 seals one end of the third through hole 2107; the fourth through hole 2108 and the fourth extension part 2303, the fourth extension 2303 seals one end of the fourth through hole 2108, preventing oxygen from passing through, and the fire prevention effect is more significant.
- the second housing 2104 is provided with at least one limiting portion 2113 , and the limiting portion 2113 is located on the movement path of the valve body 230 ; when the valve body 230 is in the second position, The valve body 230 is in contact with the limiting part 2113.
- the limiting portion 2113 is provided on the second housing 2104 , and the specific structure of the limiting portion 2113 may be plate-shaped, cylindrical, or other structures.
- the limiting part 2113 and the second housing 2104 can be made using an integral molding process.
- the limiting portion 2113 is located on the movement path of the valve body 230 , that is, when the valve body 230 rotates relative to the second housing 2104 , it will come into contact with the limiting portion 2113 .
- the number of limiting parts 2113 may be one or two. When the number of limiting parts 2113 is two, the two limiting parts 2113 may be respectively located on both sides of the valve body 230 and have a certain distance from the valve body 230 .
- the first housing 2103 is provided with a first connection part 2114 and a second connection part 2115; the first through hole 2105 is provided in the first connection part 2114, and the second through hole 2106 Provided at the second connection part 2115; the first connection part 2114 and the second connection part 2115 are respectively used to communicate with the oxygen therapy device or the pipeline at the patient end.
- the oxygen therapy device or the patient-side pipeline is connected to the fire protection device through the first through hole 2105 and the second through hole 2106 .
- a first connecting part 2114 and a second connecting part 2115 are provided on the first housing 2103.
- the first connecting part 2114 and the second connecting part 2115 are arranged along the radial direction of the first housing 2103. Extending outward, the first through hole 2105 is provided in the first connecting part 2114, and the second through hole 2106 is provided in the second connecting part 2115.
- the pipeline can be directly sleeved or embedded on the first connecting part 2114 and the second connecting part 2115 without occupying the internal space of the housing 210.
- the gas channel includes a first pipeline interface, a second pipeline interface and a connecting part; the connecting part has an inner cavity; the first pipeline interface and the The second pipeline interfaces are respectively located at both ends of the communication part, and are respectively connected with the inner cavity to form the gas channel; the first pipeline interface and the second pipeline interface are symmetrically arranged.
- the gas channel is formed by a first pipeline interface, a second pipeline interface and a communication part.
- the first pipeline interface, the second pipeline interface and the connecting part can be an integrated structure, or can be made separately and then assembled.
- the first pipeline interface and the second pipeline interface are respectively used to communicate with the oxygen therapy device or the patient-side pipeline.
- the oxygen therapy device or the patient-side pipeline and the first pipeline interface or the second pipeline interface can be connected by threads or Assembly is achieved by interference fit.
- the communication part adopts a hollow cylindrical structure and has an inner cavity.
- the first pipeline interface and the second pipeline interface are respectively located at both ends of the communication part.
- the inner cavity of the communication part is respectively connected with the first pipeline interface and the second pipeline interface to form a complete gas channel.
- first pipeline interface and the second pipeline interface When the first pipeline interface and the second pipeline interface are assembled with the pipeline, one of the pipeline interfaces is connected to the patient end, and the other pipeline interface is connected to the oxygen therapy instrument end. Since the first pipeline interface and the second The pipeline interfaces are symmetrically arranged. Both the first pipeline interface and the second pipeline interface can be adapted to the oxygen therapy device end or the patient end. The fire protection device will not be installed backwards, which greatly improves the assembly efficiency.
- the fusible member is located in the inner cavity, and the fusible member is in clearance fit with the cavity wall of the inner cavity.
- the fusible member is disposed in the inner cavity of the communication part. Only one fusible member can block the gas channel without the need for both the oxygen therapy device end and the patient end. The installation of fusible components greatly reduces production costs.
- the embodiment of the present disclosure also discloses a second oxygen therapy device, including a second fire prevention device.
- oxygen therapy equipment usually consists of three parts: an oxygen generating device (such as an oxygen tank, an oxygen concentrator, etc.), an interface used to deliver oxygen to the patient (such as a nasal oxygen tube, a mask, etc.), and a connection between the generating device and the patient interface. Pipeline.
- a fire prevention device is provided in series in the pipeline between the oxygen generating device and the patient interface.
- the fire prevention device has a gas channel 2102.
- the gas channel 2102 is used to communicate with the pipeline of the oxygen therapy device.
- the fire protection device can control the internal gas channel 2102. to open or close, and control the opening or closing of the oxygen therapy instrument pipeline.
- a second fire prevention device is connected in series in the pipeline of the second oxygen therapy device.
- the fusible component 240 will be in a molten state when the temperature reaches the melting point, and the fusible component 240 is not sufficient.
- the elastic force exerted by the elastic member 220 on the valve body 230 is supported, and the elastic member 220 releases the stored elastic potential energy.
- the valve body 230 is driven by the elastic member 220 to switch from the first position to the second position, occupying the space of the gas channel 2102, thereby Cut off the oxygen passage to avoid the continuous leakage of oxygen and the spread of fire; and, the accommodation cavity 2101 where the elastic member 220 is located and the gas channel 2102 are independent of each other, which avoids the problem of oxidation of the elastic member 220 and improves the durability and durability of the oxygen therapy device. Safety factor.
- the embodiment of the present disclosure also discloses a second ventilation therapy system, including a second oxygen therapy device.
- the second ventilation therapy system includes a control device and a second oxygen therapy device.
- the control device is used to control the oxygen supply amount, working time, etc. of the oxygen therapy device.
- the control device can be an electronic device or an electronic device. components, such as integrated circuits or chips.
- the electronic device may be a terminal or other devices other than the terminal.
- the electronic device may be a mobile phone, a tablet computer, a notebook computer, a handheld computer, a mobile Internet device, a robot, a wearable device, etc.
- the present disclosure implements The examples are not specifically limited.
- the second ventilation therapy system includes a second oxygen therapy device, and a second fire prevention device is connected in series to the pipeline of the second oxygen therapy device.
- a fire occurs, the fusible component 240 reaches a temperature of At the melting point, it will be in a molten state, and the fusible member 240 is not enough to support the elastic force exerted by the elastic member 220 on the valve body 230.
- the elastic member 220 releases the stored elastic potential energy, and the valve body 230 is driven from the first position by the elastic member 220.
- the third fire prevention device includes: a housing 10, a first elastic valve body 320 and a first fusible member 330; the housing 10 has an accommodation cavity 3101, and a first opening 3102 and a second opening 3103 are provided on both sides of the accommodation cavity 3101. The first opening 3102 and the second opening 3103 are used to communicate with the oxygen therapy device or the tube at the patient end.
- the first elastic valve body 320 is positioned in the accommodation cavity 3101, and the first elastic valve body 320 is arranged opposite to the first opening 3102, wherein the first elastic valve body 320 has a resistance to Oxidation characteristics; the first fusible component 330 is located in the housing 10 and connected to the housing 10 , and the first fusible component 330 and the first elastic valve body 320 are close to the first opening.
- One side of 3102 is in contact; when the first fusible member 330 is in a non-molten state, the first fusible member 330 compresses the first elastic valve body 320, and the first opening 3102 is in contact with the first elastic valve body 320.
- the first fusible component 330 when the first fusible component 330 is in a molten state, the first elastic valve body 320 releases at least part of the elastic potential energy, and the first elastic valve body 320 It abuts the first end surface of the accommodation cavity 3101 so that the first opening 3102 is in a closed state, wherein the first opening 3102 is provided on the first end surface.
- the third fire prevention device includes a housing 10 , a first elastic valve body 320 and a first fusible member 330 .
- the housing 10 can be made of materials such as plastic that are not easily chemically reactive with oxygen.
- the housing 10 has an accommodation cavity 3101.
- a first opening 3102 and a second opening 3103 are provided on both sides of the accommodation cavity 3101.
- the first opening 3102 and the second opening 3103 may be located on opposite sides of the accommodation cavity 3101.
- the first opening 3102 and The axes of the second opening 3103 are collinear, and the first opening 3102 and the second opening 3103 can also be arranged at an angle on the accommodation cavity 3101. Set.
- the first opening 3102 and the second opening 3103 are used to communicate with the oxygen therapy device or the patient-side pipeline.
- the first opening 3102 is connected to the oxygen therapy device-side pipeline
- the second opening 3103 is connected to the patient-side pipeline.
- Oxygen flows from the first The opening 3102 enters the receiving cavity 3101, and is then transmitted to the patient end through the second opening 3103.
- the second opening 3103 may also be connected to the pipeline at the oxygen therapy device end, and the first opening 3102 may be connected to the pipeline at the patient end. This is not limited in the embodiment of the present disclosure.
- the first elastic valve body 320 is positioned in the accommodation cavity 3101, and the first elastic valve body 320 is opposite to the first opening 3102.
- a partition or positioning structure can be provided in the accommodation cavity 3101 to achieve positioning and fixation of the first elastic valve body 320.
- a protrusion is provided in the accommodation cavity 3101, and a groove or step is provided in the first elastic valve body 320 to cooperate with it to achieve positioning and fixation.
- the oxygen passage is opened or closed by cooperation between the first elastic valve body 320 and the first opening 3102 .
- the first elastic valve body 320 has oxidation resistance.
- the first elastic valve body 320 can be made of materials such as silicone or rubber that can be compressed and store elastic potential energy. It is not prone to oxidation and rust when exposed to oxygen for a long time, thus avoiding the need for treatment. The effect has an impact and also improves the stability and durability of the fire protection device.
- the first fusible component 330 is disposed in the housing 10 and connected to the housing 10 .
- the housing 10 supports and fixes the first fusible component 330 .
- the side of the first fusible member 330 away from the first opening 3102 and the housing 10 can be assembled by bonding or snapping.
- the first fusible member 330 contacts the side of the first elastic valve body 320 close to the first opening 3102 to support the first elastic valve body 320 .
- the first fusible component 330 is usually made of a material with a lower melting point, such as PP, PVC and other materials.
- the first fusible component 330 When a fire does not occur (the temperature is low), the first fusible component 330 is in a non-melted state, the first fusible component 330 compresses the first elastic valve body 320, the thickness of the first elastic valve body 320 decreases, and accumulation Elastic potential energy. There is a gap for gas circulation between the first elastic valve body 320 and the first opening 3102. Oxygen can flow normally through the gap.
- the thickness direction of the first elastic valve body 320 is the long axis direction of the fire prevention device.
- the first fusible component 330 When a fire occurs (high temperature), the first fusible component 330 is in a molten state, and the first fusible component 330 cannot continue to support the first elastic valve body 320, and the equilibrium state of the first elastic valve body 320 is broken. At this time , the first elastic valve body 320 will release at least part of the elastic potential energy.
- the thickness of the first elastic valve body 320 increases and contacts the first end surface of the accommodation cavity 3101, where the first opening 3102 is located on the first end surface, and the first elastic valve body 320 is The valve body 320 covers the first opening 3102 so that the first opening 3102 is in a closed state, oxygen cannot pass through the first opening 3102, and the oxygen gas path is blocked.
- the first fusible component 330 when the first fusible component 330 is in a non-molten state, the first fusible component 330 The member 330 compresses the first elastic valve body 320, the thickness of the first elastic valve body 320 is reduced, and there is a gap for gas flow between the first opening 3102 and the first elastic valve body 320; in the event of a fire, the temperature of the fusible component When it reaches the melting point, it will be in a molten state, and the first elastic valve body 320 releases at least part of the elastic potential energy, and the first elastic valve body 320 contacts the first end surface of the accommodation cavity 3101, so that the first opening 3102 is in a closed state, thereby cutting off Oxygen passage to prevent oxygen from continuously leaking out and causing the fire to spread. Since the first elastic valve body 320 has oxidation resistance, the problem of oxidation of the first elastic valve body 320 is avoided, and the durability and safety factor of the device are improved.
- the housing 10 includes a first connection part 3104 and a second connection part 3105; the first connection part 3104 has a first through hole 3106, and the The first through hole 3106 is connected to the first opening 3102; the second connecting part 3105 has a second through hole 3107, and the second through hole 3107 is connected to the second opening 3103; the first fusible The member 330 is located in the first through hole 3106, and one end of the first fusible member 330 extends to form at least two reinforcing ribs 3108, and the reinforcing ribs 3108 are connected to the wall of the first through hole 3106; The other end of the first fusible member 330 is in contact with the side of the first elastic valve body 320 close to the first opening 3102 .
- the housing 10 includes a first connecting portion 3104 and a second connecting portion 3105.
- the first connecting portion 3104 and the second connecting portion 3105 are extension structures on the housing 10.
- the first connection part 3104 and the second connection part 3105 and the main body of the housing 10 can be made by an integral molding process, or they can be made separately and then assembled by bonding or welding.
- the first connecting part 3104 has a first through hole 3106 that communicates with the first opening 3102.
- the second connecting part 3105 has a second through hole 3107 that communicates with the second opening 3103.
- the first connection part 3104 and the second connection part 3105 are used to connect the oxygen therapy device or the patient's pipeline.
- the first connection part 3104 is connected to the pipeline at the oxygen therapy device end, and the second connection part 3105 is connected to the pipeline at the patient end.
- Oxygen enters the accommodation chamber 3101 from the first connection part 3104, and is then transmitted to the patient end through the second connection part 3105.
- the second connection part 3105 may also be connected to the pipeline at the oxygen therapy device end, and the first connection part 3104 may be connected to the pipeline at the patient end, which is not limited in the embodiment of the present disclosure.
- one end of the first fusible member 330 extends to form at least two reinforcing ribs 3108 .
- the first fusible member 330 is located in the first through hole 3106.
- the first fusible member 330 adopts a rod-shaped structure.
- the first fusible member 330 and the reinforcing rib 3108 are made of the same material.
- the reinforcing rib 3108 is connected to the hole wall of the first through hole 3106, thereby realizing the installation and fixation of the first fusible component 330.
- the reinforcing rib 3108 is connected to the wall of the first through hole 3106.
- the connection method of the walls of the through hole 3106 may be welding or bonding.
- the other end of the first fusible member 330 is in contact with the side of the first elastic valve body 320 close to the first opening 3102, so that the first elastic valve body 320 can be compressed to reduce its thickness, ensuring that the first elastic valve body 320 is in contact with the first elastic valve body 320.
- the first fusible member 330 and the reinforcing ribs 3108 are in a molten state, the first fusible member 330 cannot continue to support the first elastic valve body 320, and the equilibrium state of the first elastic valve body 320 is affected. Break, at this time, the first elastic valve body 320 will release at least part of the elastic potential energy, the thickness of the first elastic valve body 320 increases and contacts the first end surface of the accommodation cavity 3101, so that the first opening 3102 is in a closed state, and the oxygen Unable to pass through the first opening 3102, the oxygen gas path is blocked.
- the first fusible member 330 is located between the first elastic valve body 320 and the first end surface, and the first fusible member 330 is connected to the first elastic valve body 320 .
- the side of the valve body 320 close to the first opening 3102 is in contact with the valve body 320 .
- the first fusible member 330 is located between the first elastic valve body 320 and the first end surface.
- One end of the first fusible component 330 can be connected to the cavity wall or the first end surface of the accommodation cavity 3101, and the specific connection method can be bonding or snapping.
- the other end of the first fusible member 330 is in contact with the side of the first elastic valve body 320 close to the first opening 3102 .
- the first fusible component 330 remains flush with the first opening 3102 and does not block the first opening 3102 and avoid affecting the oxygen transmission rate.
- the first fusible component 330 When a fire does not occur (the temperature is low), the first fusible component 330 is in a non-melted state, the first fusible component 330 compresses the first elastic valve body 320, and the thickness of the first elastic valve body 320 decreases and accumulates elastic potential energy. , there is a gap for gas circulation between the first elastic valve body 320 and the first opening 3102, and oxygen can flow normally through the gap.
- the first fusible component 330 When a fire occurs (high temperature), the first fusible component 330 is in a molten state, and the first fusible component 330 cannot continue to support the first elastic valve body 320, and the equilibrium state of the first elastic valve body 320 is broken. At this time , the first elastic valve body 320 will release at least part of the elastic potential energy. The thickness of the first elastic valve body 320 increases and contacts the first end surface, so that the first opening 3102 is in a closed state, and oxygen cannot pass through the first opening 3102. The airway is blocked.
- the number of the first fusible members 330 is two, and the two first fusible members 30 are symmetrically arranged on the first end surface.
- the number of first fusible members 330 is two, and the two first fusible members 330 are The melting member 330 is symmetrically arranged on the first end face of the accommodation cavity 3101. That is to say, on both axial sides of the first opening 3102, the two first fusible members 330 are symmetrically arranged, which can achieve stable support for the first elastic valve body 320 and avoid the problem of deflection of the first elastic valve body 320. , ensuring the sealing effect between the first elastic valve body 320 and the first opening 3102.
- the fire protection device further includes a support member 340; the support member 340 is located in the accommodation cavity 3101 and is connected to the cavity wall of the accommodation cavity 3101; The support member 340 is in contact with the side of the first elastic valve body 320 away from the first opening 3102 .
- the first elastic valve body 320 is positioned in the accommodation cavity 3101 , and a partition or positioning structure can be provided in the accommodation cavity 3101 to position and fix the first elastic valve body 320 .
- the first elastic valve body 320 can be positioned and fixed through the support member 340.
- the support member 340 is located in the accommodation cavity 3101.
- the shape of the support member 340 can be rod-shaped, plate-shaped, etc.
- the support member 340 is connected to the cavity wall of the accommodating cavity 3101, and can be assembled by bonding, welding, or other methods.
- the support member 340 is in contact with the side of the first elastic valve body 320 away from the first opening 3102, and the first fusible member 330 is in contact with the side of the first elastic valve body 320 close to the first opening 3102.
- the first elastic valve body 320 is in a compressed state and its thickness is reduced, thereby forming a gap for gas flow between the first elastic valve body 320 and the first opening 3102.
- the support member 340 is provided with a first positioning portion 3401 at one end close to the first elastic valve body 320, and the first elastic valve body 320 is away from the first opening 3102.
- a second positioning part 3201 is provided on one side, and the first positioning part 3401 and the second positioning part 3201 are positioned and matched.
- the support member 340 is in contact with the side of the first elastic valve body 320 away from the first opening 3102.
- the support member 340 and the first elastic valve body 320 are offset.
- a first positioning portion 3401 is provided at one end of the support member 340 close to the first elastic valve body 320, and a first positioning portion 3401 is provided at the side of the first elastic valve body 320 away from the first opening 3102.
- the first positioning part 3401 can be a boss, and correspondingly, the second positioning part 3201 can be a groove, and the groove matches the shape of the boss; similarly, the first positioning part 3401 can be a groove, and the second positioning part 3201 can be a groove. 3201 can be a boss.
- the number of bosses and grooves can be selected according to the size of the support member 340 and the first elastic valve body 320, which is not limited in the embodiment of the present disclosure.
- the outer side wall of the first connecting part 3104 and/or the outer side wall of the second connecting part 3105 is provided with at least one clamping part 3109 , and the clamping part 3109 is used to connect with The oxygen therapy device or the pipeline at the patient end is clamped.
- the first connection part 3104 and the second connection part 3105 are used to connect the oxygen therapy device or the pipeline at the patient end.
- the pipeline of the oxygen therapy device usually uses a conduit, which is sleeved on the outside of the first connecting part 3104 and the second connecting part 3105.
- the outer wall of the connecting portion 3104 and/or the outer wall of the second connecting portion 3105 is provided with at least one snap portion 3109.
- the snap portion 3109 is in the shape of a trumpet.
- the snap-in part 3109 is snap-fitted with the conduit, ensuring the airtightness between the conduit and the first connection part 3104 and/or the second connection part 3105, and avoiding oxygen leakage question.
- the number of latching parts 3109 can be selected according to the sizes of the first connecting part 3104 and the second connecting part 3105.
- the fire protection device further includes a second elastic valve body 350 and a second fusible member 360; the second elastic valve body 350 is arranged opposite to the second opening 3103. ;
- the second fusible component 360 is located in the housing 10 and connected to the housing 10 , and the second fusible component 360 and the second elastic valve body 350 are close to the second opening 3103
- the second elastic valve body 350 is in contact with one side, wherein the second elastic valve body 350 has oxidation resistance;
- the support member 340 is located between the first elastic valve body 320 and the second elastic valve body 350 and is respectively connected with the first elastic valve body 320 and the second elastic valve body 350.
- the first elastic valve body 320 and the second elastic valve body 350 are in contact; when the second fusible member 360 is in a non-melted state, the second fusible member 360 compresses the second elastic valve body 350. There is a gap for gas circulation between the second opening 3103 and the second elastic valve body 350; when the second fusible component 360 is in a molten state, the second elastic valve body 350 releases at least Part of the elastic potential energy, the second elastic valve body 350 contacts the second end surface of the accommodation cavity 3101, so that the second opening 3103 is in a closed state, wherein the second opening is disposed on the second End face.
- the second elastic valve body 350 is provided at the second opening 3103.
- Fire protection devices provide double protection.
- the second elastic valve body 350 is positioned in the accommodation cavity 3101, and the second elastic valve body 350 is opposite to the second opening 3103.
- a partition or positioning structure can be provided in the accommodation cavity 3101 to position and fix the second elastic valve body 350 .
- the oxygen passage is opened or closed by cooperation between the second elastic valve body 350 and the second opening 3103 .
- the second elastic valve body 350 has an oxidation resistance
- the second elastic valve body 350 can be made of materials such as silicone or rubber that can be compressed and store elastic potential energy.
- both the first elastic valve body 320 and the second elastic valve body 350 use silicone springs, which have a spiral appearance of a traditional metal spring and are easy to compress and release elastic potential energy. Compared with traditional metal springs, The spring has strong oxidation resistance.
- the second fusible component 360 is disposed in the housing 10 and connected to the housing 10 .
- the housing 10 supports and fixes the second fusible component 360 .
- the second fusible component 360 and the housing 10 can be assembled by bonding or snapping.
- the second fusible member 360 contacts the side of the second elastic valve body 350 close to the second opening 3103 to support the second elastic valve body 350 .
- the second fusible component 360 is usually made of a material with a lower melting point, such as PP, PVC and other materials.
- the support member 340 is located between the first elastic valve body 320 and the second elastic valve body 350, and is in contact with the first elastic valve body 320 and the second elastic valve body 350 respectively.
- the second fusible member 360 may be located in the second through hole 3107, and one end of the second fusible member 360 extends to form at least two reinforcing ribs 3108.
- the second fusible member 360 adopts a rod-shaped structure.
- the reinforcing rib 108 is connected to the wall of the second through hole 3107, thereby realizing the installation and fixation of the second fusible member 360.
- the reinforcing rib 3108 is connected to the wall of the second through hole 3107.
- the method can be welding or bonding, etc.
- the other end of the second fusible member 360 is in contact with the side of the second elastic valve body 350 close to the second opening 3103, so that the second elastic valve body 350 can be compressed to reduce its thickness, ensuring that the second elastic valve body 350 is in contact with the second opening 3103. There is a gap for gas circulation between the second openings 3103 .
- the second fusible member 360 may also be located between the second elastic valve body 350 and the second end surface.
- One end of the second fusible component 360 can be connected to the cavity wall or the second end surface of the accommodation cavity 3101, and the specific connection method can be bonding or snapping.
- the other end of the second fusible member 360 is in contact with the side of the second elastic valve body 350 close to the second opening 3103 .
- the second fusible component 360 remains flush with the second opening 3103 and will not block the second opening 3103 and avoid affecting the oxygen transmission rate.
- the first fusible component 330 and the second fusible component 360 are in a non-melted state, the first fusible component 330 compresses the first elastic valve body 320, and the second fusible component 360
- the second elastic valve body 350 is compressed, the thicknesses of the first elastic valve body 320 and the second elastic valve body 350 are reduced and elastic potential energy is accumulated.
- the first fusible component 330 and the second fusible component 360 are in a molten state, the first fusible component 330 cannot continue to support the first elastic valve body 320, and the second fusible component 360 cannot continue to support the first elastic valve body 320.
- the equilibrium state of the first elastic valve body 320 and the second elastic valve is broken.
- the first elastic valve body 320 and the second elastic valve will release at least part of the elastic potential energy, and the first elastic valve body 320 will release at least part of the elastic potential energy.
- the thickness of the valve body 320 and the second elastic valve increases and contacts the first end surface and the second end surface respectively, so that the first opening 3102 and the second opening 3103 are in a closed state, and oxygen cannot pass through the first opening 3102 and the second opening. 3103, the oxygen gas path is blocked.
- the first fusible component 330 and the second fusible component 360 melts when a fire occurs (higher temperature). , which can temporarily block the air path to prevent oxygen leakage and improve the reliability of the fire prevention device.
- the first opening 3102 and the second opening 3103 are both in a closed state, providing double sealing guarantee and greatly improving the safety factor of the fire prevention device.
- the disclosed embodiment also discloses a third type of oxygen therapy device, including a third type of fire prevention device.
- oxygen therapy equipment usually consists of three parts: an oxygen generating device (such as an oxygen tank, an oxygen concentrator, etc.), an interface used to deliver oxygen to the patient (such as a nasal oxygen tube, a mask, etc.), and a connection between the generating device and the patient interface. pipeline.
- a fire protection device is installed in series in the pipeline between the oxygen generating device and the patient interface.
- a third fire prevention device is connected in series in the pipeline of the third oxygen therapy device.
- the first fusible component 330 compresses the first elastic valve body 320 , the thickness of the first elastic valve body 320 is reduced, and there is a gap for gas circulation between the first opening 3102 and the first elastic valve body 320; in the event of a fire, the fusible component will be in a molten state when the temperature reaches the melting point, The first elastic valve body 320 releases at least part of the elastic potential energy.
- the first elastic valve body 320 contacts the first end surface of the accommodation cavity 3101.
- the first elastic valve body 320 covers the first opening 3102 so that the first opening 3102 is in a closed state. , thereby cutting off the oxygen path and preventing the continued leakage of oxygen from causing the fire to spread. Since the first elastic valve body 320 has oxidation resistance, oxidation of the first elastic valve body 320 is avoided. problems and improve the durability and safety factor of the device.
- Embodiments of the present disclosure also disclose a third ventilation therapy system, including a third oxygen therapy device.
- the third ventilation therapy system includes a control device and a third oxygen therapy device.
- the control device is used to control the oxygen supply amount, working time, etc. of the oxygen therapy device.
- the control device can be an electronic device or an electronic device. components, such as integrated circuits or chips.
- the electronic device may be a terminal or other devices other than the terminal.
- the electronic device may be a mobile phone, a tablet computer, a notebook computer, a palmtop computer, a mobile Internet device, a robot, a wearable device, etc., which are not specifically limited in the embodiments of this disclosure.
- the third ventilation therapy system includes a third oxygen therapy device, and a third fire prevention device is connected in series in the pipeline of the third oxygen therapy device.
- the first fusible component 330 When the first fusible component 330 is in a non-melted state , the first fusible member 330 compresses the first elastic valve body 320, the thickness of the first elastic valve body 320 is reduced, and there is a gap for gas flow between the first opening 3102 and the first elastic valve body 320; in the event of a fire, When the temperature of the fusible component reaches the melting point, it will be in a molten state.
- the first elastic valve body 320 releases at least part of the elastic potential energy.
- the first elastic valve body 320 contacts the first end surface of the accommodation cavity 3101 and covers it.
- the first opening 3102 is in a closed state, thereby cutting off the oxygen passage and preventing the continued leakage of oxygen from causing the fire to spread. Since the first elastic valve body 320 has oxidation resistance, the problem of oxidation of the first elastic valve body 320 is avoided, and the durability and safety factor of the device are improved.
- the fire prevention device includes: a housing 10, a first moving rod 420, a first fusible member 430, a first valve body 440 and The first elastic member 450; the housing 10 has a fluid channel 4101, the fluid channel 4101 is provided with a first narrowing part 4102 and a second narrowing part 4103, the first moving rod 420, the first fusible The member 430, the first valve body 440 and the first elastic member 450 are all disposed in the fluid channel 4101; the first fusible member 430 is disposed at one end of the fluid channel 4101 and in contact with the inner wall of the fluid channel 4101.
- the first moving rod 420 is slidingly connected to the inner wall of the fluid channel 4101, and the first fusible member 430 is provided on the first moving rod 420; the first valve body 440 is disposed on the The first narrowed portion 4102 is slidably connected to the inner wall of the fluid channel 4101.
- the first valve body 440 is connected to the first moving rod 420, and the other end of the first valve body 440 is provided with The first elastic member 450 is in contact with the housing 10; the The first valve body 440 is provided with a first seal 4401 close to the first narrowing portion 4102; when the first valve body 440 is in an open state, the first fusible member 430 supports the first movement The rod 420 and the first valve body 440 are in the first position, the first seal 4401 is in clearance fit with the first narrowing portion 4102, and the fluid channel 4101 is in an open state; when the first elastic member 450 drives the first moving rod 420 and the first valve body 440 to slide to the second position, the first valve body 440 is in a closed state, the first seal 4401 and the first narrowing portion 4102 is engaged, and the fluid channel 4101 is in a closed state.
- the fourth fire prevention device includes a housing 10 , a first moving rod 420 , a first fusible member 430 , a first valve body 440 and a first elastic member 450 .
- the housing 10 can be made of materials that are not prone to chemical reactions with oxygen and are resistant to high temperatures, such as stainless steel or ceramic materials; it can also be made of fire-proof and flame-retardant materials.
- the fluid channel 4101 adopts a structure with a thick middle and thin ends to facilitate connection with the pipeline at the oxygen therapy device end or the patient end.
- the fluid channel 4101 transitions from the middle to both ends, and is provided with a first narrowing portion 4102 and a second narrowing portion 4103.
- the first moving rod 420 , the first fusible component 430 , the first valve body 440 and the first elastic member 450 are all disposed in the fluid channel 4101 .
- the fluid channel 4101 includes one opposite end and the other end.
- the first fusible member 430 is disposed at one end of the fluid channel 4101, close to the opening of the fluid channel 4101.
- the first fusible member 430 is connected to the inner wall of the fluid channel 4101.
- the specific connection is The method can be snapping, bonding, etc.
- the first fusible component 430 may be made of a material with a lower melting point, such as PP, PVC and other materials.
- the first moving rod 420 is slidingly connected to the inner wall of the fluid channel 4101.
- the axis of the first moving rod 420 coincides with the axis of the fluid channel 4101.
- the first moving rod 420 is made of fire-proof and flame-retardant material.
- the first fusible member 430 is disposed on the first moving rod 420 to support the first moving rod 420 in the fluid channel 4101 .
- the first valve body 440 penetrates the first narrowing part 4102 and is slidingly connected with the inner wall of the fluid channel 4101. One end of the first valve body 440 is connected to the first moving rod 420.
- the specific connection method may be clamping, bonding, etc.
- the first valve body 440 is also made of fire-proof and flame-retardant material.
- a first elastic member 450 is provided at the other end of the first valve body 440 .
- the first elastic member 450 contacts the housing 10 to provide driving force for the first valve body 440 .
- the first elastic member 450 can be a metal spring such as iron, copper, or alloy, or a soft rubber that can store elastic potential energy, such as silicone or rubber.
- the first valve body 440 is provided with a first seal 4401 near the first narrowing portion 4102.
- the first seal The member 4401 can be disposed on both sides of the first valve body 440 along its own axis. When the first valve body 440 slides relative to the housing 10, the first sealing member 4401 can block the first valve body 440 and the first narrowing portion 4102. gap between them, thereby closing the fluid channel 4101.
- the first seal 4401 can be made of silicone, rubber or other materials, which can achieve a good sealing effect.
- the first fusible member 430 When a fire does not occur (the temperature is low), the first fusible member 430 is in a non-molten state, has a certain rigidity, and can support the first moving rod 420 and the first valve body 440. At this time, the first moving rod 420 and the first valve body 440 are in the first position, the first valve body 440 is in the open state, the first seal 4401 and the first narrowing part 4102 are in clearance fit, the fluid channel 4101 is in the open state, and oxygen can be in the fluid channel 4101 Normal transmission.
- the supporting forces exerted by the rod 420 and the first valve body 440 are in a balanced state.
- the first fusible member 430 melts, and the first fusible member 430 cannot continue to support the first moving rod 420 and the first valve body 440, and the equilibrium state is broken.
- the first moving rod 420 and the first valve body 440 will slide from the first position to the second position.
- the first valve body 440 is in a closed state, and the first sealing member on the first valve body 440 4401 will engage with the first narrowing portion 4102, so that the fluid channel 4101 is in a closed state and oxygen cannot continue to be transported.
- the first moving rod 420 can also be separated from the first valve body 440.
- the first moving rod 420 continues to slide under the action of inertia and extends into the oxygen therapy device or the patient's pipeline, which can also cut off the oxygen path. function, further improving the safety factor of the fire protection device.
- the cooperation of the first fusible member 430, the first moving rod 420, the first valve body 440 and the first elastic member 450 can automatically close the fluid channel 4101 in the event of a fire, cut off the oxygen channel, and avoid The continued leakage of oxygen caused the fire to spread.
- the structure is simple, which reduces the manufacturing difficulty; there is no need to open holes in the first fusible component 430, and oxygen can be transmitted normally through the gap between the above components and the fluid channel 4101, reducing ventilation noise and avoiding errors in non-fire situations.
- the occurrence of blocking the air path improves the stability of the fire protection device and ensures the treatment effect.
- the first fusible member 430 is provided with a first snap-in portion 4301
- the first moving rod 420 is provided with a first snap-in fitting portion 4201
- the first snap-in fitting portion 4201 is provided in the first fusible member 430.
- a fusible component 430 is engaged with the first moving rod 420 .
- the first fusible member 430 is provided with a first snap portion 4301.
- the first moving rod 420 is provided with a first snap-fitting portion 4201, and the first fusible member 430 is snap-fitted with the first moving rod 420.
- the first snapping part 4301 may be a protrusion, and the first snapping fitting part 4201 may be a groove; correspondingly, the first snapping part 4301 may be a groove, and the first snapping fitting part 4201 may be a protrusion.
- the side wall of the first moving rod 420 is provided with at least one first guide portion 4202
- the inner wall of the fluid channel 4101 is provided with a first slide groove
- the first slide groove is provided on the inner wall of the fluid channel 4101.
- a guide portion 4202 is slidably engaged with the first slide groove.
- the first moving rod 420 is slidingly connected to the inner wall of the fluid channel 4101 , and the side wall of the first moving rod 420 is opposite to the inner wall of the fluid channel 4101 .
- At least one first guide part 4202 is provided on the side wall of the first moving rod 420.
- the shape of the first guide part 4202 may be plate-shaped, spherical, etc.
- a first chute is provided on the inner wall of the fluid channel 4101, and the extending direction of the first chute is consistent with the sliding direction of the first moving rod 420.
- the first guide part 4202 is embedded in the first slide groove.
- the first moving rod 420 When the first moving rod 420 slides relative to the fluid channel 4101, the first moving rod 420 can be lifted by the sliding fit between the first guide part 4202 and the first slide groove. Smoothness when sliding to avoid jamming and deflection problems.
- the number of the first guide parts 4202 matches the number of the first chute.
- two first guide parts 4202 are symmetrically provided on the side wall of the first moving rod 420.
- the inner wall of the channel 4101 is symmetrically provided with two first slide grooves, which further improves the stability of the first moving rod 420 when sliding.
- At least one second guide 4402 is provided on the side wall of the first valve body 440 , and a second slide groove is provided on the inner wall of the fluid channel 4101 .
- the two guide parts 4402 are slidingly engaged with the second slide groove.
- the first valve body 440 is slidingly connected to the inner wall of the fluid channel 4101 , and the side wall of the first valve body 440 is opposite to the inner wall of the fluid channel 4101 .
- At least one second guide part 4402 is provided on the side wall of the first valve body 440.
- the shape of the second guide part 4402 may be plate-shaped, spherical, etc.
- a second chute is provided on the inner wall of the fluid channel 4101, and the extension direction of the second chute is consistent with the sliding direction of the first valve body 440.
- the second guide part 4402 is embedded in the second slide groove.
- the first valve body 440 When the first valve body 440 slides relative to the fluid channel 4101, the first valve body 440 can be lifted by the sliding fit between the second guide part 4402 and the second slide groove. Smoothness when sliding to avoid jamming and deflection problems.
- the number of the second guide parts 4402 matches the number of the second slide grooves.
- two second guide parts 4402 are symmetrically provided on the side wall of the first valve body 440.
- Two second slide grooves are symmetrically provided on the inner wall of the channel 4101, which further improves the stability of the first valve body 440 when sliding.
- a groove 4403 is provided at the other end of the first valve body 440, and the first elastic member 450 is at least partially located in the groove 4403; the first One end of the elastic member 450 is in contact with the bottom of the groove body 4403 , and the other end of the first elastic member 450 is in contact with the housing 10 .
- the first elastic member 450 provides driving force for the first valve body 440 and the first moving rod 420 .
- a groove body 4403 is provided at the other end of the first valve body 440.
- the groove body 4403 can be formed by opening a hole or by integral injection molding.
- the first elastic member 450 is at least partially located in the groove body 4403, and partially extends out of the groove body 4403.
- One end of the first elastic member 450 is in contact with the bottom of the groove body 4403, and the other end of the first elastic member 450 is in contact with the shell.
- the body 10 is in contact.
- an installation space can be provided for the first elastic member 450 and play a certain limiting role for the first elastic member 450, so that the first elastic member 450 is less likely to deflect. , jamming problem and improve the stability of the fire protection device.
- a mounting shaft 4404 is provided in the groove body 4403, and the mounting shaft 4404 is coaxially arranged with the groove body 4403; the first elastic member 450 is sleeved on The mounting shaft 4404.
- the first elastic member 450 is embedded in the groove body 4403, and a mounting shaft 4404 is provided in the groove body 4403.
- the mounting shaft 4404 is coaxially arranged with the groove body 4403.
- the mounting shaft One end of 4404 is connected to the bottom of the groove, and the first elastic member 450 is sleeved on the mounting shaft 4404.
- the first elastic member 450 will deform in a direction along the common axis of the installation shaft 4404 and the groove body 4403, making it less likely to cause deflection and jamming, further improving fire protection. device stability.
- the housing 10 further includes a baffle 4104, which is disposed in the fluid channel 4101 and connected to the inner wall of the fluid channel 4101;
- the first elastic member 450 is in contact with the baffle 4104.
- the first elastic member 450 accumulates elastic potential energy under the joint action of the first valve body 440 and the housing 10.
- the housing 10 is provided with a baffle 4104.
- the baffle 4104 It is connected to the inner wall of the fluid channel 4101.
- the specific connection method can be bonding, snapping, etc., or it can be made using an integrated molding process.
- the shape of the baffle 4104 can be rectangular or semicircular. No. One end of the elastic member 450 is in contact with the first valve body 440, and the other end of the first elastic member 450 is in contact with the baffle 4104, and elastic potential energy is accumulated under the joint action of the first valve body 440 and the baffle 4104.
- the end surface of the baffle 4104 is perpendicular to the deformation direction of the first elastic member 450, which is beneficial to improving the stability of the fire protection device.
- the baffle 4104 can also be made of fire-proof and flame-retardant material.
- the fire prevention device also includes a second moving rod 460, a second fusible member 470, a second valve body 480 and a second elastic member 490; the second moving rod 460.
- the second fusible component 470, the second valve body 480 and the second elastic member 490 are all disposed in the fluid channel 4101; the second fusible component 470 is disposed at the other end of the fluid channel 4101 and connected with The inner wall of the fluid channel 4101 is connected; the second moving rod 460 is slidingly connected to the inner wall of the fluid channel 4101, and the second fusible member 470 is provided on the second moving rod 460; the second The valve body 480 penetrates the second narrowing portion 4103 and is slidingly connected to the inner wall of the fluid channel 4101.
- the second valve body 480 is connected to the second moving rod 460.
- the second valve The second elastic member 490 is provided at the other end of the body 480, and the second elastic member 490 is in contact with the housing 10; the second valve body 480 is provided with a second elastic member 490 near the second narrowing portion 4103.
- the second seal 4801 when the second valve body 480 is in the open state, the second fusible member 470 supports the second moving rod 460 and the second valve body 480 is in the third position, the The second seal 4801 has a clearance fit with the second narrowing portion 4103, and the fluid channel 4101 is in an open state; the second elastic member 490 drives the second moving rod 460 and the second valve body 480 When sliding to the fourth position, the second valve body 480 is in a closed state, the second seal 4801 is engaged with the second narrowing portion 4103, and the fluid channel 4101 is in a closed state.
- the second moving rod 460 , the second fusible member 470 , the second valve body 480 and the second elastic member 490 are all disposed in the fluid channel 4101 .
- the fluid channel 4101 includes one opposite end and the other end.
- the second fusible member 470 is disposed at the other end of the fluid channel 4101, close to the opening of the fluid channel 4101.
- the second fusible member 470 is connected to the inner wall of the fluid channel 4101.
- the connection method can be snapping, bonding, etc.
- the second fusible component 470 may be made of a material with a lower melting point, such as PP, PVC and other materials.
- the second moving rod 460 is slidingly connected to the inner wall of the fluid channel 4101.
- the axis of the second moving rod 460 coincides with the axis of the fluid channel 4101.
- the second moving rod 460 is made of fire-proof and flame-retardant material.
- the second fusible member 470 is disposed on the second moving rod 460 to support the second moving rod 460 in the fluid channel 4101 .
- the second valve body 480 penetrates the second narrowing portion 4103 and is slidably connected to the inner wall of the fluid channel 4101.
- One end of the second valve body 480 is connected to the second moving rod 460.
- the specific connection method may be clamping, bonding, etc.
- the second valve body 480 is also made of fire-proof and flame-retardant material.
- a second elastic member 490 is provided at the other end of the second valve body 480 .
- the second elastic member 490 contacts the housing 10 to provide driving force for the second valve body 480 .
- the second elastic member 490 can be a metal spring such as iron, copper, or alloy, or a soft rubber that can store elastic potential energy, such as silicone or rubber.
- the second valve body 480 is provided with a second seal 4801 near the second narrowing portion 4103.
- the second seal 4801 can be disposed on both sides of the second valve body 480 along its axis. When the second valve body 480 is relative to the shell When the body 10 slides, the second seal 4801 can block the gap between the second valve body 480 and the second narrowing portion 4103, thereby closing the fluid channel 4101.
- the second seal 4801 can be made of silicone, rubber or other materials, which can achieve a good sealing effect.
- the second fusible member 470 When a fire does not occur (the temperature is low), the second fusible member 470 is in a non-molten state, has a certain rigidity, and can support the second moving rod 460 and the second valve body 480. At this time, the second moving rod 460 and the second valve body 480 are in the third position, the second valve body 480 is in the open state, the second seal 4801 and the second narrowing part 4103 are in clearance fit, the fluid channel 4101 is in the open state, and oxygen can be in the fluid channel 4101 Normal transmission.
- the second fusible member 470 melts, and the second fusible member 470 cannot continue to support the second moving rod 460 and the second valve body 480, and the equilibrium state is broken.
- the second moving rod 460 and the second valve body 480 will slide from the third position to the fourth position.
- the second valve body 480 is in a closed state, and the second seal on the second valve body 480 4801 will engage with the second narrowing portion 4103, so that the fluid channel 4101 is in a closed state and oxygen cannot continue to be transported.
- the second moving rod 460 can also be separated from the first valve body.
- the second moving rod 460 continues to slide under the action of inertia and extends into the oxygen therapy device or the patient's pipeline, which can also play a role in cutting off the oxygen passage.
- the safety factor of the fire protection device is further improved.
- the fluid channel 4101 By disposing moving rods and valve bodies at both ends of the fluid channel 4101, when at least one of the first narrowing portion 4102 and the second narrowing portion 4103 is engaged with the seal, the fluid channel 4101 can be closed to prevent oxygen leakage and lift Improve the reliability of fire protection devices.
- the second fusible member 470 is provided with a second snap-in portion 4701
- the second moving rod 420 is provided with a second snap-in fitting portion 4601
- the second snap-in fitting portion 4601 is provided in the second fusible member 470.
- the two fusible components 470 are engaged with the second moving rod 460 .
- the second fusible member 470 is provided with a second snapping portion 4701
- the second moving rod 460 is provided with a second snapping fitting portion 4601
- the second fusible member 470 and The second moving rod 460 is engaged.
- the second snapping part 4701 may be a protrusion
- the second snapping fitting part 4601 may be a groove
- the second snapping part 4701 may be a groove
- the second snapping fitting part 4601 may be a protrusion.
- the housing 10 is provided with a first pipeline joint 4105 and a second pipeline joint 4106.
- the first pipeline joint 4105 and the second pipeline joint 4106 are respectively used to connect to the pipeline of the oxygen therapy device or the patient end; at least one third clamping portion 4107 is provided on the outer wall of the first pipeline connector 4105 and/or the second pipeline connector 4106.
- the third clamping part 4107 is used for clamping with the oxygen therapy device or the pipeline at the patient end.
- first pipeline connector 4105 and the second pipeline connector 4106 are respectively located on both sides of the fluid channel 4101 .
- the first pipe joint 4105, the second pipe joint 4106 and the housing 10 can be an integrated structure, or can be made separately and then assembled.
- the first pipeline connector 4105 and the second pipeline connector 4106 are used to communicate with the oxygen therapy device or the patient-side pipeline.
- the oxygen therapy device or the patient-side pipeline can be connected to the first pipeline connector 4105 or the second pipeline connector 4106. Assembly is achieved by threaded connection or interference fit.
- the first pipeline connector 4105 and the second pipeline connector 4106 can be symmetrically arranged on the housing 10.
- one of the pipeline connectors is connected to the patient end, and the other pipeline connector is connected to the patient end.
- the connector is connected to the end of the oxygen therapy device. Since the first pipeline connector 4105 and the second pipeline connector 4106 are symmetrically arranged, both the first pipeline connector 4105 and the second pipeline connector 4106 can be adapted to the oxygen therapy device end or the patient end, and the fire protection device will not be installed backwards. situation, greatly improving assembly efficiency.
- the first pipeline connector 4105 and the second pipeline connector 4106 are used to connect the oxygen therapy device or the patient's pipeline.
- the pipeline usually uses a conduit, and the conduit is sleeved on the outside of the first pipeline joint 4105 and the second pipeline joint 4106.
- the outer wall of a pipe joint 4105 and/or the outer wall of the second pipe joint 4106 is provided with at least one third clamping portion 4107.
- the shape of the third clamping portion 4107 is tooth-like.
- the third snap The portion 4107 is snap-fitted with the conduit to ensure air tightness between the conduit and the first pipeline connector 4105 and/or the second pipeline connector 4106, thereby avoiding the problem of oxygen leakage.
- the number of the third clamping parts 4107 can be selected according to the sizes of the first pipeline connector 4105 and the second pipeline connector 4106.
- the first moving rod 420 and the first valve body 440 have an integral structure.
- the first moving rod 420 and the first valve body 440 can be made by using an integrated mold. There will be no seam between the first moving rod 420 and the first valve body 440 , which greatly improves the efficiency of the first moving rod 420 . and the structural strength and aesthetics of the first valve body 440 . Moreover, when the first moving rod 420 and the first valve body 440 are switched between the first position and the second position, the integrated structure of the first moving rod 420 and the first valve body 440 has strong stability and is less prone to jamming and deflection. The problem of inclination greatly improves the stability of the protective device.
- the first moving rod 420 and the first valve body 440 have a separate structure.
- the first moving rod 420 and the first valve body 440 can be made separately and assembled by snapping or bonding. Of course, they can also be assembled under the action of the first fusible member 430 and the first elastic member 450 , only maintaining a contact relationship, once the first fusible member 430 melts, the first moving rod 420 and the first valve body 440 can be separated. The first moving rod 420 can also be separated from the first valve body 440. The first moving rod 420 continues to slide under the action of inertia and extends into the oxygen therapy device or the patient's pipeline, and can also play a role in cutting off the oxygen passage. The safety factor of the fire protection device is further improved.
- the disclosed embodiment also discloses a fourth oxygen therapy device, including a fourth fire prevention device.
- oxygen therapy equipment usually consists of three parts: an oxygen generating device (such as an oxygen tank, an oxygen concentrator, etc.), an interface used to deliver oxygen to the patient (such as a nasal oxygen tube, a mask, etc.), and a connection between the generating device and the patient interface. Pipeline.
- a fire prevention device is provided in series in the pipeline between the oxygen generating device and the patient interface.
- the fire prevention device has a fluid channel 4101.
- the fluid channel 4101 is used to communicate with the oxygen therapy device or the patient's pipeline.
- the fire protection device can control the fluid channel.
- the opening or closing of 4101 controls the opening or closing of the oxygen therapy instrument pipeline.
- a fourth fire prevention device is connected in series in the pipeline of the fourth oxygen therapy device.
- the fourth fire prevention device includes: the housing 10, the first moving rod 420, the first fusible component 430, the first The valve body 440 and the first elastic member 450; the housing 10 has a fluid channel 4101, and the fluid channel 4101 is provided There is a first narrowing part 4102 and a second narrowing part 4103.
- the first moving rod 420, the first fusible member 430, the first valve body 440 and the first elastic member 450 are all arranged in the fluid channel 4101;
- the meltable component 430 is disposed at one end of the fluid channel 4101 and connected to the inner wall of the fluid channel 4101;
- the first moving rod 420 is slidingly connected to the inner wall of the fluid channel 4101, and the first fusible component 430 is disposed on the first moving rod 420;
- the valve body 440 penetrates the first narrowing part 4102 and is slidingly connected with the inner wall of the fluid channel 4101.
- One end of the first valve body 440 is connected to the first moving rod 420, and the other end of the first valve body 440 is provided with a first elastic
- the first elastic member 450 is in contact with the housing 10; the first valve body 440 is provided with a first sealing member 4401 close to the first narrowing portion 4102; when the first valve body 440 is in the open state, the first sealing member 4401 is provided.
- the melting member 430 supports the first moving rod 420 and the first valve body 440 in the first position, the first seal 4401 is in clearance fit with the first narrowing portion 4102, and the fluid channel 4101 is in an open state; when the first elastic member 450 drives the first When a moving rod 420 and the first valve body 440 slide to the second position, the first valve body 440 is in a closed state, the first seal 4401 is engaged with the first narrowing portion 4102, and the fluid channel 4101 is in a closed state.
- the fluid channel 4101 can be automatically closed in the event of a fire, cutting off the oxygen path to avoid continued leakage of oxygen causing fire. spread.
- the structure is simple, which reduces the manufacturing difficulty; there is no need to open holes in the first fusible component 430, and oxygen can be transmitted normally through the gap between the above components and the fluid channel 4101, reducing ventilation noise and avoiding errors in non-fire situations.
- the occurrence of blocking the air path improves the stability of the fire protection device and ensures the treatment effect.
- the embodiment of the present disclosure also discloses a fourth ventilation therapy system, including a fourth oxygen therapy instrument.
- the fourth ventilation therapy system includes a control device and a fourth oxygen therapy device.
- the control device is used to control the oxygen supply amount, working time, etc. of the oxygen therapy device.
- the control device may be an electronic device or an electronic device. components, such as integrated circuits or chips.
- the electronic device may be a terminal or other devices other than the terminal.
- the electronic device may be a mobile phone, a tablet computer, a notebook computer, a palmtop computer, a mobile Internet device, a robot, a wearable device, etc., which are not specifically limited in the embodiments of this disclosure.
- the fourth ventilation therapy system includes a fourth oxygen therapy device, and a fourth fire prevention device is connected in series in the pipeline of the fourth oxygen therapy device.
- the fire prevention device includes: a housing 10, a first moving rod 420.
- the housing 10 has a fluid channel 4101, and the fluid channel 4101 is provided with a first narrowing portion 4102 and a second narrowing portion 4103.
- a moving rod 420, the first fusible component 430, the first valve body 440 and the first elastic member 450 are all arranged on In the fluid channel 4101; the first fusible member 430 is disposed at one end of the fluid channel 4101 and connected to the inner wall of the fluid channel 4101; the first moving rod 420 is slidingly connected to the inner wall of the fluid channel 4101, and the first fusible member 430 is disposed at the On a moving rod 420; the first valve body 440 penetrates the first narrowing part 4102 and is slidingly connected with the inner wall of the fluid channel 4101. One end of the first valve body 440 is connected to the first moving rod 420.
- the first valve body 440 A first elastic member 450 is provided at the other end, and the first elastic member 450 is in contact with the housing 10; a first sealing member 4401 is provided near the first narrowing portion 4102 of the first valve body 440; in the first valve body 440 When in the open state, the first fusible member 430 supports the first moving rod 420 and the first valve body 440 in the first position, the first seal 4401 and the first narrowing portion 4102 are in clearance fit, and the fluid channel 4101 is in the open state; When the first elastic member 450 drives the first moving rod 420 and the first valve body 440 to slide to the second position, the first valve body 440 is in a closed state and the first seal 4401 is engaged with the first narrowing portion 4102, and the fluid channel 4101 is closed.
- the fluid channel 4101 can be automatically closed in the event of a fire, cutting off the oxygen path to avoid continued leakage of oxygen causing fire. spread.
- the structure is simple, which reduces the manufacturing difficulty; there is no need to open holes in the first fusible component 430, and oxygen can be transmitted normally through the gap between the above components and the fluid channel 4101, reducing ventilation noise and avoiding errors in non-fire situations.
- the occurrence of blocking the air path improves the stability of the fire protection device and ensures the treatment effect.
- a fifth fire prevention device including: a housing 10, a first positioning member 520, and a first seal 530; there is a fluid in the housing 10 Channel 5101.
- a first opening 5102 and a second opening 5103 are provided on opposite sides of the fluid channel 5101. The first opening 5102 and the second opening 5103 are respectively used to communicate with the oxygen therapy device or the pipeline at the patient end.
- the first positioning member 520 is disposed in the fluid channel 5101 and connected to the housing 10; the first sealing member 530 is sleeved on the first positioning member 520, and the first sealing member 530 has oxidation resistance; at the first temperature, the first seal 530 is in clearance fit with the inner wall of the fluid channel 5101, and the fluid channel 5101 is in an open state; at the second temperature, the first seal The component 530 increases in volume and fits the inner wall of the fluid channel 5101, and the fluid channel 5101 is in a closed state; wherein the second temperature is higher than the first temperature.
- the fifth fire prevention device includes a housing 10, a first positioning member 520, and a first sealing member 530.
- the housing 10 can It is better to use materials such as plastic that are not prone to chemical reactions with oxygen.
- the fluid channel 5101 is provided with a first opening 5102 and a second opening 5103.
- the first opening 5102 and the second opening 5103 can be located on opposite sides of the fluid channel 5101.
- the first opening 5102 and the second opening 5103 are provided in the housing 10.
- the axes of the openings 5103 are collinear; the first opening 5102 and the second opening 5103 can also be arranged at an angle on the fluid channel 5101.
- the first opening 5102 and the second opening 5103 are respectively used to communicate with the oxygen therapy device or the patient-side pipeline.
- the first opening 5102 is connected to the oxygen therapy device-side pipeline
- the second opening 5103 is connected to the patient-side pipeline.
- Oxygen flows from the An opening 5102 enters the fluid channel 5101, and is then transmitted to the patient through a second opening 5103.
- the second opening 5103 may also be connected to the pipeline at the oxygen therapy device end, and the first opening 5102 may be connected to the pipeline at the patient end. This is not limited in the embodiment of the present disclosure.
- At least one toothed protrusion is provided on the outer wall of the housing 10 .
- the toothed protrusion is used for clamping with the oxygen therapy device or the pipeline at the patient end.
- the pipeline of the oxygen therapy device usually uses a conduit, which is sleeved on the outer wall of the housing 10.
- at least one tooth-shaped protrusion is provided on the outer wall of the housing 10.
- the tooth-shaped protrusions are engaged with the conduit, ensuring the airtightness between the conduit and the housing 10 and avoiding the problem of oxygen leakage.
- the number of tooth-shaped protrusions can be selected according to the size of the housing 10 .
- the first positioning member 520 is disposed in the fluid channel 5101 and is connected to the housing 10 .
- the first positioning member 520 and the housing 10 may be connected by snapping, welding, or bonding.
- the first positioning member 520 only occupies a small part of the space of the fluid channel 5101 and does not hinder the transmission of gas in the fluid channel 5101.
- the first sealing member 530 is sleeved on the first positioning member 520.
- the first positioning member 520 is used to fix the first sealing member 530 in the fluid channel 5101.
- the first sealing member 530 and the first positioning member 520 are coaxially arranged.
- the common axis of the first seal 530 and the first positioning member 520 may also coincide with the long axis of the fluid channel 5101.
- the first seal 530 has a first state and a second state.
- the first seal 530 When the first seal 530 is in the first state, the volume is small. There is a gap between the outer surface of the first seal 530 and the inner wall of the fluid channel 5101, and the gas can Transmit normally through this gap.
- the first sealing member 530 When the first sealing member 530 is in the second state, the volume increases, and the outer surface of the first sealing member 530 is in contact with the inner wall of the fluid channel 5101 with a certain amount of interference, so that the fluid channel 5101 is in a closed state.
- the fluid channel 5101 By switching the first seal 530 from the first state to the second state, the fluid channel 5101 can be controlled to switch from the open state to the closed state, thereby blocking the passage of oxygen.
- the first seal 530 has oxidation resistance. Even if it is exposed to an oxygen-rich environment for a long time, it is not prone to aging and rust, which will avoid affecting the treatment effect. Improved the stability
- the first seal 530 can switch from the first state to the second state according to the temperature. When no fire occurs, the fire protection device is at the first temperature.
- the first temperature may be any temperature value before the volume of the first seal 530 increases, or it may be a temperature range. At the first temperature, the first seal 530 is in the above-mentioned first state and has a small volume. There is a gap between the outer surface of the first seal 530 and the inner wall of the fluid channel 5101. The fluid channel 5101 is in an open state and gas can pass through. This gap is transmitted normally.
- the fire prevention device When a fire occurs, the fire prevention device is at a second temperature, and the second temperature is higher than the first temperature.
- the second temperature can be any temperature value that can increase the volume of the first seal 530, or it can be a temperature range.
- the first sealing member 530 At the second temperature, the first sealing member 530 is in the above-mentioned second state, and the volume increases.
- the outer surface of the first sealing member 530 is in contact with the inner wall of the fluid channel 5101 and has a certain amount of interference, so that the fluid channel 5101 is closed.
- the fifth fire prevention device includes: a housing 10, a first positioning member 520 and a first seal 530; the housing 10 has a fluid channel 5101, and first openings are provided on opposite sides of the fluid channel 5101 5102 and the second opening 5103.
- the first opening 5102 and the second opening 5103 are respectively used to communicate with the oxygen therapy device or the pipeline at the patient end;
- the first positioning member 520 is provided in the fluid channel 5101 and is connected to the housing 10;
- a sealing member 530 is sleeved on the first positioning member 520, and the first sealing member 530 has oxidation resistance.
- the fire protection device When a fire does not occur, the fire protection device is at the first temperature, the first seal 530 is in clearance fit with the inner wall of the fluid channel 5101, and the fluid channel 5101 is in an open state; when a fire occurs, the fire protection device is at the second temperature, and the first seal 530 increases in volume and fits the inner wall of the fluid channel 5101, and the fluid channel 5101 is in a closed state, thereby cutting off the oxygen passage and preventing the continued leakage of oxygen from causing the fire to spread, wherein the second temperature is higher than the first temperature. Since the first sealing member 530 has oxidation resistance, the problem of oxidation of the first sealing member 530 is avoided, and the durability and safety factor of the fire prevention device are improved.
- the first seal 530 is a thermotropic shape memory plastic; at the second temperature, the first seal 530 expands due to heat and interacts with the fluid channel.
- the inner wall of 5101 is in contact with each other, and the fluid channel 5101 is in a closed state.
- the first seal 530 may be a thermotropic shape memory plastic.
- the thermotropic shape memory plastic is a heat-sensitive functional material that can be used at room temperature. It can be stored in a certain shape for a long time and can expand rapidly when heated.
- thermoforming Shape memory plastics can specifically include polyurethane elastomer, polynorbornene, trans-1,4-polyisoprene, styrene/butadiene copolymer, cross-linked polyethylene materials, etc.
- the first seal 530 When no fire occurs, the first seal 530 can be stored in a certain shape for a long time. There is a gap between the outer surface of the first seal 530 and the inner wall of the fluid channel 5101. The fluid channel 5101 is in an open state, and gas can pass through the gap normally. transmission.
- the first sealing member 530 When a fire occurs, the first sealing member 530 rapidly expands when heated, and the volume increases. The outer surface of the first sealing member 530 is in contact with the inner wall of the fluid channel 5101 and has a certain amount of interference, so that the fluid channel 5101 is in a closed state. .
- thermotropic shape memory plastic By using the first seal 530 of a thermotropic shape memory plastic, in the event of a fire, the characteristics of the thermotropic shape memory plastic can be used to quickly close the fluid channel 5101, block the oxygen path, and prevent the continued leakage of oxygen from causing the fire to spread. At the same time, thermal shape memory plastic has good oxidation resistance. Even if it is in an oxygen-rich environment for a long time, it is not prone to rust and aging, which will avoid affecting the treatment effect. It also improves the stability and durability of the fire protection device. .
- the inner wall of the fluid channel 5101 is provided with at least one annular protrusion 5104; at the second temperature, the annular protrusion 5104 abuts the first seal 530 , the fluid channel 5101 is in a closed state.
- the inner wall of the fluid channel 5101 is provided with at least one annular protrusion 5104 , and the annular protrusion 5104 surrounds the outer surface of the first seal 530 .
- the fluid channel 5101 is in an open state, and gas can be transmitted normally through the gap.
- the first sealing member 530 rapidly expands when heated, and its volume increases.
- the outer surface of the first sealing member 530 fits the annular protrusion 5104 with a certain amount of interference, so that the fluid channel 5101 is closed.
- the first seal 530 does not need to expand too much and can also close the fluid channel 5101 by cooperating with the annular protrusion 5104, thereby improving the fire protection device. stability.
- the inner wall of the fluid channel 5101 is provided with a first protruding structure 5105 and a second protruding structure 5106; the first protruding structure 5105 and the second protruding structure
- the raised structures 5106 are respectively located at both ends of the first positioning member 520; the first raised structure 5105 is provided with a first positioning portion 5107, and the second raised structure 5106 is provided with a second positioning portion 5108. Both ends of the first positioning member 520 are respectively connected with the first positioning part 5107 and the second positioning part. 5108 card connection.
- the first positioning member 520 is used to position and fix the first sealing member 530 .
- the first positioning member 520 can be installed in the fluid channel 5101 in the following manner: a first protruding structure 5105 and a second protruding structure 5106 are provided on the inner wall of the fluid channel 5101.
- the first protruding structure 5105 and the second protruding structure 5106 are They are spaced apart along the long axis of the fluid channel 5101 and are respectively located at both ends of the first positioning member 520; the first protruding structure 5105 and the second protruding structure 5106 only occupy a small part of the space of the fluid channel 5101 and will not hinder oxygen. normal transmission.
- the first protrusion structure 5105 can be divided into an upper protrusion and a lower protrusion, with a gap between the upper protrusion and the lower protrusion; the second protrusion structure 5106 is the same as the first protrusion structure 5105.
- a step-shaped positioning portion namely a first positioning portion 5107, is provided on the relatively close end surfaces of the upper protrusion and the lower protrusion; similarly, a second protrusion structure 5106 is provided with a second positioning portion.
- Positioning part 5108 Both ends of the first positioning member 520 can be respectively embedded in the first positioning part 5107 and the second positioning part 5108 to achieve snap-fitting.
- the inner wall of the fluid channel 5101 is provided with a mounting portion 5109, and the mounting portion 5109 is provided with a receiving groove 5110; one end of the first positioning member 520 is embedded in the inside the accommodating groove 5110.
- a mounting portion 5109 is provided on the inner wall of the fluid channel 5101.
- the mounting portion 5109 is connected to the inner wall of the fluid channel 5101 and can be assembled by welding, snapping or bonding.
- the mounting portion 5109 and the inner wall of the fluid channel 5101 can also be assembled using
- the one-piece structure has better structural strength; the mounting part 5109 can also be connected to the inner wall of the fluid channel 5101 using a connecting structure.
- the mounting portion 5109 is provided with a receiving groove 5110, and one end of the first positioning member 520 is embedded in the receiving groove 5110 to achieve installation and fixation.
- one end of the first positioning member 520 is provided with a snap-fitting portion, and the groove wall of the accommodation groove 5110 is provided with a snap-fitting portion.
- One end of the first positioning member 520 is connected to The receiving groove 5110 is snap-fitted.
- a snap-fitting portion is provided at one end of the first positioning member 520, and the groove wall of the receiving groove 5110 is provided with a snap-fitting portion, using The snap-in function of the snap-in part and the snap-in mating part realizes the stable assembly of the first positioning part 520 and the mounting part 5109.
- one end of the first positioning member 520 is provided with external threads, so The groove wall of the accommodation groove 5110 is provided with internal threads, and one end of the first positioning member 520 is threadedly connected to the accommodation groove 5110 .
- the first positioning member 520 and the mounting portion 5109 can also be assembled through threaded connection to facilitate disassembly.
- One end of the first positioning member 520 is provided with external threads, and the groove wall of the receiving groove 5110 is provided with internal threads.
- the threaded connection between the first positioning member 520 and the mounting portion 5109 can be achieved by rotating the first positioning member 520 or the housing 10 .
- one end of the first positioning member 520 is interference-fitted with the receiving groove 5110 .
- one end of the first positioning member 520 can also be assembled with the receiving groove 5110 through an interference fit, which is easy to install and has good stability.
- the mounting portion 5109 is provided with at least one connecting rib 5111 , and the mounting portion 5109 is connected to the inner wall of the fluid channel 5101 through the connecting rib 5111 .
- the mounting portion 5109 can also be connected to the inner wall of the fluid channel 5101 through a connecting rib 5111.
- At least one connecting rib 5111 is provided on the mounting portion 5109, and one end of the connecting rib 5111 is connected to the inner wall of the fluid channel 5101.
- the inner wall of the fluid channel 5101 is fixed, and the other end is fixed to the mounting portion 5109.
- the fixing method can be welding or bonding.
- connecting ribs 5111 can be provided on both sides of the mounting part 5109.
- the number of connecting ribs 5111 can be selected according to the size of the fluid channel 5101 and the mounting part 5109. This is not the case in the embodiment of the present disclosure. Make limitations.
- the mounting part 5109 is fixed in the fluid channel 5101 through the connecting rib 5111.
- the mounting part 5109 will not block the oxygen passage, and oxygen can be transmitted normally through the gap between the connecting rib 5111 and the inner wall of the fluid channel 5101.
- the fifth fire prevention device further includes a fusible member 540; the first seal 530 is an elastomer, and the fusible member 540 wraps the first seal 530 ;
- the fusible component 540 compresses the first seal 530, and the fusible component 540 is in clearance fit with the inner wall of the fluid channel 5101, and the fluid channel 5101 is in the open state;
- the fusible member 540 is in the molten state, the first seal 530 releases at least part of the elastic potential energy, and the first seal 530 increases in volume and sticks to the inner wall of the fluid channel 5101 Close, the fluid channel 5101 is in a closed state.
- the first seal 530 may also be an elastomer, such as silicone or rubber, or other materials that can be compressed and store elastic potential energy. exist
- the outer surface of the first sealing member 530 is wrapped with a fusible member 540.
- the fusible member 540 may be made of a material with a lower melting point, such as PP, PVC and other materials. Due to the wrapping of the fusible component 540, the first seal 530 will not be exposed to an oxygen-rich environment to avoid oxidation; at the same time, the first seal 530 itself is not prone to oxidation and is not prone to oxidation and rust when exposed to oxygen for a long time. phenomenon to avoid affecting the treatment effect, while also improving the stability and durability of the fire protection device.
- the fusible member 540 When a fire does not occur (the temperature is low), the fusible member 540 is in a non-melted state, and the fusible member 540 compresses the first sealing member 530, the volume of the first sealing member 530 decreases, and accumulates elastic potential energy, and the first sealing member 530
- the volume of the component 530 refers to the volume perpendicular to the inner wall of the fluid channel 5101. There is a gap for gas circulation between the outer surface of the first seal 530 and the inner wall of the fluid channel 5101, and oxygen can circulate normally through the gap.
- the fusible member 540 When a fire occurs (high temperature), the fusible member 540 is in a molten state, and the fusible member 540 cannot continue to wrap the first sealing member 530 , and the equilibrium state of the first sealing member 530 is broken. At this time, the first sealing member 530 At least part of the elastic potential energy will be released, the volume of the first sealing member 530 increases, and the outer surface of the first sealing member 530 contacts the inner wall of the fluid channel 5101, so that the fluid channel 5101 is in a closed state and the oxygen passage is blocked.
- the fifth fire prevention device also includes a second positioning member 550 and a second sealing member 560; the second positioning member 550 is disposed in the fluid channel 5101 and is connected with the fluid channel 5101.
- the housing 10 is connected, the first positioning member 520 is close to the first opening 5102, and the second positioning member 550 is close to the second opening 5103; the second sealing member 560 is sleeved on the first opening 5102.
- Two positioning members 550, the second sealing member 560 has oxidation resistance; at the first temperature, the first sealing member 530 and the second sealing member 560 respectively have a gap with the inner wall of the fluid channel 5101 Cooperating, the fluid channel 5101 is in an open state; at the second temperature, the first seal 530 and the second seal 560 increase in volume and fit with the inner wall of the fluid channel 5101 respectively.
- the fluid channel 5101 is in a closed state.
- the fire prevention device Acts as double protection.
- the second positioning member 550 is disposed in the fluid channel 5101 and is connected to the housing 10 .
- the connection between the second positioning member 550 and the housing 10 may be snapping, welding, or bonding.
- the second positioning member 550 only occupies a small part of the space of the fluid channel 5101 and does not hinder the transmission of gas in the fluid channel 5101.
- the second sealing member 560 is sleeved on the second positioning member 550.
- the second positioning member 550 For fixing the second sealing member 560 in the fluid channel 5101, the second sealing member 560 and the second positioning member 550 are coaxially arranged.
- the common axis of the second seal 560 and the second positioning member 550 may also coincide with the long axis of the fluid channel 5101.
- the second seal 560 has a first state and a second state.
- the second seal 560 When the second seal 560 is in the first state, its volume is small. There is a gap between the outer surface of the second seal 560 and the inner wall of the fluid channel 5101, and the gas can Transmit normally through this gap.
- the second sealing member 560 When the second sealing member 560 is in the second state, the volume increases, and the outer surface of the second sealing member 560 is in contact with the inner wall of the fluid channel 5101 with a certain amount of interference, so that the fluid channel 5101 is in a closed state.
- the fluid channel 5101 By switching the second seal 560 from the first state to the second state, the fluid channel 5101 can be controlled to switch from the open state to the closed state, thereby blocking the passage of oxygen.
- the second seal 560 has oxidation resistance. Even if it is exposed to an oxygen-rich environment for a long time, it is not prone to rust and aging, which avoids affecting the treatment effect. It also improves
- the second seal 560 can switch from the first state to the second state according to the temperature.
- the fire protection device is at the first temperature.
- the first temperature can be any temperature value before the volume of the second sealing member 560 increases, or it can also be a temperature range.
- the second seal 560 is in the above-mentioned first state and has a small volume. There is a gap between the outer surface of the second seal 560 and the inner wall of the fluid channel 5101. The fluid channel 5101 is in an open state and gas can pass through. This gap is transmitted normally.
- the fire protection device When a fire occurs, the fire protection device is at a second temperature, and the second temperature is higher than the first temperature.
- the second temperature can be any temperature value that can increase the volume of the second seal 560, or it can be a temperature range.
- the second sealing member 560 At the second temperature, the second sealing member 560 is in the above-mentioned second state, and its volume increases.
- the outer surface of the second sealing member 560 is in contact with the inner wall of the fluid channel 5101 and has a certain amount of interference, so that the fluid channel 5101 is closed.
- the first positioning member 520 is close to the first opening 5102 and the second positioning member 550 is close to the second opening 5103.
- the first sealing member 530 is close to the first opening 5102 and the second sealing member 560 is close to the second opening 5103.
- the first seal 530 and the second seal 560 of thermotropic shape memory plastic can be used in the fluid channel 5101, or a combination of an elastomer and a fusible member 540 can be used.
- the above two implementations The methods are all applicable to the solution of being symmetrically arranged at both ends of the fluid channel 5101.
- the embodiment of the present disclosure also discloses a fifth ventilation treatment device, including a fifth fire prevention device.
- ventilation therapy equipment includes a control device, an oxygen therapy device, and a gas pipeline.
- the control device is used to control the oxygen supply amount, working time, etc. of the oxygen therapy device.
- the control device can be an electronic device or a component of an electronic device. , such as integrated circuits or chips.
- the electronic device may be a terminal or other devices other than the terminal.
- the electronic device may be a mobile phone, a tablet computer, a notebook computer, a palmtop computer, a mobile Internet device, a robot, a wearable device, etc., which are not specifically limited in the embodiments of this disclosure.
- the fifth ventilation treatment device includes a fifth fire prevention device.
- the fifth fire prevention device includes: a housing 10, a first positioning member 520 and a first sealing member 530; the housing 10 has a fluid channel 5101. , a first opening 5102 and a second opening 5103 are provided on opposite sides of the fluid channel 5101. The first opening 5102 and the second opening 5103 are respectively used to communicate with the oxygen therapy device or the pipeline at the patient end; the first positioning member 520 is provided on In the fluid channel 5101, and connected to the housing 10; the first sealing member 530 is sleeved on the first positioning member 520, and the first sealing member 530 has oxidation resistance.
- the fire protection device When a fire does not occur, the fire protection device is at the first temperature, the first seal 530 is in clearance fit with the inner wall of the fluid channel 5101, and the fluid channel 5101 is in an open state; when a fire occurs, the fire protection device is at the second temperature, and the first seal 530 increases in volume and fits the inner wall of the fluid channel 5101, and the fluid channel 5101 is in a closed state, thereby cutting off the oxygen passage and preventing the continued leakage of oxygen from causing the fire to spread, wherein the second temperature is higher than the first temperature. Since the first sealing member 530 has oxidation resistance, the problem of oxidation of the first sealing member 530 is avoided, and the durability and safety factor of the fire prevention device are improved.
- the fire prevention device includes: a housing 10 and a valve body 620; the housing 10 has a fluid channel 6101, and the fluid channel 6101 is provided with a first narrowing portion 6102 and a second narrowing portion 6103, and the valve body 620 is disposed in the fluid channel 6101; the valve body 620 is slidingly connected to the inner wall of the fluid channel 6101, and the valve body 620 is disposed in the fluid channel 6101.
- the outer side wall of the body 620 is provided with at least one guide portion 630, and the guide portion 630 slides with the inner wall of the fluid channel 6101; the valve body 620 has a first position and a second position relative to the fluid channel 6101; When the valve body 620 is in the first position, the valve body 620 is in clearance fit with the first narrowing portion 6102 and the second narrowing portion 6103 respectively, and the fluid channel 6101 is in an open state; When the valve body 620 is in the second position, the valve body 620 Engaged with the first narrowing portion 6102 and/or the second narrowing portion 6103, the fluid channel 6101 is in a closed state.
- the sixth fire protection device includes a housing 10 and a valve body 620 .
- the housing 10 can be made of materials that are not prone to chemical reactions with oxygen and are resistant to high temperatures, such as stainless steel or ceramic materials; it can also be made of fire-proof and flame-retardant materials.
- the fluid channel 6101 adopts a structure with a thick middle and thin ends to facilitate connection with the pipeline at the oxygen therapy device end or the patient end.
- the fluid channel 6101 transitions from the middle to both ends, and is provided with a first narrowing portion 6102 and a second narrowing portion 6103.
- the valve body 620 is disposed in the fluid channel 6101.
- the valve body 620 is slidingly connected to the inner wall of the fluid channel 6101.
- the axis of the valve body 620 coincides with the axis of the fluid channel 6101.
- the valve body 620 is made of fire-proof and flame-retardant material, which can provide a stable barrier to the fluid channel 6101 in the event of a fire. interruption effect.
- the outer wall of the valve body 620 is opposite to the inner wall of the fluid channel 6101.
- the outer wall of the valve body 620 is provided with at least one guide portion 630.
- the guide portion 630 is slidably matched with the inner wall of the fluid channel 6101, so that the valve body 620 can move relative to the fluid channel. When 6101 slides, it acts as a limit guide.
- the guide part 630 may be a sliding piece, a boss, or other structures.
- the number of guide portions 630 can be selected according to actual needs. As shown in Figure 50, in the embodiment of the present disclosure, a plurality of guide portions 630 are provided on the outer wall of the valve body 620, and the plurality of guide portions 630 are on the outside of the valve body 620. Evenly distributed on the wall, the guide portion 630 is in the shape of a hemispherical boss, which not only plays a good guiding and limiting role, but also reduces the sliding friction between the valve body 620 and the housing 10 .
- the guide part 630 may be made of the same material as the valve body 620 , or may be made of a fire-retardant and wear-resistant material.
- the guide part 630 and the valve body 620 can adopt an integrated structure, which has good structural strength and stability.
- the guide portion 630 can also be manufactured separately from the valve body 620 and then assembled together by bonding or welding.
- the valve body 620 has a first position and a second position relative to the fluid channel 6101.
- the valve body 620 is switched from the first position to the second position by sliding.
- the valve body 620 slides along the long axis direction of the fluid channel.
- a driving component can be provided on the valve body 620 to drive the valve body 620 to slide relative to the fluid channel 6101.
- the driving component can be a metal spring, a silicone component, or other components that can store elastic potential energy; a driving component such as a cylinder can also be provided on the valve body 620.
- the mechanism controls the sliding of the valve body 620.
- valve body 620 When the valve body 620 is in the first position, the valve body 620 is in clearance fit with the first narrowing part 6102 and the second narrowing part 6103 respectively, the fluid channel 6101 is in an open state, and oxygen can be transmitted normally in the fluid channel 6101.
- the valve body 620 When the valve body 620 is in the second position, the valve body 620 and the first narrowing portion 6102 and/or Or the second narrowing part 6103 is engaged, the fluid channel 6101 is in a closed state, and oxygen cannot continue to be transmitted.
- the valve body 620 is engaged with at least one of the first narrowing portion 6102 and the second narrowing portion 6103, both of which can block the oxygen passage.
- the valve body 620 is engaged with the first narrowing portion 6102 and the second narrowing portion 6103. Joined at the same time, the sealing effect is better and the performance of the fire protection device is improved.
- the guide portion 630 can play a limiting role when the valve body 620 slides relative to the fluid channel 6101, thereby preventing the valve body 620 from deflecting or jamming.
- the problem of the plug ensures that the valve body 620 can accurately engage with the first narrowing portion 6102 and/or the second narrowing portion 6103, thereby improving the stability of the fire prevention device.
- the sixth fire prevention device also includes: a first fusible member 640 and a first elastic member 650; the valve body 620 includes opposite first and second ends, The first end is close to the first narrowing part 6102, and the second end is close to the second narrowing part 6103; the housing 10 is provided with a fixing part 6104 close to the first narrowing part 6102.
- the first end of the valve body 620 is provided with a first groove body 6201, and the first elastic member 650 is at least partially located in the first groove body 6201; one end of the first elastic member 650 is connected to the first groove body 6201; The bottom of a groove body 6201 is in contact, and the other end of the first elastic member 650 is in contact with the end surface of the fixed part 6104; the first fusible component 640 is provided at the first end of the valve body 620 , and is engaged with the fixed portion 6104 to support the valve body 620 in the first position; the first fusible member 640 melts, and the first elastic member 650 drives the valve body 620 to slide to In the second position, the second end of the valve body 620 is engaged with the second narrowing portion 6103, and the fluid channel 6101 is in a closed state.
- the sixth fire prevention device further includes a first fusible member 640 and a first elastic member 650 .
- the first fusible component 640 may be made of a material with a lower melting point, such as PP, PVC and other materials.
- the first elastic member 650 can be a metal spring such as iron, copper, or alloy, or a soft rubber that can store elastic potential energy, such as silicone or rubber.
- the valve body 620 includes opposite first and second ends, the first end is close to the first narrowing portion 6102 , and the second end is close to the second narrowing portion 6103 .
- the housing 10 is provided with a fixing portion 6104 close to the first narrowing portion 6102.
- the fixing portion 6104 and the housing 10 can be an integral structure; they can also be made separately, and the fixing portion 6104 is bonded, welded or snap-fitted with the housing. 10 Realize assembly.
- the first elastic member 650 provides driving force for the valve body 620.
- the first end of the valve body 620 is provided with a first groove body 6201, and the first elastic member 650 is at least partially located in the first groove body 6201.
- the first groove body 6201 may be formed with the first end of the valve body 620 by opening a hole, or may be integrally formed by injection molding. At least part of the first elastic member 650 In the first groove body 6201, there is a part that extends out of the first groove body 6201. One end of the first elastic member 650 is in contact with the bottom of the first groove body 6201, and the other end of the first elastic member 650 is in contact with the fixed part. The end surface of 6104 close to the valve body 620 is in contact.
- the first groove body 6201 By arranging the first groove body 6201 at the first end of the valve body 620, an installation space can be provided for the first elastic member 650, and a certain limiting effect can be exerted on the first elastic member 650, so that the first elastic member 650 is less likely to deflect. , jamming problem and improve the stability of the fire protection device.
- the first fusible component 640 When a fire does not occur (the temperature is low), the first fusible component 640 is disposed at the first end of the valve body 620 and is engaged with the fixed portion 6104 to support the valve body 620 in the first position and the fluid channel 6101 is open. state.
- the first fusible component 640 can be a hook, and the hook is engaged with the end surface of the fixing portion 6104 on the side facing away from the valve body 620, thereby maintaining the valve body 620 in the first position.
- the first fusible component 640 melts, the valve body 620 loses the restraint of the first fusible component 640, and slides to the second position driven by the first elastic member 650.
- the valve body 620 The second end of the fluid channel 6103 is engaged with the second narrowing portion 6103, and the fluid channel 6101 is in a closed state, so that oxygen cannot continue to be transmitted, thus preventing oxygen from continuously leaking out and causing the fire to spread.
- a first mounting shaft 6202 is provided in the first tank 6201, and the first mounting shaft 6202 is coaxially arranged with the first tank 6201;
- the first elastic member 650 is sleeved on the first mounting shaft 6202, and the first fusible component 640 is connected to the first mounting shaft 6202.
- the first elastic member 650 is embedded in the first groove body 6201, and a first installation shaft 6202 is provided in the first groove body 6201.
- the first installation shaft 6202 and the first A tank 6201 is arranged coaxially.
- One end of the first installation shaft 6202 is connected to the bottom of the first tank 6201.
- the other end of the first installation shaft 6202 is connected to the first fusible member 640.
- the first installation shaft 6202 is connected to the first fusible member 640.
- a fusible member 640 can be connected by bonding, snapping or other methods.
- the first elastic member 650 is sleeved on the first mounting shaft 6202.
- the first elastic member 650 will move along the first mounting shaft 6202 and the first groove body.
- the directional deformation of 6201 in the direction of the common axis makes it less likely to cause deflection and jamming, further improving the stability of the fire protection device.
- the second end of the valve body 620 is provided with a first seal 6203, and the first seal 6203 at least partially wraps the second end; in the valve When the body 620 is in the second position, the first seal 6203 is engaged with the second narrowing portion 6103, and the fluid channel 6101 is in a closed state.
- the second end of the valve body 620 is used to communicate with the second narrowing portion. 6103 is connected, and a first seal 6203 is provided at the second end of the valve body 620.
- the first seal 6203 can be made of silicone, rubber or other materials, which can achieve a good sealing effect.
- the first sealing member 6203 at least partially wraps the second end, which can prevent the valve body 620 from directly contacting the second narrowing portion 6103 and improve the sealing effect.
- the fire protection device further includes: a second fusible member 660 and a second elastic member 670;
- the valve body 620 includes opposite first ends and second ends, so The first end is close to the first narrowing part 6102, and the second end is close to the second narrowing part 6103;
- the second end of the valve body 620 is provided with a second groove 6204, and the second end is close to the second narrowing part 6103.
- the elastic member 670 is at least partially located in the second groove body 6204; one end of the second elastic member 670 is in contact with the bottom of the second groove body 6204, and the other end of the second elastic member 670 is in contact with the second groove body 6204.
- the housing 10 is in contact; the second fusible member 660 is provided on the first narrowing portion 6102 and is engaged with the first narrowing portion 6102.
- the second fusible member 660 is provided with a Through the through hole of the fluid; the first end of the valve body 620 abuts the second fusible member 660 to support the valve body 620 in the first position; the second fusible member 660 melts , the second elastic member 670 drives the valve body 620 to slide to the second position, the first end of the valve body 620 is engaged with the first narrowing portion 6102, and the fluid channel 6101 is in a closed state .
- the fire prevention device further includes a second fusible member 660 and a second elastic member 670 .
- the second fusible component 660 may be made of a material with a lower melting point, such as PP, PVC and other materials.
- the second elastic member 670 can be a metal spring such as iron, copper, or alloy, or a soft rubber that can store elastic potential energy, such as silicone or rubber.
- the valve body 620 includes opposite first and second ends, the first end is close to the first narrowing portion 6102 , and the second end is close to the second narrowing portion 6103 .
- the second elastic member 670 provides driving force for the valve body 620.
- the second end of the valve body 620 is provided with a second groove body 6204, and the second elastic member 670 is at least partially located in the second groove body 6204.
- the second groove body 6204 can be formed by opening a hole, or can be formed by integral injection molding.
- the second elastic member 670 is at least partially located in the second groove body 6204, and partially extends out of the second groove body 6204.
- One end of the second elastic member 670 is in contact with the bottom of the second groove body 6204.
- the other end of 670 is in contact with the housing 10 .
- the second fusible component 660 is disposed on the first narrowing portion 6102 and is engaged with the first narrowing portion 6102, A snap-in structure can be provided on the second fusible member 660 or the first narrowed portion 6102 to realize the snap-in connection between the second fusible member 660 and the first narrowed portion 6102.
- a through hole for passing fluid can be provided on the second fusible member 660, and the size of the through hole can be selected according to actual needs. .
- the first end of the valve body 620 is in contact with the second fusible member 660. Under the support of the second fusible member 660, the valve body 620 is in the first position, and the fluid channel 6101 is on.
- the second fusible component 660 melts, the valve body 620 loses the restraint of the second fusible component 660, and the second elastic member 670 drives the valve body 620 to slide to the second position.
- the first end of the body 620 is joined to the first narrowing portion 6102, and the fluid channel 6101 is in a closed state, so that oxygen cannot continue to be transmitted to avoid continued leakage of oxygen and the spread of the fire.
- a second installation shaft 6205 is provided in the second tank 6204, and the second installation shaft 6205 is coaxially arranged with the second tank 6204;
- the second elastic member 670 is sleeved on the second mounting shaft 6205.
- the second elastic member 670 is embedded in the second groove body 6204, and a second installation shaft 6205 is provided in the second groove body 6204.
- the second installation shaft 6205 and the third The two tank bodies 6204 are coaxially arranged, and one end of the second installation shaft 6205 is connected to the bottom of the second tank body 6204.
- the second elastic member 670 is sleeved on the second installation shaft 6205. Under the common limiting action of the second installation shaft 6205 and the second groove body 6204, the second elastic member 670 will move along the second installation shaft 6205 and the second groove body.
- the directional deformation of 6204 in the direction of the common axis makes it less prone to deflection and jamming problems, further improving the stability of the fire protection device.
- the first end of the valve body 620 is provided with a second seal 6206, and the second seal 6206 at least partially wraps the first end; in the valve When the body 620 is in the second position, the second seal 6206 is engaged with the first narrowing portion 6102, and the fluid channel 6101 is in a closed state.
- the first end of the valve body 620 is used to engage with the first narrowing portion 6102, and a second seal 6206 is provided at the first end of the valve body 620.
- the second seal Part 6206 can be made of silicone, rubber and other materials, which can achieve a good sealing effect.
- the second sealing member 6206 at least partially wraps the first end, which can prevent the valve body 620 from directly contacting the first narrowing portion 6102 and improve the sealing effect.
- the first narrowing portion 6102 is provided with a first positioning structure
- the second fusible member 660 is provided with a second positioning structure
- the first positioning structure and The second positioning structure is positioned and matched.
- the first narrowing portion 6102 is provided with a first positioning structure
- the second fusible member 660 is provided with a second positioning structure.
- the first positioning structure and the second positioning structure are used. By interacting with each other, stable engagement between the second fusible component 660 and the first narrowing portion 6102 can be achieved.
- the first positioning structure may be a stepped structure
- the second positioning structure may be a stepped structure complementary to the first positioning structure.
- the first positioning structure may also be a groove or boss structure, and correspondingly, the second positioning structure may be a boss or groove structure.
- the first narrowing portion 6102 is provided with a first positioning structure
- the second seal 6206 is provided with a third positioning structure
- the first positioning structure and the The third positioning structure is positioned and matched.
- the first narrowing portion 6102 is provided with a first positioning structure
- the second seal 6206 is provided with a third positioning structure.
- the first positioning structure may be a stepped structure
- the third positioning structure may be a stepped structure complementary to the first positioning structure.
- the first positioning structure may also be a groove or boss structure, and correspondingly, the third positioning structure may be a boss or groove structure.
- the outer wall of the valve body 620 is provided with at least one positioning rib 6207; the inner wall of the fluid channel 6101 is provided with at least one positioning groove 6105, and the positioning rib 6207 is in sliding fit with the positioning groove 6105.
- the valve body 620 is slidably connected to the inner wall of the fluid channel 6101 , and the outer side wall of the valve body 620 is opposite to the inner wall of the fluid channel 6101 .
- At least one positioning rib 6207 is provided on the outer wall of the valve body 620
- at least one positioning groove 6105 is provided on the inner wall of the fluid channel 6101 .
- the extension direction of the positioning groove 6105 is consistent with the sliding direction of the valve body 620 .
- the positioning ribs 6207 are embedded in the positioning grooves 6105.
- the sliding cooperation between the positioning ribs 6207 and the positioning grooves 6105 can improve the stability of the sliding movement of the valve body 620 and avoid jamming. , the problem of deflection.
- the number of positioning ribs 6207 matches the number of positioning grooves 6105.
- two positioning ribs are symmetrically provided on the outer wall of the valve body 620.
- Position ribs 6207 correspondingly, two positioning grooves 6105 are symmetrically provided on the inner wall of the fluid channel 6101, which further improves the stability of the valve body 620 when sliding.
- the embodiment of the present disclosure also discloses a sixth ventilation treatment device, including a sixth fire prevention device.
- the sixth type of ventilation therapy equipment includes a control device, an oxygen therapy device, and a gas pipeline.
- the control device is used to control the oxygen supply, working time, etc. of the oxygen therapy device.
- the control device can be an electronic device or an electronic device. components, such as integrated circuits or chips.
- the electronic device may be a terminal or other devices other than the terminal.
- the electronic device may be a mobile phone, a tablet computer, a notebook computer, a palmtop computer, a mobile Internet device, a robot, a wearable device, etc., which are not specifically limited in the embodiments of this disclosure.
- the sixth fire protection device includes: a housing 10 and a valve body 620; the housing 10 has a fluid channel 6101, and the fluid channel 6101 is provided with a first narrowing portion 6102 and a second narrowing portion 6103.
- the valve body 620 is disposed in the fluid channel 6101; the valve body 620 is slidingly connected to the inner wall of the fluid channel 6101; the outer wall of the valve body 620 is provided with at least one guide portion 630; the guide portion 630 is in sliding fit with the inner wall of the fluid channel 6101; the valve body 620 has a first position and a second position relative to the fluid channel 6101; when the valve body 620 is in the first position, the valve body 620 is in clearance fit with the first narrowing portion 6102 and the second narrowing portion 6103 respectively, and the fluid channel 6101 is in the first position.
- the valve body 620 Open state; when the valve body 620 is in the second position, the valve body 620 is engaged with the first narrowing portion 6102 and/or the second narrowing portion 6103, and the fluid channel 6101 is in a closed state, thereby cutting off the oxygen passage and preventing continued leakage of oxygen. The leak caused the fire to spread.
- the guide portion 630 By providing the guide portion 630 on the outer wall of the valve body 620, the guide portion 630 can play a limiting role when the valve body 620 slides relative to the fluid channel 6101, avoiding the problems of deflection and jamming of the valve body 620, and ensuring The valve body 620 can accurately engage with the first narrowing portion 6102 and/or the second narrowing portion 6103, thereby improving the stability of the fire protection device.
- a seventh fire protection device including: a housing 10, a base 720, a valve body 730, an elastic member 740 and a fusible ferrule 750;
- the housing 10 has a fluid Channel 7101, the fluid channel 7101 is used to communicate with the oxygen therapy device or the pipeline at the patient end;
- the base 720 is positioned in the fluid channel 7101, the valve body 730 is connected to the base 720, and the elastic member 740 is provided between the base 720 and the valve body 730;
- a sealing portion 7301 is provided at one end of the valve body 730 away from the base 720, and at least one narrowing portion 7102 is provided in the fluid channel 7101.
- the sealing portion 7301 and the narrowing portion 7102 are arranged oppositely; along the elastic deformation direction of the elastic member 740, the fusibility
- the ferrule 750 is nested in the base 720 and the spring
- the elastic member 740 and at least part of the valve body 730 are formed as a whole to compress the elastic member 740 so that there is a gap for fluid to pass between the sealing portion 7301 and the narrowing portion 7102; after the fusible ferrule 750 is melted, the elastic member 740 is The member 740 releases at least part of its elastic potential energy and pushes against the valve body 730 , causing the sealing portion 7301 to engage with the narrowing portion 7102 to block the fluid channel 7101 .
- the housing 10 as the main frame of the fire protection device, can be made of materials that are not prone to chemical reactions with oxygen and are resistant to high temperatures, such as stainless steel or ceramic materials; it can also be made of fire-proof and flame-retardant materials. Material.
- the housing 10 can adopt an integrated structure or a split structure.
- the housing 10 includes a first housing and a second housing. The first housing and the second housing are buckled together to form a complete structure.
- the assembly gap between the first housing and the second housing can be filled with a sealing structure, such as silicone, rubber, etc.
- the fluid channel 7101 is used to communicate with the oxygen therapy device or the pipeline at the patient end. Since the oxygen transmission process needs to pass through the fluid channel 7101, the oxygen passage can be blocked by blocking the fluid channel 7101. Minimize the spread of fire caused by oxygen curse.
- the base 720 is positioned in the fluid channel 7101.
- the base 720 and the inner wall of the fluid channel 7101 can be fixed by bonding, snapping, etc., for example, a slot is provided on the inner wall of the fluid channel 7101, and the edge of the base 720 is embedded in the slot. fixed.
- the base 720 is fixed relative to the housing 10, and the valve body 730 is connected to the base 720.
- An embedding groove for positioning the valve body 730 is provided on the end face of the base 720 facing the valve body 730, and the end of the valve body 730 is inserted into the embedding groove.
- the valve body 730 Positioned and assembled, the valve body 730 can move within the fluid channel 7101.
- An elastic member 740 is provided between the valve body 730 and the base 720.
- Both ends of the elastic member 740 are in contact with the valve body 730 and the base 720 respectively, and can provide driving force for the movement of the valve body 730.
- the elastic member 740 can be a metal spring such as iron, copper, or alloy, or a soft rubber that can store elastic potential energy, such as silicone or rubber.
- the valve body 730 is provided with a sealing portion 7301 at one end away from the base 720, and a narrowing portion 7102 is provided in the fluid channel 7101.
- the inner diameters of the fluid channel 7101 at both ends of the narrowing portion 7102 are different, and the sealing portion 7301 and the narrowing portion 7102 are oppositely arranged and have the same shape. Matching, when the valve body 730 drives the sealing portion 7301 to move to the narrowing portion 7102, the fluid channel 7101 can be blocked by the snap-fitting seal between the sealing portion 7301 and the narrowing portion 7102.
- the sealing part 7301 can be made of flexible sealing material, such as silicone, rubber, etc.; the sealing part 7301 can also be made of a rigid material, and a flexible sealing ring is only provided at the position of the sealing part 7301 close to the narrowing part 7102.
- the flexible sealing ring is embedded in the gap between the sealing portion 7301 and the narrowed portion 7102 to achieve sealing.
- the fusible ferrule 750 is made of a material that is easy to melt or burn when heated. It can be an elastic material, such as silicone, rubber, etc., or a nylon thread or other material.
- the elastic member 740 will undergo elastic deformation when compressed by the base 720 and the valve body 730. Along the direction of elastic deformation, the fusible ferrule 750 is nested in the base 720, the elastic member 740 and at least part of the valve body 730. Overall, the fusible ferrule 750 can constrain the base 720, the elastic member 740 and the valve body 730. By shortening the distance between the base 720 and the valve body 730, the elastic member 740 is in a compressed state and accumulates elastic potential energy.
- the overall length of the base 720, the elastic member 740 and the valve body 730 is short, and the sealing portion 7301 and the narrowing portion of the valve body 730 can be A gap is formed between 7102 for fluid to pass through, and oxygen can circulate normally to ensure the normal operation of the equipment.
- the fire protection device When a fire occurs, the fire protection device is attacked by high temperature, and the fusible ferrule 750 is melted due to heat and loses its restraining effect.
- the elastic member 740 releases at least part of the elastic potential energy. Since the base 720 is in a fixed state relative to the housing 10, the elastic member 740 is The valve body 730 will be pushed to be displaced relative to the base 720, so that the sealing portion 7301 moves to the narrowing portion 7102 and engages with the narrowing portion 7102, thereby blocking the fluid channel 7101 and cutting off the air path.
- the base 720, the valve body 730, the elastic member 740 and the fusible ferrule 750 together form the valve body 730 triggering system.
- the fusible ferrule 750 does not melt, the fusible ferrule 750
- the elastic member 740 releases at least part of the elastic potential energy and pushes against the valve body 730, causing the sealing portion 7301 to engage with the narrowing portion 7102, thereby blocking the fluid channel 7101.
- the fusible ferrule 750 itself is prone to fusing when heated, the fusing speed is further accelerated under the elastic force of the elastic member 740, thereby increasing the triggering speed of the valve body 730 and reducing the risk of fire spreading due to untimely triggering. risks, thus improving the safety factor of fire protection devices.
- the seventh fire protection device is used in high-flow oxygen therapy treatment. It has few internal parts, a simple structure, simplifies the assembly method, and has stable performance and can be used in In the event of a fire, cut off the air path promptly.
- the valve body 730 further includes a bearing portion 7302 connected to the base 720 , and a sealing portion 7301 is provided at an end of the bearing portion 7302 away from the base 720 ; the peripheral side of the bearing portion 7302 A protruding first support structure 73021 is provided.
- the elastic member 740 is sleeved on the bearing portion 7302. One end of the elastic member 740 is in contact with the base 720, and the other end of the elastic member 740 is in contact with the first support structure 73021. Support structure 73021 abuts.
- the valve body 730 includes a bearing part 7302 and a sealing part 7301.
- the bearing part 7302 is connected to the base 720.
- the bearing part 7302 can adopt a plate-shaped or columnar structure, and the base 720 faces the bearing part 7302.
- An embedding groove is provided on one end surface, and the end of the bearing portion 7302 is inserted into the embedding groove to achieve positioning and assembly.
- the sealing portion 7301 is provided at an end of the bearing portion 7302 away from the base 720 , and an end of the bearing portion 7302 close to the base 720 is in contact with the base 720 .
- a raised first support structure 73021 is provided on the peripheral side of the load-bearing part 7302.
- the first support structure 73021 may be a boss, a flange, or other structures.
- the first support structure 73021 is disposed close to the sealing part 7301.
- the first support structure 73021 is connected with the load-bearing part 7302.
- Part 7302 can adopt an integrated structure and has good structural strength and stability.
- the first support structure 73021 can also be manufactured separately from the bearing portion 7302, and then assembled together by bonding or welding.
- the elastic member 740 can be a metal spring.
- the elastic member 740 is sleeved on the bearing portion 7302. Under the constraints of the fusible ferrule 750, one end of the elastic member 740 abuts the base 720 and the other end abuts the first support structure 73021. connected, in a compressed state.
- the elastic member 740 By placing the elastic member 740 on the bearing portion 7302, the space inside the fluid channel 7101 is saved, and the assembly stability of the elastic member 740 is ensured.
- the bearing portion 7302 is provided with a hollow structure 73022 along its length direction, and the hollow structure 3022 is used for fluid to pass through.
- the bearing portion 7302 is provided with a hollow structure 73022 along its length direction, and the hollow structure 73022 can be a hollow groove, a hollow hole, or other structures.
- the hollow structure 73022 can reduce the air resistance and avoid affecting the oxygen flow.
- the valve body 730 also includes a connecting portion 7303, which is provided between the bearing portion 7302 and the sealing portion 7301, and is connected to the bearing portion 7302 and the sealing portion 7301 respectively; connection The portion 7303 is provided with a snap-in structure 73031, which is used to snap-in and position the fusible ferrule 750.
- the bearing part 7302 and the sealing part 7301 are connected through the connecting part 7303.
- the bearing part 7302, the sealing part 7301 and the connecting part 7303 can be an integrated structure or a split structure.
- the connecting part 7303 is provided with a snap-in structure 73031.
- the snap-in structure 73031 can be a slot, a hook, etc., when the fusible ferrule 750 is embedded in the whole body composed of the base 720, the elastic member 740 and at least part of the valve body 730. When installed, the snap-in structure 73031 provides the fusible ferrule 750 Installing in a fixed position can avoid the problem of the fusible ferrule 750 slipping and causing the constraint to fail.
- the peripheral side of the sealing portion 7301 extends to form a convex guide portion 73011 , and the guide portion 73011 is in sliding fit with the inner wall of the fluid channel 7101 .
- the sealing portion 7301 is provided with a protruding guide portion 73011.
- the guide portion 73011 can be a slide, a boss, or other structures, and the guide portion 73011 can slide with the inner wall of the fluid channel 7101. , plays the role of guiding and positioning, avoiding the problem of jamming and deflection of the valve body 730 when moving, and improving the stability of the triggering of the valve body 730.
- the base 720 is provided with a ventilation hole 7201; the edge of the base 720 is provided with at least one first positioning groove 7202, and the first positioning groove 7202 is used to snap and position the fusible ferrule. 750.
- the base 720 is provided with a vent hole 7201.
- the base 720 can be a circular base 720, and at least one first positioning groove 7202 is provided on the edge of the base 720.
- the fusible ferrule 750 is wound around the base 720, the first positioning groove 7202 is a fusible ferrule. 750 provides a fixed position for installation, and the fusible ferrule 750 is embedded in the first positioning groove 7202, which can avoid the problem of the fusible ferrule 750 slipping and causing the constraint failure.
- the valve body 730 includes a first valve body 7304 and a second valve body 7305.
- the first valve body 7304 and the second valve body 7305 are respectively located on both sides of the base 720, and are respectively Connected to the base 720;
- the elastic member 740 includes a first elastic member 7401 and a second elastic member 7402.
- the first elastic member 7401 is provided between the base 720 and the first valve body 7304, and the second elastic member 7402 is provided between the base 720 and the first valve body 7304.
- a first narrowing part and a second narrowing part are provided in the fluid channel 7101, and a first sealing part 73041 is provided at one end of the first valve body 7304 away from the base 720, and the first sealing part 73041 is connected to the second narrowing part.
- a narrowing portion is provided oppositely, and a second sealing portion 73051 is provided at one end of the second valve body 7305 away from the base 720.
- the second sealing portion 73051 is provided oppositely to the second narrowing portion; along the first elastic member 7401 and the second elastic member 7402 elastic deformation direction, the fusible ferrule 750 is nested in the base 720, the first elastic member 7401, the second elastic member 7402, the first valve body 7304 and the second valve body 7305 as a whole to compress the third valve body.
- An elastic member 7401 and a second elastic member 7402 allow a gap for fluid to pass between the first sealing part 73041 and the first narrowing part and the second sealing part 73051 and the second narrowing part; in the fusible ferrule After 750 is blown, the first elastic member 7401 releases at least part of the elastic potential energy and pushes against the first valve body 7304, causing the first sealing portion 73041 to engage with the first narrowing portion.
- the second elastic member 7402 releases at least part of the elastic potential energy and pushes against the second valve body 7305, causing the second sealing portion 73051 to engage with the first narrowing portion.
- the second narrowing part snaps to block the fluid channel 7101.
- the valve body 730 includes a first valve body 7304 and a second valve body 7305.
- the first valve body 7304 and the second valve body 7305 The structures may be the same.
- the base 720 is positioned in the middle of the fluid channel 7101.
- the base 720 and the inner wall of the fluid channel 7101 may be fixed by bonding or snapping.
- the housing 10 includes a first housing and a second housing. The first housing and the second housing are engaged, and the base 720 can be embedded in the assembly gap between the first housing and the second housing to achieve snap-fitting.
- the first valve body 7304 and the second valve body 7305 are respectively located on both sides of the base 720 and are connected to the base 720 respectively. That is, the first valve body 7304 and the second valve body 7305 can move in the fluid channel 7101.
- the first elastic member 7401 is disposed between the base 720 and the first valve body 7304.
- the second elastic member 7402 is disposed between the base 720 and the second valve body 7305.
- the first elastic member 7401 and the second elastic member 7402 may be iron. , copper, alloy and other metal springs, or silicone, rubber and other soft rubber that can store elastic potential energy.
- a first narrowing part and a second narrowing part are provided in the fluid channel 7101.
- the first narrowing part and the second narrowing part are respectively close to the openings at both ends of the fluid channel 7101.
- the inner diameter of the fluid channel 7101 between them is larger, and the inner diameter of the fluid channels 7101 on both sides is smaller.
- the first valve body 7304 is provided with a first sealing portion 73041 at one end away from the base 720.
- the first sealing portion 73041 is disposed opposite to the first narrowing portion.
- the second valve body 7305 is provided with a second sealing portion 73051 at one end away from the base 720.
- the second sealing portion 73051 is arranged opposite to the second narrowing portion.
- the fluid channel 7101 can be blocked by utilizing the snap sealing between the first sealing portion 73041 and the first narrowing portion.
- the blocking of the fluid channel 7101 can also be achieved by utilizing the engagement and sealing between the second sealing portion 73051 and the second narrowing portion. break. Utilizing the double valve body 730 structure, the air path blocking function can be realized at both ends of the fluid channel 7101, which greatly improves the reliability of the fire protection device.
- the fusible ferrule 750 is nested in the base 720, the first elastic member 7401, the second elastic member 7402, the first valve body 7304 and the second valve body 7305, and can control the base 720, the first elastic member 7401, the second elastic member 7402, the first valve body 7304 and the second valve body 7305 realize constraint.
- the fire protection device When a fire occurs, the fire protection device is attacked by high temperature, and the fusible ferrule 750 is melted due to heat and loses its restraining effect.
- the first elastic member 7401 and the second elastic member 7402 release at least part of the elastic potential energy.
- the first elastic member 7401 pushes against the first valve body 7304, causing the first sealing portion 73041 to engage with the first narrowing portion;
- the second elastic member 7402 releases at least part of the elastic potential energy and pushes against the second valve body 7305, allowing the second
- the sealing portion 73051 is engaged with the second narrowing portion, thereby blocking the fluid channel 7101 and cutting off the gas path.
- the first valve body 7304 includes a first installation sleeve 73042
- the second valve body 7305 includes a second installation sleeve 73052
- the first sealing portion 73041 is provided on the first installation sleeve.
- the barrel 73042 is at one end away from the base 720
- the second sealing portion 73051 is provided at the end of the second installation sleeve 73052 away from the base 720;
- the base 720 is provided with a protruding first positioning portion 7203 toward the first valve body 7304, and the base 720 is toward the first valve body 7304.
- the second valve body 7305 is provided with a raised second positioning portion 7204; the first positioning portion 7203 is at least partially embedded in the first mounting sleeve 73042, and the second positioning portion 7204 is at least partially embedded in the second mounting sleeve 73052; A protruding second support structure 73043 is provided on the peripheral side of an installation sleeve 73042.
- the first elastic member 7401 is sleeved on the outer wall of the first installation sleeve 73042. One end of the first elastic member 7401 is in contact with the base 720.
- the other end of the first elastic member 7401 is in contact with the second support structure 73043; a protruding third support structure 73053 is provided on the peripheral side of the second installation sleeve 73052, and the second elastic member 7402 is sleeved on the second installation sleeve On the outer side wall of 73052, one end of the second elastic member 7402 is in contact with the base 720, and the other end of the second elastic member 7402 is in contact with the third support structure 73053.
- the first valve body 7304 includes a first mounting sleeve 73042 and a first sealing portion 73041.
- the first sealing portion 73041 is provided at an end of the first mounting sleeve 73042 away from the base 720.
- the second valve body 7305 includes a second mounting sleeve 73052 and a second sealing portion 73051.
- the second sealing portion 73051 is provided at one end of the second mounting sleeve 73052 away from the base 720.
- the first installation sleeve 73042 and the second installation sleeve 73052 are respectively located on both sides of the base 720 , and the openings of the first installation sleeve 73042 and the second installation sleeve 73052 both face the base 720 .
- the base 720 is provided with a protruding first positioning portion 7203 toward the first valve body 7304, and the base 720 is provided with a protruding second positioning portion 7204 toward the second valve body 7305.
- the shape of the first positioning part 7203 and the second positioning part 7204 can be a cylinder, a prism, etc.
- the first positioning part 7203 is embedded in the first installation sleeve 73042, and the first positioning part 7203 slides with the first installation sleeve 73042 Fitting; the second positioning part 7204 is embedded in the second installation sleeve 73052, and the second positioning part 7204 and the second installation sleeve 73052 are in sliding fit.
- the cooperation between the positioning part and the installation sleeve can improve the stability of the assembly between the first valve body 7304 and the second valve body 7305 and the base 720.
- first valve body 7304 and the second valve body 7305 slide relative to the base 720
- problems such as deflection and jamming are less likely to occur.
- a protruding second support structure 73043 is provided on the peripheral side of the first mounting sleeve 73042.
- the second support structure The structure 73043 may be a boss, a flange, or other structures.
- the first elastic member 7401 may be a metal spring.
- the first elastic member 7401 is sleeved on the outer wall of the first installation sleeve 73042. One end of the first elastic member 7401 is connected to the base 720 The other end of the first elastic member 7401 is in contact with the second support structure 73043.
- a raised third support structure 73053 is provided on the peripheral side of the second installation sleeve 73052.
- the third support structure 73053 can also be a boss, a flange, or other structures, and the second elastic member 7402 can be a metal spring.
- the two elastic members 7402 are sleeved on the outer wall of the second installation sleeve 73052. One end of the second elastic member 7402 is in contact with the base 720, and the other end of the second elastic member 7402 is in contact with the third support structure 73053.
- a raised flange 7205 is provided on the peripheral side of the base 720 , and the two opposite end surfaces of the flange 7205 extend toward the first valve body 7304 and the second valve body 7305 respectively.
- first A first limiting space is formed between the limiting part 7206, the third limiting part 73044 and the outer wall of the first mounting sleeve 73042, and the first elastic member 7401 is embedded in the first limiting space;
- the second limiting part A second limiting space is formed between 7207, the fourth limiting portion 73054, and the outer wall of the second mounting sleeve 73052, and the second elastic member 7402 is embedded in the second limiting space.
- the base 720 can be positioned in the fluid channel 7101 through the flange 7205.
- the inner wall of the fluid channel 7101 is provided with a slot that matches the flange 7205.
- the flange 7205 is embedded in the fluid channel 7101. It is disposed in the card slot to fix the base 720 .
- the flange 7205 has two opposite end surfaces, and the two end surfaces respectively extend toward the first valve body 7304 and the second valve body 7305 to form a first limiting portion 7206 and a second limiting portion 7207.
- the first limiting portion 7206 The shape of the second limiting portion 7207 can be a cylinder, a prism, etc.
- the second support structure 73043 on the circumferential side of the first mounting sleeve 73042 extends toward the base 720 to form a third limiting portion 73044, and the third supporting structure 73053 on the circumferential side of the second mounting sleeve 73052 extends toward the base 720 to form a fourth limiting portion. 73054.
- the first limiting part 7206 and the third limiting part 73044 are arranged oppositely and form a first limiting space with the outer wall of the first mounting sleeve 73042.
- the first limiting space is used to accommodate the first elastic Part 7401, under the limiting action of the first limiting part 7206 and the third limiting part 73044, the first elastic part 7401 can still maintain a relatively stable state when elastic deformation occurs, and is not prone to deflection or jamming. question.
- the second limiting part 7207 and the fourth limiting part 73054 are arranged opposite to each other and are connected with the second mounting part.
- a second limiting space is formed between the outer side walls of the sleeve 73052. The second limiting space is used to accommodate the second elastic member 7402. Under the limiting action of the second limiting part 7207 and the fourth limiting part 73054, When the second elastic member 7402 undergoes elastic deformation, it can still maintain a relatively stable state and is less prone to deflection and jamming problems.
- the first sealing part 73041 is provided with a second positioning groove 73045
- the second sealing part 73051 is provided with a third positioning groove 73055
- the second positioning groove 73045 and the third positioning groove 73055 are used to engage and position the fusible ferrule 750 .
- the fusible ferrule 750 is nested in the base 720, the first elastic member 7401, the second elastic member 7402, the first valve body 7304 and the second valve body 7305.
- the fusible ferrule 750 is wound around the first sealing part 73041 and the second sealing part 73051, the second positioning groove 73045 and the third positioning groove 73055 can provide installation and fixation for the fusible ferrule 750 position, the fusible ferrule 750 is embedded in the second positioning groove 73045 and the third positioning groove 73055, which can avoid the problem of the fusible ferrule 750 slipping and causing the constraint failure.
- the embodiment of the present disclosure also discloses a seventh kind of ventilation treatment equipment, including a seventh kind of fire prevention device.
- the seventh type of ventilation therapy equipment includes a control device, an oxygen therapy device, and a gas pipeline.
- the control device is used to control the oxygen supply amount, working time, etc. of the oxygen therapy device.
- the control device can be an electronic device or an electronic device.
- the electronic device may be a terminal or other devices other than the terminal.
- the electronic device may be a mobile phone, a tablet computer, a notebook computer, a palmtop computer, a mobile Internet device, a robot, a wearable device, etc., which are not specifically limited in the embodiments of this disclosure.
- the seventh type of ventilation therapy equipment adopts the seventh type of fire prevention device.
- the fire prevention device the base 720, the valve body 730, the elastic member 740 and the fusible ferrule 750 together form the valve body 730 triggering system.
- the elastic member 740 When the fusible ferrule 750 does not melt, the elastic member 740 is in a compressed state under the constraints of the fusible ferrule 750 , and there is a fluid supply space between the sealing portion 7301 of the valve body 730 and the narrowing portion 7102 of the fluid channel 7101 Through the gap, oxygen can pass normally; after the fusible ferrule 750 is melted, the elastic member 740 releases at least part of the elastic potential energy and pushes against the valve body 730, causing the sealing portion 7301 to engage with the narrowing portion 7102, thereby blocking the fluid.
- the fusible ferrule 750 itself is prone to fusing when heated, the fusing speed is further accelerated under the elastic force of the elastic member 740, thereby increasing the triggering speed of the valve body 730 and reducing the risk of fire spreading due to untimely triggering. risks, thus improving the safety factor of fire protection devices.
- the fire prevention device includes: a housing 10, an inner housing 820, a valve body 830 and an elastic member 840; the housing 10 has a fluid channel, and the fluid channel It is used to communicate with the pipeline of the oxygen therapy device or the patient; the inner shell 820 is arranged in the fluid channel and is sealingly connected to the inner wall of the fluid channel.
- the inner shell 820 is provided with a through hole 8201 for the fluid to pass; the valve body 830 is connected to the fluid channel.
- the inner wall is slidingly connected and has a first position and a second position relative to the fluid channel; when in the first position, there is a gap for fluid to pass between the valve body 830 and the through hole 8201; when in the second position, the valve body 830 It abuts the peripheral side of the through hole 8201 so that the fluid channel is in a blocked state; the elastic member 840 is provided between the valve body 830 and the inner wall of the fluid channel; the inner walls at both ends of the fluid channel are respectively provided with at least one raised support portion 8100, one end of the valve body 830 is arranged opposite to the through hole 8201, and the other end of the valve body 830 is used to engage with the support part 8100 to support the valve body 830 in the first position, and the elastic member 840 is in a compressed state; in the support part 8100 After at least one of the valve body 830 is melted, the elastic member 840 releases at least part of the elastic potential energy to drive the valve body 830 to switch from the first position to the second position.
- the housing 10, as the main body frame of the fire protection device can be made of materials that are not prone to chemical reactions with oxygen and are resistant to high temperatures, such as stainless steel or ceramic materials; it can also be made of fire-proof and flame-retardant materials.
- the fluid channel is used to communicate with the oxygen therapy device or the pipeline at the patient end. Since oxygen needs to pass through the fluid channel during transmission, it can be blocked by blocking the fluid channel. Oxygen passage to minimize the spread of fire caused by oxygen blessing.
- the inner shell 820 is disposed in the fluid channel, and the inner shell 820 is preferably disposed in the middle position of the fluid channel.
- the outer wall of the inner shell 820 is sealingly connected to the inner wall of the fluid channel.
- the inner shell 820 and the housing 10 can be assembled by bonding, ultrasonic welding, etc., and the inner shell 820 itself is also provided with a through hole 8201.
- oxygen can only pass through the through hole 8201 and will not pass through the assembly gap between the inner shell 820 and the housing 10. Therefore, only the through hole 8201 on the inner shell 820 needs to be closed to achieve air path blocking.
- oxygen can be transmitted normally through the through hole 8201, and the shape of the through hole 8201 can be circular, elliptical, semicircular, etc.
- the valve body 830 is slidingly connected to the inner wall of the fluid channel.
- the valve body 830 has a first position and a second position relative to the fluid channel.
- When the valve body 830 is in the first position there is a gap between the valve body 830 and the through hole 8201 of the inner shell 820.
- the gap for fluid to pass through oxygen can be transmitted normally through the through hole 8201; valve body
- When 830 is in the second position the valve body 830 is in contact with the peripheral side of the through hole 8201, so that the fluid channel is in a blocked state.
- the cooperation of the valve body 830 and the through hole 8201 can achieve blocking of the fluid channel.
- the end of the valve body 830 used to contact the peripheral side of the through hole 8201 can be made of flexible sealing material, such as silicone, rubber, etc.; the valve body 830 can also be made of a rigid material, only when the valve body 830 is close to the through hole 8201 A flexible sealing ring is provided at one end.
- the sealing ring is embedded in the gap between the valve body 830 and the peripheral side of the through hole 8201 to achieve sealing.
- the elastic member 840 is disposed between the valve body 830 and the inner wall of the fluid channel, and is used to drive the valve body 830 to move from the first position to the second position.
- the elastic member 840 can be a metal spring such as iron, copper, or alloy, or a soft rubber that can store elastic potential energy, such as silicone or rubber.
- the inner walls at both ends of the fluid channel are provided with at least one raised support portion 8100.
- the support portion 8100 can be engaged with the other end of the valve body 830 so that the valve body 830 is positioned in the first position, ensuring that the fluid flow is maintained in the event of no fire.
- the support part 8100 can be made of materials with lower melting points, such as PP, PVC and other materials.
- the elastic member 840 When the valve body 830 is in the first position, the elastic member 840 will be squeezed by the inner wall of the fluid channel and the valve body 830, and is in a compressed state, accumulating elastic potential energy; when the support portion 8100 loses its engagement with the valve body 830, The force balance is broken, and the valve body 830 moves to the second position under the elastic force of the elastic member 840, and contacts the peripheral side of the through hole 8201 to block the air path.
- the valve body 830 may be triggered in the following ways: first, the support part 8100 melts, the support part 8100 loses its clamping effect on the valve body 830, and under the elastic force of the elastic member 840, the valve body 830 moves to the third position.
- the second position is in contact with the peripheral side of the through hole 8201 to block the fluid channel; the second position is that the end of the valve body 830 close to the support part 8100 is melted, and the end of the valve body 830 close to the support part 8100 can be made of a material with a lower melting point.
- the support part 8100 will also lose its clamping effect on the valve body 830.
- the valve body 830 moves to the third position.
- the second position is in contact with the peripheral side of the through hole 8201 to block the fluid channel;
- the third position is that the support part 8100 and the end of the valve body 830 close to the support part 8100 are melted at the same time, and the support part 8100 loses its clamping effect on the valve body 830, and the Blockage of fluid channels can be achieved.
- the trigger system composed of the support part 8100, the elastic member 840 and the valve body 830 can cause the valve body 830 to move to the first position in time when any one of the valve body 830 and the support part 8100 melts.
- the two positions are in contact with the peripheral side of the through hole 8201, thus blocking the air path, increasing the triggering speed of the valve body 830, reducing the risk of fire spreading due to untimely triggering, and thereby improving the safety factor of the fire prevention device.
- the fire protection device has a simple structure, is easy to assemble, and also reduces production costs. and installation costs.
- the support portion 8100 is provided on the inner wall of the fluid channel near the opening.
- the support portion 8100 and the inner wall of the fluid channel opening can be assembled by bonding or welding, or the support portion 8100 and the housing can be integrally formed.
- the support part 8100 is disposed on the inner wall of the fluid channel near the opening. Since fires usually occur outside the fire protection device, the opening of the fluid channel will be attacked by fire first.
- the support part 8100 is disposed on the inner wall of the fluid channel near the opening, so that the support part 8100
- the end of the valve body 830 close to the support portion 8100 will first be in a high temperature state and fuse, thereby improving the timeliness of the valve body 830 being triggered.
- the valve body 830 includes a snap-on part 8302 and a sealing part 8303.
- the snap-on part 8302 and the sealing part 8303 are of split structure, and the snap-on part 8302 and the sealing part 8303 are respectively connected with each other.
- the inner wall of the fluid channel is slidingly connected;
- the snap-in part 8302 is provided with a fusible part 8301, and the elastic member 840 is disposed between the snap-in part 8302 and the inner wall of the fluid channel; one end of the snap-in part 8302 is used to snap into place with the support part 8100.
- the other end of the clamping member 8302 is used to push against the sealing member 8303 so that the sealing member 8303 contacts the peripheral side of the through hole 8201; there is an assembly gap for fluid to pass between the clamping member 8302 and the sealing member 8303.
- the valve body 830 includes a clamping member 8302 and a sealing member 8303.
- the clamping member 8302 and the sealing member 8303 adopt a split structure with an assembly gap through which oxygen can pass, which can reduce the risk caused by the valve body 830. Air resistance to improve oxygen flux and comfort.
- the clamping member 8302 and the sealing member 8303 are respectively slidingly connected to the inner wall of the fluid channel. When one end of the clamping member 8302 is clamped with the support part 8100, the positioning and fixation of the clamping member 8302 can be realized, so that the clamping member 8302 is in a stationary state.
- the clamping component 8302 can achieve snap fit with the support part 8100 through structures such as hooks and round heads.
- the elastic member 840 is disposed between the clamping member 8302 and the inner wall of the fluid channel. Under the compression of the clamping member 8302 and the inner wall of the fluid channel, the elastic member 840 accumulates elastic potential energy; between the sealing member 8303 and the through hole 8201 of the inner shell 820 Clearance fit, when in use, oxygen can be transmitted normally through the gap between the seal 8303 and the through hole 8201 of the inner shell 820.
- the seal 8303 can be made of flexible sealing material, such as silicone, rubber, etc.; the seal 8303 can also be made of a rigid material, and a flexible sealing ring is only provided on the side of the seal 8303 close to the through hole 8201. When the seal 8303 and When the peripheral side of the through hole 8201 is in contact, the sealing ring is embedded in the gap between the sealing member 8303 and the peripheral side of the through hole 8201 to achieve sealing.
- the above-mentioned fusible part 8301 is provided on the clamping member 8302.
- the fusible part 8301 can be made of materials with a lower melting point, such as PP, PVC and other materials. It can also be made fusible through structural design, such as fusible.
- the part 8301 adopts a structure with a small diameter or thickness, which is prone to fusing.
- the clamping member 8302 can be broken from the fusible part 8301.
- the supporting part 8100 loses its clamping effect on the clamping part 8302, thereby releasing at least part of the elastic potential energy in the elastic part 840.
- the clamping part The other end of 8302 pushes against the seal 8303, so that the seal 8303 contacts the peripheral side of the through hole 8201 to block the fluid channel.
- a protruding first guide portion 83021 is provided at one end of the clamping member 8302 close to the seal 8303, and the first guide portion 83021 is slidably matched with the inner wall of the fluid channel; the elastic member 840 is sleeved on In the clamping member 8302, one end of the elastic member 840 is in contact with the inner wall of the fluid channel, and the other end of the elastic member 840 is in contact with the first guide part 83021; when the clamping member 8302 is engaged with the support part 8100, the elastic member 840 is clamped by the fluid channel.
- the inner wall and the first guide part 83021 are compressed; when the support part 8100 and/or the fusible part 8301 is in a molten state, the elastic member 840 releases at least part of the elastic potential energy, driving the sealing member 8303 to contact the peripheral side of the through hole 8201, so as to The fluid channel is blocked.
- the first guide portion 83021 can be a slide, a boss, or other structures.
- the number of the first guide portions 83021 can be determined according to the actual situation. Choose according to your needs.
- the first guide part 83021 may be made of the same material as the latch 8302, and may be made of a fire-retardant and wear-resistant material.
- the first guide part 83021 and the clamping member 8302 can adopt an integrated structure, which has good structural strength and stability.
- the first guide part 83021 can also be manufactured separately from the clamping member 8302, and then assembled together by bonding or welding.
- the first guide part 83021 has two functions: first, it can provide a stable support point for the elastic member 840; second, the first guide part 83021 can slide and cooperate with the inner wall of the fluid channel to play a guiding and positioning role to avoid jamming.
- the problem of jamming and deflection of the connector 8302 when moving is improved, which improves the stability of the triggering of the valve body 830.
- the elastic member 840 can be a metal spring, and the metal spring is sleeved on the clamping member 8302.
- the two ends of the elastic member 840 are respectively in contact with the first guide part 83021 and the inner wall of the fluid channel, and are in a compressed state to accumulate elastic potential energy.
- the support part 8100 and/or the fusible part 8301 is in a molten state, the support part 8100 loses its clamping effect on the clamping member 8302, and the elastic member 840 releases at least part of the elastic potential energy, driving the sealing member 8303 to contact the peripheral side of the through hole 8201. connection so that the fluid channel is blocked.
- the clamping member 8302 and the sealing member 8303 provide driving force, causing the sealing member 8303 to move quickly and abut against the peripheral side of the through hole 8201.
- the elastic member 840 is sleeved on the clamping member 8302, which not only saves the space inside the fluid channel, but also ensures the stability of the assembly of the elastic member 840.
- the fluid channel includes a main body 8101 and openings 8102 provided at both ends of the main body 8101, wherein the inner diameter of the opening 8102 is smaller than the inner diameter of the main body 8101; the connection between the main body 8101 and the opening 8102
- the shoulder 8103 is formed by narrowing; the support portion 8100 is provided on the inner wall of the opening 8102; one end of the elastic member 840 is in contact with the shoulder 8103, and the other end of the elastic member 840 is in contact with the first guide portion 83021.
- the fluid channel includes a main body 8101 and openings 8102 provided at both ends of the main body 8101.
- the opening 8102 is used to communicate with the pipeline at the patient end or the oxygen therapy device end.
- the inner diameter of the opening 8102 is smaller than that of the main body 8101.
- the inner diameter forms a structure with a thick middle and thin ends.
- the main body 8101 transitions from the middle to both ends, and narrows to form a shoulder 8103 at the connection with the opening 8102.
- the shoulder 8103 is used to support the elastic member 840.
- the support part 8100 is disposed on the inner wall of the opening 8102, and the seal 8303 is disposed inside the main body 8101.
- the seal 8303 is far away from the support part 8100 and is not easily affected by the high temperature of combustion, which is beneficial to improving the performance of the seal 8303 and improving the efficiency of the fire prevention device. stability.
- the latch 8302 is provided with a protruding second guide portion 83022 , and the second guide portion 83022 is in sliding fit with the inner wall of the opening 8102 .
- the latch 8302 is provided with a protruding second guide portion 83022.
- the second guide portion 83022 can be a slide, a boss, or other structures.
- the second guide portion 83022 can slide and cooperate with the inner wall of the opening 8102 to form a lock. It plays the role of guiding and positioning, avoiding the problem of jamming and deflection of the clamping member 8302 when moving, and improving the stability of the triggering of the valve body 830.
- the sealing member 8303 has an end face on one side facing the clamping member 8302 , and the peripheral side of the end face extends toward the clamping member 8302 to form a third guide portion 83031 , and the third guide portion 83031 is connected with the fluid channel. Inner wall slide fit.
- the sealing member 8303 has an end surface on one side facing the clamping member 8302, and the clamping member 8302 can push against the sealing member 8303 by contacting the end face of the sealing member 8303.
- the peripheral side of the end surface extends toward the clamping member 8302 to form a third guide portion 83031.
- the third guide portion 83031 can slide with the inner wall of the fluid channel to play a guiding and positioning role to prevent the seal 8303 from jamming or deflecting when moving.
- the tilt problem improves the stability of valve body 830 triggering.
- the third guide portion 83031 and the end surface form a limiting groove 83032; the clamping member 8302 extends toward one end of the seal 8303 to form a limiting portion 83023, and the limiting portion 83023 is at least partially embedded in Limit slot 83032.
- the third guide portion 83031 and the end surface form a limiting groove 83032.
- the limiting groove 83032 is U-shaped.
- the opening side of the limiting groove 83032 faces the clamping member 8302; the clamping member 8302 extends toward one end of the seal 8303.
- a limiting portion 83023 is formed, and the limiting portion 83023 may be a boss structure.
- the limiting part 83023 is at least partially embedded in the limiting groove 83032, which avoids the problems of shaking and jamming when the clamping member 8302 and the sealing member 8303 move, and improves the valve Body 830 trigger stability.
- the outer wall of the seal 8303 extends to form a raised fourth guide portion 83033, and the fourth guide portion 83033 slides with the inner wall of the fluid channel.
- a protruding fourth guide portion 83033 can also be extended from the outer wall of the seal 8303.
- the fourth guide portion 83033 can be a slide, a boss, or other structures.
- the fourth guide portion 83033 can It slides and cooperates with the inner wall of the fluid channel to play a guiding and positioning role, avoiding the problem of jamming and deflection of the seal 303 when moving, and improving the stability of the triggering of the valve body 830.
- the clamping member 8302 is provided with a groove 83024 at one end facing the sealing member 8303, and the sealing member 8303 is provided with a boss 83034 at one end facing the clamping member 8302.
- the boss 83034 is at least partially embedded in Groove 83024.
- a groove 83024 can be provided on the clamping member 8302, and a boss 83034 can be provided on the sealing member 8303.
- the groove 83024 and the boss 83034 are set opposite and have matching shapes.
- a sealing structure 860 is provided in the assembly gap between the housing 10 and the inner housing 820 .
- the casing 10 there is an assembly gap between the casing 10 and the inner shell 820.
- a sealing structure 860 is provided in the assembly gap with the inner shell 820.
- the sealing structure 860 can be a silicone sealing ring, a rubber sealing ring, etc. Under the extrusion of the housing 10 and the inner shell 820, the sealing structure 860 fills the assembly gap to achieve Sealing connection between housing 10 and inner housing 820.
- the number of support parts 8100 is two or more, and the support parts 8100 are arranged at intervals along the circumferential direction of the inner wall of the opening 8102 .
- the support part 8100 is used to support the valve body 830 in the first position, and the stability of the engagement between the support part 8100 and the valve body 830 directly affects the performance of the fire protection device.
- the number of the support parts 8100 is two or more, and the support parts 8100 are installed along the inner wall of the opening 8102
- the circumferential spacing is set to achieve multiple clamping connections on the clamping portion of the valve body 830, thereby improving the stability of the clamping connection. At the same time, it can also avoid the problem of deflection of the valve body 830 due to uneven force, and improve the triggering stability of the valve body 830.
- the valve body 830 includes a first valve body and a second valve body; the first valve body and the second valve body are symmetrically arranged on both sides of the through hole 8201; the first valve body When at least one of the second valve bodies is in contact with the peripheral side of the through hole 8201, the body passage is in a blocked state.
- the fire protection device includes two first valve bodies and a second valve body symmetrically arranged in the fluid channel.
- the first valve body and the second valve body have the same structure and are respectively located on both sides of the through hole 8201.
- Elastic members 840 are provided between the first valve body and the second valve body and the inner wall of the fluid channel; support portions 8100 are respectively provided in the openings 8102 at both ends of the main body 8101 for respectively connecting with the first valve body and the second valve body.
- Body snap connection is provided.
- the fire protection device adopts a double valve body 830 structure.
- the fluid channel can be blocked, ensuring the timeliness of the fire protection device triggering.
- Any open end can be assembled and connected to the oxygen therapy device or patient-side pipeline, which greatly improves the convenience of installation.
- an elastic support member 870 is provided between the first valve body and the second valve body, and the elastic support member 870 is passed through the through hole 8201; the two ends of the elastic support member 870 are respectively It is in contact with the first valve body and the second valve body; the elastic force of the elastic support member 870 is smaller than the elastic force of the elastic member 840 .
- first valve body or the second valve body when they respectively include a clamping member 8302 and a sealing member 8303.
- the sealing member 8303 When not pushed by the clamping member 8302, the sealing member 8303 is in contact with the inner shell 820. Relative movement will occur between the through holes 8201, and the seal 8303 will have unnecessary contact with the peripheral side of the through hole 8201 of the inner shell 820, which may easily cause airway obstruction and affect normal ventilation. Therefore, an elastic support member 870 is provided between the first valve body and the second valve body.
- the elastic support member 870 can be a metal spring such as iron, copper, alloy, or a soft rubber that can store elastic potential energy, such as silicone or rubber. .
- the elastic support member 870 is disposed in the through hole 8201 and will not block the normal transmission of oxygen.
- the two ends of the elastic support member 870 are in contact with the first valve body and the second valve body respectively, thereby supporting the two seals 8303. avoid password
- the seal 8303 is in contact with the peripheral side of the through hole 8201 in normal use.
- the elastic force of the elastic support member 870 is less than the elastic force of the elastic member 840.
- the support part 8100 and/or the fusible part 8301 are in a molten state, the support part 8100 loses its clamping effect on the clamping member 8302, and the elastic member 840 releases at least part of its elasticity. Due to the potential energy, the elastic support member 870 will not hinder the movement of the sealing member 8303, and can smoothly contact the sealing member 8303 with the peripheral side of the through hole 8201, so that the fluid channel is in a blocked state.
- a first mounting groove 880 is provided at one end of the first valve body toward the second valve body, and a second mounting groove 890 is provided at one end of the second valve body toward the first valve body.
- the installation groove 880 and the second installation groove 890 are arranged oppositely; the elastic support member 870 is at least partially embedded in the first installation groove 880 and the second installation groove 890 .
- the elastic support member 870 can be stored, and at the same time, it can also play a limiting role to prevent the elastic support member 870 from shaking and deflecting.
- the fire prevention device includes: a housing 10 and a valve body 830; the housing 10 has a fluid channel, and the fluid channel is used to communicate with an oxygen therapy device or a patient.
- the pipelines are connected; the valve body 830 is arranged in the fluid channel, and the valve body 830 has a first position and a second position relative to the fluid channel; when in the first position, there is a gap for gas to pass between the valve body 830 and the fluid channel; When in the second position, the valve body 830 blocks the fluid channel; the inner walls at both ends of the fluid channel are respectively provided with at least one protruding fusible support part 850; when the fusible support part 850 is in a non-molten state, the valve body 830 It is engaged with the fusible support part 850 to support the valve body 830 in the first position; when the fusible support part 850 is in a molten state, the valve body 830 switches from the first position to the second position.
- the housing 10, as the main body frame of the fire protection device can be made of materials that are not prone to chemical reactions with oxygen and are resistant to high temperatures, such as stainless steel or ceramic materials; it can also be made of fire-proof and flame-retardant materials.
- the fluid channel is used to communicate with the oxygen therapy device or the pipeline at the patient end. Since oxygen needs to pass through the fluid channel during transmission, it can be blocked by blocking the fluid channel. Oxygen passage to minimize the spread of fire caused by oxygen blessing.
- the valve body 830 is slidably connected to the inner wall of the fluid channel.
- the valve body 830 has a first position and a second position relative to the fluid channel.
- When the valve body 830 is in the first position there is a gap for gas to pass between the valve body 830 and the fluid channel. , oxygen can be transmitted normally through the fluid channel; the valve body 830 is in the
- the valve body 830 is in the second position, the fluid channel is in a blocked state.
- the cooperation between the valve body 830 and the inner wall or opening of the fluid channel can be used to achieve blocking of the fluid channel.
- the shoulder between the valve body and the fluid channel contacts to block the fluid passage.
- valve body 830 used to seal and block the fluid channel can be made of flexible sealing material, such as silicone, rubber, etc.; the valve body 830 can also be made of rigid material, only the end of the valve body 830 used to seal and block the fluid channel A flexible sealing ring is provided at one end.
- the inner walls at both ends of the fluid channel are provided with at least one protruding fusible support part 850.
- the fusible support part 850 can be engaged with the other end of the valve body 830 to position the valve body 830 in the first position, ensuring that the valve body 830 is positioned in the first position. In the absence of fire, the fluid channel must be unobstructed.
- the fusible support part 850 may be made of materials with lower melting points, such as PP, PVC and other materials, which are prone to melting when exposed to high temperatures.
- the fusible support part 850 melts, the fusible support part 850 loses its clamping effect on the valve body 830, and the valve body 830 moves to the second position to block the fluid channel.
- the fusible support part 850 is used.
- the valve body 830 can be moved to the second position in time and block the gas path.
- the fusible support part 850 Made of fusible material, the response speed is fast, which increases the triggering speed of the valve body 830, reduces the risk of fire spreading due to untimely triggering, and thereby improves the safety factor of the fire protection device.
- the fire protection device has a simple structure and is easy to assemble, which also reduces production costs and installation costs.
- the fire protection device also includes: an elastic member 840; the elastic member 840 is disposed between the valve body 830 and the inner wall of the fluid channel; when the valve body 830 is in the first position, the elastic member 840 is in a compressed state; the elastic member 840 is The elastic driving force is provided when the valve body 830 switches from the first position to the second position.
- the elastic member 840 is disposed between the valve body 830 and the inner wall of the fluid channel, and is used to drive the valve body 830 to move from the first position to the second position.
- the elastic member 840 can be a metal spring such as iron, copper, or alloy, or a soft rubber that can store elastic potential energy, such as silicone or rubber.
- the elastic member 840 When the valve body 830 is in the first position, the elastic member 840 will be squeezed by the inner wall of the fluid channel and the valve body 830, and is in a compressed state, accumulating elastic potential energy; when the support part loses its engagement with the valve body 830, it will be stressed. The balance is broken, and the valve body 830 moves to the second position under the elastic force of the elastic member 840 to block the air path. Under the action of the elastic member 840, the triggering speed of the valve body 830 is further increased.
- the valve body 830 includes a clamping member 8302 and a sealing member 8303.
- the clamping member 8302 and the sealing member 8303 are of a split structure, and the clamping member 8302 and the sealing member 8303 are separate.
- the elastic member 840 is disposed between the clamping member 8302 and the inner wall of the fluid channel; one end of the clamping member 8302 is used to clamp with the fusible support part 850, and the other end of the clamping member 8302 is used to clamp the fusible support part 850.
- One end is used to push against the seal 8303; there is an assembly gap for fluid to pass between the clamp 8302 and the seal 8303.
- the valve body 830 includes a clamping member 8302 and a sealing member 8303.
- the clamping member 8302 and the sealing member 8303 adopt a split structure with an assembly gap through which oxygen can pass, which can reduce the risk caused by the valve body 830. Air resistance to improve oxygen flux and comfort.
- the clamping member 8302 and the sealing member 8303 are respectively slidingly connected to the inner wall of the fluid channel. When one end of the clamping member 8302 is clamped with the fusible support part 850, the positioning and fixation of the clamping member 8302 can be realized, so that the clamping member 8302 is in In the static state, the snap-in component 8302 can snap into place with the fusible support part 850 through structures such as hooks and round heads.
- the elastic member 840 is disposed between the clamping member 8302 and the inner wall of the fluid channel. Under the compression of the clamping member 8302 and the inner wall of the fluid channel, the elastic member 840 accumulates elastic potential energy.
- the seal 8303 can be made of flexible sealing material, such as silicone, rubber, etc.; the seal 8303 can also be made of rigid material, with a flexible sealing ring only provided on one side of the seal 8303.
- a protruding first guide portion 83021 is provided at one end of the clamping member 8302 close to the seal 8303, and the first guide portion 83021 is slidably matched with the inner wall of the fluid channel; the elastic member 840 is sleeved on The clamping member 8302 has one end of the elastic member 840 in contact with the inner wall of the fluid channel, and the other end of the elastic member 840 in contact with the first guide part 83021; when the clamping member 8302 is engaged with the fusible support part 850, the elastic member 840 It is compressed by the inner wall of the fluid channel and the first guide part 83021.
- the first guide portion 83021 can be a slide, a boss, or other structures.
- the number of the first guide portions 83021 can be determined according to the actual situation. Choose according to your needs.
- the first guide part 83021 may be made of the same material as the latch 8302, and may be made of a fire-retardant and wear-resistant material.
- the first guide part 83021 and the clamping member 8302 can adopt an integrated structure, which has good structural strength and stability.
- the first guide part 83021 can also be manufactured separately from the clamping member 8302, and then assembled together by bonding or welding.
- the first guide part 83021 has two functions: first, it can provide a stable support point for the elastic member 840; second, the first guide part 83021 can slide and cooperate with the inner wall of the fluid channel to play a guiding and positioning role to avoid jamming.
- the problem of jamming and deflection of the connector 8302 when moving is improved, which improves the stability of the triggering of the valve body 830.
- the elastic member 840 can be a metal spring, and the metal spring is sleeved on the clamping member 8302. In snap-in part 8302 When engaged with the fusible support member, the two ends of the elastic member 840 are in contact with the first guide portion 83021 and the inner wall of the fluid channel respectively, and are in a compressed state to accumulate elastic potential energy. When the fusible support part 850 is in a molten state, the fusible support part 850 loses its clamping effect on the clamping member 8302, and the elastic member 840 releases at least part of the elastic potential energy, driving the valve body 830 to be in the second position, so that the fluid The channel is blocked.
- the elastic member 840 when the fusible support part 850 melts, it can provide driving force for the clamping member 8302 and the sealing member 8303, so that the sealing member 8303 moves quickly and blocks the air path. At the same time, the elastic member 840 is sleeved on the clamping member 8302, which not only saves the space inside the fluid channel, but also ensures the stability of the assembly of the elastic member 840.
- the fluid channel includes a main body 8101 and openings 8102 provided at both ends of the main body 8101, wherein the inner diameter of the opening 8102 is smaller than the inner diameter of the main body 8101; the connection between the main body 8101 and the opening 8102
- the shoulder 8103 is formed by narrowing; the fusible support part 850 is provided on the inner wall of the opening 8102; one end of the elastic member 840 is in contact with the shoulder 8103, and the other end of the elastic member 840 is in contact with the first guide part 83021.
- the fluid channel includes a main body 8101 and openings 8102 provided at both ends of the main body 8101.
- the opening 8102 is used to communicate with the pipeline at the patient end or the oxygen therapy device end.
- the inner diameter of the opening 8102 is smaller than that of the main body 8101.
- the inner diameter forms a structure with a thick middle and thin ends.
- the main body 8101 transitions from the middle to both ends, and narrows to form a shoulder 8103 at the connection with the opening 8102.
- the shoulder 8103 is used to support the elastic member 840.
- the fusible support part 850 is provided on the inner wall of the opening 8102, and the sealing member 8303 is provided inside the main body 8101.
- the sealing member 8303 is far away from the fusible supporting part 850 and is not easily affected by the high temperature of combustion, which is beneficial to improving the sealing member 8303. performance and improve the stability of fire protection devices.
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Abstract
Description
10-壳体;20-阀体;30-扭簧;40-可熔构件;101-流体通道;102-第一开
口;103-第二开口;104-转轴;105-限位部;106-第一管路接头;107-第一通孔;108-第二管路接头;109-第二通孔;110-卡接部;201-容纳腔;202-安装部;203-第一连接部;204-第一密封部;205-第二连接部;206-第二密封部;207-缺口;401-延伸部;2021-内轴套;2022-外轴套;
220-弹性件;230-阀体;240-可熔构件;2101-容纳腔;2102-气体通道;
2103-第一壳体;2104-第二壳体;2105-第一通孔;2106-第二通孔;2107-第三通孔;2108-第四通孔;2109-第一凸出部;2110-第二凸出部;2111-第一延伸部;2112-第二延伸部;2113-限位部;2114-第一连接部;2115-第二连接部;2301-第五通孔;2302-第三延伸部;2303-第四延伸部;2401-第六通孔;
320-第一弹性阀体;330-第一可熔构件;340-支撑件;350-第二弹性阀体;
360-第二可熔构件;3101-容纳腔;3102-第一开口;3103-第二开口;3104-第一连接部;3105-第二连接部;3106-第一通孔;3107-第二通孔;3108-加强筋;3109-卡接部;3201-第二定位部;3401-第一定位部;
420-第一移动杆;430-第一可熔构件;440-第一阀体;450-第一弹性件;
460-第二移动杆;470-第二可熔构件;480-第二阀体;490-第二弹性件;4101-流体通道;4102-第一收窄部;4103-第二收窄部;4104-挡板;4105-第一管路接头;4106-第二管路接头;4107-第三卡接部;4201-第一卡接配合部;4202-第一导向部;4301-第一卡接部;4401-第一密封件;4402-第二导向部;4403-槽体;4404-安装轴;4601-第二卡接配合部;4701-第二卡接部;4801-第二密封件;
520-第一定位件;530-第一密封件;540-可熔构件;550-第二定位件;560-
第二密封件;5101-流体通道;5102-第一开口;5103-第二开口;5104-环形凸起;5105-第一凸起结构;5106-第二凸起结构;5107-第一定位部;5108-第二定位部;5109-安装部;5110-容纳槽;5111-连接筋;
620-阀体;630-导向部;640-第一可熔构件;650-第一弹性件;660-第二
可熔构件;670-第二弹性件;6101-流体通道;6102-第一收窄部;6103-第二收窄部;6104-固定部;6105-定位槽;6201-第一槽体;6202-第一安装轴;6203-第一密封件;6204-第二槽体;6205-第二安装轴;6206-第二密封件;6207-定位筋;
7101-流体通道;7102-收窄部;720-底座;7201-通气孔;7202-第一定位
槽;7203-第一定位部;7204-第二定位部;7205-法兰;7206-第一限位部;7207-第二限位部;730-阀体;7301-密封部;73011-导向部;7302-承载部;73021-第一支撑结构;73022-镂空结构;7303-连接部;73031-卡接结构;7304-第一阀体;73041-第一密封部;73042-第一安装套筒;73043-第二支撑结构;73044-第三限位部;73045-第二定位槽;7305-第二阀体;73051-第二密封部;73052-第二安装套筒;73053-第三支撑结构;73054-第四限位部;73055-第三定位槽;740-弹性件;7401-第一弹性件;7402-第二弹性件;750-可熔性套圈;
8101-主体;8102-开口部;8103-肩部;820-内壳;8201-通孔;830-阀体;
8301-易熔部;8302-卡接件;83021-第一导向部;83022-第二导向部;83023-限位部;83024-凹槽;8303-密封件;83031-第三导向部;83032-限位槽;83033-第四导向部;83034-凸台;840-弹性件;850-可熔性支撑部;860-密封结构;870-弹性支撑件;880-第一安装槽;890-第二安装槽;8100-支撑部;
9101-流体通道;9102-第一壳体;9103-第二壳体;9104-安装卡槽;9105-
扩展部;91011-主体;91012-开口部;91013-肩部;920-密封件;9201-嵌入部;930-阀体;9301-易熔部;9302-卡接部;9303-连接部;9304-密封部;9305-第一导向部;9306-第二导向部;940-弹性件;950-可熔性支撑部;
1-弹簧;2-活塞;3-第一限位球;4-第二限位球;5-气流通道;
10a-第一壳体;10b-第二壳体;
11-第一接头;12-第二接头;13-第一通气管;14第一通气孔;15-第二通
气管;16-第二通气孔;17-固定部;18-第二间隙;
120-密封件;121-热熔层;1211-薄端;1212-厚端;1213-凸起;122-收缩
材料层;
131-外壳;132-按压件;133-簧片;
1-10、外壳;1-12、端座;1-13、可熔鼻部件;1-14、提升阀;1-15、压
缩弹簧;1-16、入口;1-17、中心孔;1-18、小孔;1-19、出端口;1-21、更大直径的孔;1-22、倾斜部分;1-24、法兰;
1-100、壳体;
1-110、第一壳体;1-120、第二壳体;1-130、腔室;1-140、气体通道;
1-150、连接槽;
1-111、第一喷嘴;1-112、第一防脱部;1-121、第二喷嘴;1-122、第二
防脱部;
1-30、密封圈;1-40、密封件;
1-41、密封部;1-42、第一连接件;1-43、第二连接件;
1-421、第一连接孔;1-431、连接环;1-432、第二连接孔;
1-50、安装臂;
1-51、转接块;1-52、安装柱;1-53、连接板;
1-511、容纳孔;1-521、连接柱;1-522、止挡圆台;1-523、固定柱;1-531、
凹陷部;
1-532、延伸板;1-533、触发柱;
2-100:防火装置;2-20:第一阀体;2-30:第二阀体;2-40:弹性件;2-11:
流体通道;2-12:第一限位筋;2-13:第二限位筋;2-21:第一安装杆;2-22:第一安装座;2-23:第一安装腔;2-24:第一导向杆;2-25:第一定位部;2-31:第二安装杆;2-32:第二安装座;2-33:第二安装腔;2-34:第二导向杆;2-35:第二定位部;2-14:第一定位槽;2-15:第二定位槽;2-16:第一安装槽;2-17:第一密封件;2-18:第二安装槽;2-19:第二密封件;2-111:第一阻挡台;2-112:第二阻挡台;2-1111:第一表面;2-1121:第二表面;2-122:第一子壳体;2-123:第一通道;2-124:第二子壳体;2-125:第二通道;2-51:第一接头;2-52:第二接头;2-26:导向轴。
Claims (10)
- 一种防火装置,其特征在于,包括:壳体、阀体、扭簧以及可熔构件;所述壳体内具有流体通道,所述流体通道设置有第一开口和第二开口,所述第一开口和所述第二开口分别用于与氧疗仪或患者端的管路连通;所述阀体位于所述流体通道内,且与所述壳体转动连接;所述阀体设置有容纳腔,所述流体通道与所述容纳腔为相互独立的两个空间;所述扭簧嵌设于所述容纳腔内,以驱动所述阀体与所述壳体相对转动;所述可熔构件设置于所述流体通道的内壁;在所述可熔构件处于非熔融状态下,所述可熔构件支撑所述阀体处于第一位置,所述第一开口和所述第二开口均处于开启状态;在所述可熔构件处于熔融状态下,所述扭簧驱动所述阀体转动至第二位置,所述第一开口和所述第二开口中的至少一个处于关闭状态。
- 根据权利要求1所述的防火装置,其特征在于,所述阀体包括安装部、第一连接部以及第一密封部;所述安装部包括内轴套和外轴套,所述容纳腔位于所述内轴套和外轴套之间;所述流体通道内设置有转轴,所述内轴套套设于所述转轴,且与所述转轴转动连接;所述第一连接部的一端与所述外轴套的侧壁连接,所述第一连接部的另一端与所述第一密封部连接;在所述阀体处于所述第二位置时,所述第一密封部与所述第一开口接合,以使所述第一开口处于关闭状态。
- 根据权利要求2所述的防火装置,其特征在于,所述阀体还包括第二连接部和第二密封部;所述第二连接部的一端与所述外轴套的侧壁连接,所述第二连接部的另一端与所述第二密封部连接;在所述阀体处于所述第二位置时,所述第二密封部与所述第二开口接合,以使所述第二开口处于关闭状态。
- 根据权利要求3所述的防火装置,其特征在于,所述第一连接部和/或所述第二连接部设置有缺口,所述缺口用于通过流体。
- 根据权利要求1所述的防火装置,其特征在于,所述流体通道的内壁设置有至少一个限位部,所述限位部位于所述阀体的转动路径上;在所述阀体处于所述第二位置时,所述阀体与所述限位部抵接。
- 根据权利要求1所述的防火装置,其特征在于,所述壳体设置有第一管路接头和第二管路接头;所述第一管路接头设置有第一通孔,所述第一通孔与所述第一开口连通;所述第二管路接头设置有第二通孔,所述第二通孔与所述第二开口连通;所述第一管路接头和所述第二管路接头分别用于与所述氧疗仪或所述患者端的管路连接。
- 根据权利要求6所述的防火装置,其特征在于,所述第一管路接头和/或所述第二管路接头的外侧壁设置有至少一个卡接部,所述卡接部用于与所述氧疗仪或所述患者端的管路卡接。
- 根据权利要求6所述的防火装置,其特征在于,所述可熔构件具有延伸部,所述延伸部穿设于所述第一通孔或所述第二通孔。
- 一种氧疗仪,其特征在于,包括权利要求1-8任一项所述的防火装置。
- 一种通气治疗系统,其特征在于,包括:权利要求9所述的氧疗仪。
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EP23830521.3A EP4516344A1 (en) | 2022-06-30 | 2023-06-30 | Fireproof device, oxygen therapy instrument, and ventilation therapy system |
US18/580,177 US20240374849A1 (en) | 2022-06-30 | 2023-06-30 | Fire protection device, oxygen therapy instrument and ventilation treatment system |
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CN202221696322.0 | 2022-06-30 | ||
CN202221696132.9 | 2022-06-30 | ||
CN202221696321.6U CN219001550U (zh) | 2022-06-30 | 2022-06-30 | 防火装置、氧疗仪及通气治疗系统 |
CN202221696321.6 | 2022-06-30 | ||
CN202210761499.2A CN115089828A (zh) | 2022-06-30 | 2022-06-30 | 防火装置、氧疗仪及通气治疗系统 |
CN202210761495.4A CN115105699A (zh) | 2022-06-30 | 2022-06-30 | 防火装置及通气治疗设备 |
CN202210761495.4 | 2022-06-30 | ||
CN202210761502.0 | 2022-06-30 | ||
CN202210761502.0A CN115089829A (zh) | 2022-06-30 | 2022-06-30 | 防火装置、氧疗仪及通气治疗系统 |
CN202221696322.0U CN219001551U (zh) | 2022-06-30 | 2022-06-30 | 防火装置、氧疗仪及通气治疗系统 |
CN202210761499.2 | 2022-06-30 | ||
CN202221696132.9U CN219001549U (zh) | 2022-06-30 | 2022-06-30 | 防火阀、通气设备 |
CN202210769833.9A CN115105700A (zh) | 2022-07-01 | 2022-07-01 | 防火装置及通气治疗设备 |
CN202210769833.9 | 2022-07-01 | ||
CN202223598765.9U CN219963788U (zh) | 2022-12-29 | 2022-12-29 | 应用于氧疗设备的自动防火装置 |
CN202223598962.0U CN219375799U (zh) | 2022-12-29 | 2022-12-29 | 防火装置及通气治疗设备 |
CN202223598765.9 | 2022-12-29 | ||
CN202223598962.0 | 2022-12-29 | ||
CN202223599609.4 | 2022-12-30 | ||
CN202211733732.2A CN115998999A (zh) | 2022-12-30 | 2022-12-30 | 防火装置及通气治疗设备 |
CN202223599609.4U CN219595512U (zh) | 2022-12-30 | 2022-12-30 | 防火装置及通气治疗设备 |
CN202211733732.2 | 2022-12-30 | ||
CN202321658850.1 | 2023-06-27 | ||
CN202321658850.1U CN220558374U (zh) | 2023-06-27 | 2023-06-27 | 防火装置及通气治疗设备 |
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-
2023
- 2023-06-30 WO PCT/CN2023/105040 patent/WO2024002359A1/zh active Application Filing
- 2023-06-30 EP EP23830521.3A patent/EP4516344A1/en active Pending
- 2023-06-30 US US18/580,177 patent/US20240374849A1/en active Pending
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US3862641A (en) * | 1972-05-30 | 1975-01-28 | John L Follett | Heat and flow sensitive safety shut-off valve |
DE3436582A1 (de) * | 1983-10-21 | 1985-05-02 | Georg Fischer AG, Schaffhausen, CH, Niederlassung: Georg Fischer AG, 7700 Singen | Thermisches sicherheitsventil |
US4887631A (en) | 1989-01-26 | 1989-12-19 | Itt Corporation | Fire isolation device |
JPH06137447A (ja) * | 1992-10-23 | 1994-05-17 | Yoko Eng Shiya:Kk | 感熱自動閉止ガスコック |
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