EP2657432B1 - Tête d'injection, dispositif d'injection et procédé d'injection de matériau isolant d'injection dans des chambres de matériau isolant - Google Patents
Tête d'injection, dispositif d'injection et procédé d'injection de matériau isolant d'injection dans des chambres de matériau isolant Download PDFInfo
- Publication number
- EP2657432B1 EP2657432B1 EP13164909.7A EP13164909A EP2657432B1 EP 2657432 B1 EP2657432 B1 EP 2657432B1 EP 13164909 A EP13164909 A EP 13164909A EP 2657432 B1 EP2657432 B1 EP 2657432B1
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- EP
- European Patent Office
- Prior art keywords
- injection
- insulating material
- data
- sensor
- material chamber
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
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Classifications
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- E—FIXED CONSTRUCTIONS
- E04—BUILDING
- E04B—GENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
- E04B1/00—Constructions in general; Structures which are not restricted either to walls, e.g. partitions, or floors or ceilings or roofs
- E04B1/62—Insulation or other protection; Elements or use of specified material therefor
- E04B1/74—Heat, sound or noise insulation, absorption, or reflection; Other building methods affording favourable thermal or acoustical conditions, e.g. accumulating of heat within walls
- E04B1/76—Heat, sound or noise insulation, absorption, or reflection; Other building methods affording favourable thermal or acoustical conditions, e.g. accumulating of heat within walls specifically with respect to heat only
- E04B1/7604—Heat, sound or noise insulation, absorption, or reflection; Other building methods affording favourable thermal or acoustical conditions, e.g. accumulating of heat within walls specifically with respect to heat only fillings for cavity walls
-
- E—FIXED CONSTRUCTIONS
- E04—BUILDING
- E04F—FINISHING WORK ON BUILDINGS, e.g. STAIRS, FLOORS
- E04F21/00—Implements for finishing work on buildings
- E04F21/02—Implements for finishing work on buildings for applying plasticised masses to surfaces, e.g. plastering walls
- E04F21/06—Implements for applying plaster, insulating material, or the like
- E04F21/08—Mechanical implements
- E04F21/085—Mechanical implements for filling building cavity walls with insulating materials
Definitions
- the present invention relates to a Einblasspitze, a blowing device and a method for blowing Einblasdämmstoffen in insulation chambers.
- NL 8204888 discloses a device for blowing Einblasdämmstoffen, wherein the Einblasspitze is equipped with a manometer. At the Einblasspitze a vent valve is additionally arranged, which allows a regulation of the injection pressure. Although the injection pressure can be set by this arrangement, but this must be done by hand. In addition, not only conveying air, but also blow-in insulating material is blown through the vent valve, which leads to a heavy pollution and in particular to a high dust load.
- GB 2 103 695 A discloses an apparatus for blowing fibers into a cavity.
- the Einblas spitze a sensor for measuring the back pressure on.
- An injection tip according to the invention for injecting blow-in insulating materials into insulation chambers has a sensor for measuring operating data of the injection tip and means for transmitting the operating data.
- the Einblasspitze has means for connection to a blowing machine, in particular with a transport line for conveying Einblasdämmstoffen.
- the sensor is preferably arranged close to the discharge opening of the injection tip.
- "close" to the discharge opening is understood to mean that the sensor is arranged in a region, in particular an injection tip, which is immovably connected to the discharge opening.
- the sensor must not be positioned directly on the exhaust port, it can also be set back in a rear region of the Einblasspitze angel.
- an immovable lance in the form of a tube is arranged between the sensor and the outlet opening, a measured value can be adjusted with a particularly constant correction factor, so that it nevertheless represents the situation at the outlet opening. It thus becomes possible to determine the operating data of the injection tip during operation and, if appropriate, to be corrected so that they correspond to the values at the outlet opening. It is also conceivable that the sensor is arranged in a region which is movably connected to the blow-out opening.
- the length of the movable connection is preferably less than 10 m, preferably less than 5 m, particularly preferably less than 1 m.
- the sensor is designed such that the operating data comprise a static and dynamic injection pressure and / or a mass flow of a conveyed blow-in insulating material and / or the air.
- an injection pressure is understood here and below to mean the pressure which is encountered during the blowing in the area of the blow-off opening, wherein the static and / or the dynamic pressure can be measured.
- the gas velocity or flow velocity at the exhaust port can be determined and the gas mass flow calculated.
- the mass flow is given in kg / h.
- the Einblasspitze may have a measuring means for detecting data to be filled insulation chamber.
- the internal dimensions of the insulation chamber can be detected in order to determine the volume and / or the mass of the blowing insulation required for filling.
- the position of the opening for introducing the Einblasspitze and / or the nature of an inner surface, such as the roughness of the inner walls of the insulating material chamber are detected.
- the roughness of the inner walls has an influence on the settlement stability of the blow-in insulation and thus can be taken into account already during injection of the blow-in insulation.
- the corresponding data of the insulation chamber can be detected even before filling with the blowing insulation.
- the sensor and / or the measuring means can be connectable or connected to a transmitter in order to transmit the operating data and / or data to a setting unit.
- a Einblasspitze is connected to a blowing machine via a tubular transport line.
- a transmitter of the Sensor can be transmitted to a receiver of the setting unit.
- a transmitter is understood as a unit which processes the operating data to be transmitted into a form, so that the operating data can be transmitted via a transmission medium.
- the transmitter can be designed for wired and / or wireless data transmission.
- the transmitter can transmit the operating data and / or data to the setting unit via a data cable integrated in the transport line or attached to the transport line.
- the data cable can also be arranged separately from the transport line. If this is an electrical two-wire cable, the transmitter does not necessarily have to process the data.
- the sensor can for example be connected directly to the setting unit.
- the data on the data cable can also be transmitted in another form electrically or optically, for example in digital or analog form. Accordingly, an A / D converter can be provided.
- the operating data and / or data are transmitted wirelessly, for example by means of radio, infrared or ultrasound.
- a wireless data transmission replacement or lengthening of the transport hose is easier possible.
- the data quality is not disturbed by a generated in the transport tube electrostatic voltage in a wireless data transmission.
- An inventive blowing device for blowing Einblasdämmstoffen in insulation chambers comprises a blowing machine with a blowing fan, a metering unit for metering the blowing insulation and a setting unit for controlling or regulating the delivery rate of the blowing fan and / or the metering unit and / or a filling amount of clearlylasenden Einblasdämmstoffen and a transport line with a blow-out.
- the transport line has a sensor for measuring near the outlet opening and means for transmitting operating data of the outlet opening. For example, during operation, the operating data can be measured and logged accordingly. It is also conceivable that the operating data are used to control the blowing machine.
- the setting unit can process the measured operating data and convert it into corresponding control signals for the blowing fan and / or the dosing unit, for example with the aid of tables or regulations stored in the setting unit.
- data of the insulating chamber to be filled such as internal dimensions, volume, roughness of the planking, etc., as well as specific data of Einblasdämmstoffes and a desired blowing density can be considered.
- the injection device may have a measuring means for detecting data of an insulation chamber to be filled, in particular an inner dimension of the insulation chamber and / or a condition of an inner surface of the insulation chamber.
- data as the shape and / or volume and / or condition of the inner surfaces of the insulation chamber have an influence on the required operating parameters of the injection device, in particular on the required amount of blowing insulation, and can be considered accordingly in their operation.
- the setting unit can be connected or connectable to the sensor and / or the measuring device and the delivery rate of the blowing-in blower and / or the dosing unit and / or the filling quantity of the insulating chamber to be filled can be adjustable, in particular adjustable, in accordance with the measured operating data and / or the recorded data of the insulating chamber. This makes it possible, in particular, to ensure constant operating parameters in the region of the exhaust opening, independently of the length of the transport line. Thus, for example, even density ratios can be achieved in an insulation chamber. In addition, the filling of the insulation chamber can be ensured with the required amount of blowing insulation.
- the adjustment unit may be wired or wirelessly connectable or connected to the sensor and / or the measuring means.
- the sensor and / or the measuring device can be connected, for example, directly to the setting unit.
- the connection is integrated directly in the transport line as a data line.
- the connection is constructed by radio, infrared or ultrasound.
- Such a wireless connection requires a transmitter at the sensor and / or measuring means, which transmits the data detected by the sensor and / or measuring means to the setting unit.
- the setting unit can be configured with a receiver which receives the data transmitted by the transmitter.
- the wireless connection does not have to be permanent, but can be set up if necessary.
- the sensor and / or the measuring means must therefore be supplied with energy only for measuring the operating parameters and / or for detecting the data of the insulating chamber and, if necessary, at the time of the data transmission.
- the sensor for measuring the operating parameters is continuously supplied with energy during injection and also the corresponding data transmission of the operating parameters takes place permanently, preferably in real time.
- a wireless data transmission can be carried out directly from the transmitter to the setting unit or to a receiver of the setting unit.
- the transmitter transmits its data to a remote control.
- a remote control serves, for example as a relay station and sends the data to the setting unit.
- Such a configuration has the advantage that the transmitter of the Einblasspitze must have only a low transmission power, since the distance to the remote control can be kept small. Accordingly, its energy consumption is low.
- the hand-held transmitter can be held by a surgeon or fastened, for example, to his belt. In addition to the task as a relay station, this hand-held transmitter can also take on additional functions.
- the remote control can also serve as a remote control for the blowing machine and turn this on / off.
- the measuring means for detecting the data to be filled insulation chamber can be integrated in the transmitter.
- the measuring means may also be an independent device, which can be brought into the corresponding position for detecting the data of the insulation chamber and then transmits the data.
- such a measuring means on the underside of a Einblasaube as for example in EP 1 255 001 B1 is described is arranged.
- the measuring means for example, lowered before blowing out of the plane of the cover plate and in the to be filled Insulation chamber are driven to allow detection of the data of the insulation chamber.
- the measuring means can retract again in the plane of the cover plate or even further, so that the blowing of the Einblasdämmstoffes is not hindered by the measuring means.
- such a detection of the data of the insulation chamber takes place before the actual blowing, so that no continuous detection is necessary.
- the data of the insulation chamber are recorded again after the blowing with the measuring means.
- the density or even the density distribution of the injected insulation can be subsequently checked and logged for purposes of quality assurance and / or used to optimize the blowing.
- the data determined during and / or after the injection of the insulation chamber such as the filling amount used, the pressure curve during blowing, the density distribution of the injected insulation, etc. stored in the setting and analyzed according to predetermined criteria and / / or compared with the given values.
- a self-learning system can be present which continuously optimizes the parameters required for blowing in.
- a target value of the injection pressure can be adjusted if the filling quantity determined from the data recorded from the insulation chamber can not be blown in, since the device has ended injection due to a measured pressure increase.
- the hand-held transmitter data are transmitted from the blowing machine, which are interesting for the surgeon.
- a still available for blowing available quantity of blowing insulation and / or compared with the recorded data of the insulation chamber become.
- Preferably can be displayed in a display of the remote control or displayed acoustically, if the insulation chamber can still be filled or if the surgeon may need to provide additional Einblasdämmstoffmaterial for filling the next insulation chamber available.
- the delivery rate of the blowing blower and / or the dosing unit and / or the filling quantity of the insulating chamber to be filled can be adjustable, in particular controllable, such that the injection pressure and / or the mass flow of insulating material and / or air in the region of the sensor correspond to a presettable or preset value or follow a preselected history.
- the insulation chamber is filled with a constant injection pressure and / or mass flow.
- the quality of the Einblasdämmung in the insulation chamber is thus constant over its entire filling area.
- the injection device may comprise a blow-off valve, which is controllable in dependence on the operating data and / or data.
- a blow-off valve which is controllable in dependence on the operating data and / or data.
- the blow-off valve can be opened so that the blow-in pressure in the injection tip and thus also in the insulation chamber is immediately reduced.
- the blow-off valve can then be opened when the predetermined filling quantity is blown on blow-in insulation.
- a sudden stopping of the blowing causes and further compression of the Einblasdämmstoffes be prevented in the insulation chamber.
- Such a blow-off valve is particularly advantageous when large and / or pressure-sensitive insulation chambers to be filled, since even a slight increase in the inlet pressure can destroy a Dämmstoffbib.
- the blow-off valve can be arranged directly at the blow-in blower and / or at the injection tip be.
- the blow-off valve must be provided with a corresponding filter in order to retain the blow-in insulating materials present in the transport line.
- the injection device can be designed, for example, as described above. If the operating parameters are measured close to an exhaust opening, it can be recorded accordingly with which operating parameters the insulation chamber was filled. A simple quality control is possible. By transmitting the measured operating parameters, a control loop can be set up, which allows, for example, keeping constant or adhering to a specific course of one or more operating parameters during injection.
- the static and dynamic injection pressure and / or a mass flow of the insulating material and / or the air are measured.
- it is also possible to detect other operating parameters, in particular the humidity or the flake size of the blow-in insulating material are conceivable.
- data of an insulation chamber to be filled in particular an inner dimension of the insulation chamber and / or a condition of an inner surface of the insulation chamber can be detected.
- This data can be used to determine the volume and / or the mass of the blowing insulation required for filling.
- the roughness of the inner walls has an influence on the settlement stability of the blow-in insulation and thus can be taken into account already during injection of the blow-in insulation.
- a detection of the data of the insulation chamber takes place before the actual blowing, so that no continuous detection is necessary.
- the data of the insulation chamber are recorded again after the blowing with the measuring means.
- the density or even the density distribution of the injected insulation can be subsequently checked and logged for purposes of quality assurance and / or used to optimize the blowing.
- the data determined during and / or after filling the insulation chamber with blow-in insulation such as the filling amount used, the pressure curve during inflation, the density distribution of the injected insulation, etc., stored, analyzed according to predetermined criteria and / or compared with the predetermined values become.
- a self-learning system can continuously optimize the parameters needed for injection.
- a target value of the injection pressure for the further insulation chambers can be adapted if the filling quantity determined from the data recorded of the insulation chamber could not be blown into the already filled insulation chamber, since the injection process was prematurely ended due to a measured pressure increase.
- the operating parameters can be transmitted by cable and / or wireless.
- the measured operating parameters can be compared with presettable or preset values.
- a delivery rate of a blowing blower and / or a dosing unit and / or a filling amount of the insulating chamber to be filled can be regulated such that the operating data correspond to the presettable or preset values and / or the acquired data.
- a uniform and correct filling of the insulation chambers can be ensured.
- a blow-off valve can be opened.
- an insulation chamber is not overloaded, for example, subjected to pressure.
- the promotion of Einblasdämmstoffes and / or the air mass flow can be prevented before the insulation chamber is destroyed.
- FIG. 1 shows an inventive blowing device 1, which essentially comprises a blowing machine 2, a transport line 5 and a Einblasspitze 10.
- the blowing-in machine 2 has a funnel-shaped container 7 for receiving the blow-in insulating material to be injected.
- a stirring unit 9 is arranged, which loosens the Einblasdämmstoff and continuously feeds a rotary valve 8.
- the rotary valve 8 is supplied by a blowing fan 3 via a normally closed blow-off valve 6 with conveying air.
- the blowing insulation is mixed with the conveying air and the transport line 5 fed. As long as the blow-in fan 3 is operating and the blow-off valve 6 is closed, the blow-in insulation is conveyed via the transporting power 5 to the blow-in tip 10.
- the illustrated injection tip 10 consists essentially of a tubular structure which is connected to the transport line.
- a sensor 11 is arranged, which measures the injection pressure during operation.
- This is a digital pressure sensor based on piezo, but there are also other sensors, eg with strain gauges conceivable.
- this sensor 11 can also be designed in such a way that it can at the same time absorb the mass flow of the conveyed blow-in insulating material by means of an optical density and speed measurement and / or further operating parameters.
- a Prandtl-based pressure difference sensor is used to measure the air mass flow.
- the measured data is transmitted via a transmitter 12 wirelessly via Bluetooth to a remote control 15.
- This hand-held transmitter 15 serves as a relay station to a receiver of a setting unit 4, which is integrated in the blowing-in machine 2.
- the setting unit 4 evaluates the measured and transmitted operating data, such as injection pressure and / or mass flow of the insulating material and / or the air, and controls the flow rate of the blowing fan 3 or the stirring unit 9 or the speed or a metering slide of the rotary valve 8.
- the Der Hand transmitter 15 can also take over other functions such as switching on and off of the blowing machine 2, entering the predefined values such as injection pressure and mass flow or other functions in addition to the said function as a relay station.
- the hand-held transmitter 15 also has a measuring means 25 in the form of a 3D scanner. This measuring means 25 is mounted on an outer side on the hand-held transmitter 15, so that the measuring means 25 can be inserted into an opening 21 of an insulating chamber 20 to be filled.
- the 3D scanner detects the internal dimensions of the insulating chamber 20 to be filled and the roughness of the inner surfaces. In particular, the thickness of the targeted blow-in insulation and the surface finish of the wall paneling are important data to be recorded.
- These recorded data of the insulation chamber 20 can be transmitted from the hand-held transmitter 15 to the receiver of the setting unit 4 of the blowing-in machine 2. From the data thus acquired, it is now possible to ascertain the filling quantity of blow-in insulating material 22 required for filling the insulating chamber 20. In addition, these data, in particular the roughness of the inner surface in the determination of the required injection pressure can be taken into account, so that a settlement safe Einblasdämmung can be ensured. Alternatively, the measuring means also in the Einblassspitze 10 at the exhaust port 13 may be arranged. A transfer of the detected data of the insulation chamber 20 then takes place in the same manner as the transmission of the operating data, which are measured by the sensor 11.
- the measuring means 25 can also be designed as an independent device or integrated in an injection hood.
- the sensor 11 is arranged in the Einblasspitze 10 so that the sensor 11 comes to rest outside the insulation chamber 20 during injection. However, it is also conceivable that the sensor 11 is arranged at the exhaust opening 13 of the Einblasspitze 10. Depending on the positioning of the sensor 11, a possible pressure loss over the distance from the sensor 11 to the discharge opening 13 can be computationally compensated, so that the data transmitted by the transmitter 12 correspond to the effective injection pressure at the discharge opening 13.
- the sensor 11 is arranged from the outside in an opening in the Einblasspitze 10, so that its active surface is flush with the inside of the Einblasspitze 10 and has direct contact with the Einblasspitze 10 to be transported Einblasdämmstoff.
- the senor 11 is also flush with the outside of the Einblasspitze 10 so that the retraction and extension of the Einblasspitze 10 through an opening 21 of the insulating chamber 20 is not hindered.
- the transmitter 12 is arranged, so that no long supply lines are necessary. Sensor 11 and transmitter 12 are formed as a unit, which can be easily replaced in order to adapt the Einblasspitze 10 different requirements such as different parameters to be measured, different types of transmission and / or different Einblasdämmstoffen.
- the power supply of the sensor 11 and the transmitter 12 is usually carried out by means of a battery or a battery. The power supply is not shown in the embodiment shown.
- both the transmission between the transmitter 12 and the transmitter 15 and the transmission between the transmitter 15 and setting 4 are shown wirelessly, it is also conceivable that, for example, the transmitter 15 directly connected to the transmitter 12 of the Einblasspitze 10 via a cable is. Such a cable can be designed to be electrically conductive or else as a glass fiber connection.
- the setting unit 4 can be connected via a cable to the transmitter 15 and / or the transmitter 12. Such a cable line could for example be applied directly to the transport line 5. In a direct cable connection can be dispensed with an A / D conversion in the sensor 11.
- the Einblasspitze 10 is introduced with its injection opening 13 ahead through an opening 21 in the insulation chamber 20.
- the setting unit 4 controls both the stirring unit 9, the rotary valve 8 or the metering slide and the blowing fan 3.
- the setting unit 4 also ensures that the blow-off valve 6 is closed, so that the conveying air of the blowing blower 3 reaches the rotary valve 8 and the blow-in insulation 22nd through the transport line 5 of the injection tip 10 supplies.
- the blow-in insulation 22, which is conveyed, exits from the injection opening 13 and fills the insulation chamber.
- the sensor 11 continuously measures the injection pressure and transmits it to the setting unit 4.
- the setting unit 4 will control the injection blower 3 and / or the stirring unit 9 and / or the insulation dosing in such a way that the injection pressure at the injection tip 10 again reaches the required nominal value or corresponds to a required course.
- an abrupt increase in the injection pressure will set.
- This increase in the injection pressure is also detected by the sensor 11 and transmitted via the transmitter 12 and the transmitter 15 to the setting unit 4.
- the setting unit 4 will open the purge valve 6 immediately due to the abrupt increase in pressure.
- a blow-off valve 6 a spring or druckbelastetes or an electromagnetic plate or plug valve can be used. Due to the immediate opening of the blow-off valve 6, the conveying air of the blow-in blower 3 is no longer supplied to the rotary valve 8, so that no blow-in insulation is conveyed to the blow-in tip 10. Of course, at the same time the performance of the blowing fan 3 is reduced or completely turned off.
- the stirring unit 9 is likewise reduced or completely stopped.
- the immediate opening of the blow-off valve 6 ensures that the blow-in pressure in the blow-in tip 10 can be reduced immediately. This pressure reduction can take place independently of the inertia of the blowing-in blower 3.
- the conveying air which comes from the leakage of the blowing fan 3, is blown out via the blow-off valve 6. Since this blow-off valve 6 is located in front of the stirring unit 9, this conveying air can easily be discharged to the environment. No blow-in insulation is blown out and there is no unnecessary generation of dust.
- the blowing fan 3 can be controlled down so fast by means of frequency converter that no pressure peaks can arise.
- FIG. 2 shows an inventive injection tip 10 with an injection lance 18, wherein the injection lance 18 is inserted into an insulation chamber 20.
- the injection tip 10 is coupled directly to the end of a transport line 5.
- the transported Einblasdämmstoffmaterial is shown by an arrow in the transport line 5.
- the Einblasspitze 10 consists essentially of the injection lance 18.
- a sensor 11 is arranged in the transition region of the transport line 5 to the injection lance 18.
- This is a wired sensor, which directly with a remote control 15 (see FIG. 1 ) or with an adjustment unit 4 of a blowing machine 2 (both FIG. 1 ) can be connected.
- the sensor 11 can also be configured such that it can be connected to the hand-held transmitter 15 without cables or directly to the setting unit 4.
- the subsidized with the Einblasdämmstoff air must be able to leave the insulation chamber 20 during filling again.
- the injection lance 18 is also equipped with a vent pipe 17 for venting in addition to the transport pipe for blowing.
- This vent tube 17 ensures that the subsidized with the Einblasdämmstoff air can escape from the insulation chamber 20 again.
- the vent pipe 17 does not have to reach the exhaust opening 13 of the Einblasspitze 18, but have at least one air inlet within the Dämmstoffbib 20.
- FIG. 3 is a detailed view of a transport line 5 with integrated sensor 11 shown.
- the transport line consists of a ribbed tube with a corresponding wall 19.
- the sensor 11 is integrated in the wall 19 so that the inside of the sensor 11 is flush with the inside of the fin tube.
- the outer dimensions of the sensor 11 are dimensioned so that it can be arranged with its outer side approximately flush with the ribs of the finned tube.
- a transmitter 12 is simultaneously integrated, which communicates with a hand-held transmitter 15 and / or a blowing machine 2 (see FIG. 1 ).
- the sensor 11 has a battery, which, however, is not shown.
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Claims (15)
- Pointe d'injection (10) destinée à injecter des substances isolantes (22) dans des chambres (20) à substances isolantes, la pointe d'injection (10) présentant un capteur (11) et des moyens qui transfèrent des données de fonctionnement de la pointe d'injection (10),
caractérisée en ce que
le capteur (11) est configuré de telle sorte que les données de fonctionnement comprennent une pression statique et une pression dynamique d'injection et/ou un débit massique de la substance isolante (22) à injecter et/ou de l'air de transport. - Pointe d'injection (10) selon la revendication 1,
caractérisée en ce que la pointe d'injection (10) présente un moyen de mesure (25) qui saisit des données d'une chambre (20) à remplir de substance isolante, en particulier les dimensions intérieures de la chambre (20) à substance isolante et/ou la nature de la surface intérieure de la chambre (20) à substance isolante. - Pointe d'injection (10) selon les revendications 1 ou 2, caractérisée en ce que le capteur (11) et/ou le moyen de mesure (25) peuvent être reliés ou sont reliés à un émetteur (12) qui transmet les données de fonctionnement et/ou des données à une unité de réglage (4).
- Pointe d'injection (10) selon la revendication 3,
caractérisée en ce que l'émetteur (12) est conçu pour transférer des données à l'aide d'un câble et/ou sans câble. - Ensemble d'injection (1) destiné à injecter des substances isolantes (22) dans des chambres (20) à substance isolante, l'ensemble comportant :une machine d'injection (2) qui présente un ventilateur d'injection (3), une unité de dosage et une unité de réglage (4) qui commande ou règle la capacité de transport du ventilateur d'injection (3) et/ou de l'unité de dosage et/ou la quantité de substance isolante (22) à injecter etun conduit de transport (5) doté d'une ouverture d'injection (13),le conduit de transport (5) présentant à proximité de l'ouverture d'injection (13) un capteur (11) de mesure et des moyens de transfert de données de fonctionnement de l'ouverture d'injection,
caractérisé en ce que
le capteur (11) est configuré de telle sorte que les données de fonctionnement comprennent une pression statique et une pression dynamique d'injection et/ou un débit massique de la substance isolante (22) à injecter et/ou de l'air de transport. - Ensemble d'injection (1) selon la revendication 5,
caractérisé en ce que l'ensemble d'injection (1) présente un moyen de mesure (25) qui saisit des données d'une chambre (20) à remplir de substance isolante, en particulier les dimensions intérieures de la chambre (20) à substance isolante et/ou la nature de la surface intérieure de la chambre (20) à substance isolante. - Ensemble d'injection (1) selon les revendications 5 ou 6, caractérisé en ce que l'unité de réglage (4) est reliée ou peut être reliée au capteur (11) et/ou au moyen de mesure (25) et en ce que la capacité de transport du ventilateur d'injection (3) et/ou de l'unité de dosage et/ou de la quantité à remplir dans la chambre à substance isolante peut être réglée et en particulier régulée en fonction des données de fonctionnement mesurées et/ou de données.
- Ensemble d'injection (1) selon l'une des revendications 5 à 7, caractérisé en ce que l'unité de réglage (4) peut être reliée par câble et/ou sans câble au capteur (11) et/ou au moyen de mesure (25).
- Ensemble d'injection (1) selon l'une des revendications 5 à 8, caractérisé en ce que la capacité de transport du ventilateur d'injection (3) et/ou de l'unité de dosage et/ou de la quantité de substance isolante à placer dans la chambre à substance isolante peuvent être réglées et en particulier régulées de telle sorte que la pression d'injection et/ou le débit massique au niveau du capteur (11) correspondent à une valeur apte à être prédéterminée ou prédéterminée ou à une évolution présélectionnée.
- Ensemble d'injection (1) selon l'une des revendications 5 à 9, caractérisé en ce que l'ensemble comporte une soupape d'échappement (6) et en ce que la soupape d'échappement (6) peut être commandée en fonction de données de fonctionnement et/ou de données.
- Procédé d'injection de substances isolantes (22) dans des chambres (20) à substance isolante au moyen d'un ensemble d'injection (1) et en particulier d'un ensemble d'injection (1) selon l'une des revendications 5 à 9, le procédé comportant les étapes qui consistent à :mesurer des paramètres de fonctionnement à proximité d'une ouverture d'injection (13) au moyen d'un capteur (11), les données de fonctionnement comprenant la pression statique et la pression dynamique d'injection et/ou le débit massique de substance isolante (22) à injecter et/ou de l'air de transport ettransférer à une unité de réglage (4) les paramètres de fonctionnement mesurés.
- Procédé selon la revendication 11, comprenant en outre l'étape qui consiste à saisir des données concernant une chambre (20) à remplir de substance isolante, en particulier les dimensions intérieures de la chambre (20) à substance isolante et/ou la nature de la surface intérieure de la chambre (20) à substance isolante.
- Procédé selon les revendications 11 ou 12, caractérisé en ce que les paramètres de fonctionnement et/ou les données sont transmis par câble et/ou sans câble.
- Procédé selon l'une des revendications 11 à 13, comportant en outre les étapes qui consistent à :comparer les paramètres de fonctionnement mesurés à des valeurs préalablement réglables ou réglées etréguler la capacité de transport du ventilateur d'injection (3) et/ou de l'unité de dosage et/ou de la quantité de substance isolante à placer dans la chambre à substance isolante de telle sorte que les données de fonctionnement correspondent à des valeurs préalablement réglables ou réglées et/ou aux données saisies ou suivent une évolution présélectionnée.
- Procédé selon l'une des revendications 11 à 14,
caractérisé en ce qu'une soupape d'échappement (6) est ouverte dès qu'un paramètre de fonctionnement dépasse une valeur réglable ou réglée.
Priority Applications (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
PL13164909T PL2657432T3 (pl) | 2012-04-23 | 2013-04-23 | Końcówka wdmuchująca, urządzenie wdmuchujące oraz sposób wdmuchiwania wdmuchiwanych materiałów izolacyjnych do komór materiału izolacyjnego |
EP13164909.7A EP2657432B1 (fr) | 2012-04-23 | 2013-04-23 | Tête d'injection, dispositif d'injection et procédé d'injection de matériau isolant d'injection dans des chambres de matériau isolant |
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
EP20120165109 EP2657431A1 (fr) | 2012-04-23 | 2012-04-23 | Tête d'injection, dispositif d'injection et procédé d'injection de matériau isolant d'injection dans des chambres de matériau isolant |
EP13164909.7A EP2657432B1 (fr) | 2012-04-23 | 2013-04-23 | Tête d'injection, dispositif d'injection et procédé d'injection de matériau isolant d'injection dans des chambres de matériau isolant |
Publications (3)
Publication Number | Publication Date |
---|---|
EP2657432A2 EP2657432A2 (fr) | 2013-10-30 |
EP2657432A3 EP2657432A3 (fr) | 2014-07-16 |
EP2657432B1 true EP2657432B1 (fr) | 2016-12-28 |
Family
ID=48128224
Family Applications (2)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
EP20120165109 Withdrawn EP2657431A1 (fr) | 2012-04-23 | 2012-04-23 | Tête d'injection, dispositif d'injection et procédé d'injection de matériau isolant d'injection dans des chambres de matériau isolant |
EP13164909.7A Active EP2657432B1 (fr) | 2012-04-23 | 2013-04-23 | Tête d'injection, dispositif d'injection et procédé d'injection de matériau isolant d'injection dans des chambres de matériau isolant |
Family Applications Before (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
EP20120165109 Withdrawn EP2657431A1 (fr) | 2012-04-23 | 2012-04-23 | Tête d'injection, dispositif d'injection et procédé d'injection de matériau isolant d'injection dans des chambres de matériau isolant |
Country Status (3)
Country | Link |
---|---|
EP (2) | EP2657431A1 (fr) |
DK (1) | DK2657432T3 (fr) |
PL (1) | PL2657432T3 (fr) |
Families Citing this family (8)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
WO2015197018A1 (fr) * | 2014-06-26 | 2015-12-30 | 苏州宝时得电动工具有限公司 | Dispositif d'application de peinture |
CN105201181B (zh) * | 2014-06-26 | 2018-02-23 | 苏州宝时得电动工具有限公司 | 涂料涂覆装置 |
NL2014884B1 (en) * | 2015-05-29 | 2017-01-31 | S Nooijens Beheer B V | An apparatus and a method for dispensing bead insulation into cavity walls for providing insulation between two skins of the walls. |
CN105040961B (zh) * | 2015-07-13 | 2017-09-26 | 马鞍山市志诚科技有限公司 | 一种自动送料的建筑喷涂机器人 |
CN106049836A (zh) * | 2016-07-21 | 2016-10-26 | 万象设计江苏有限责任公司 | 一种带压力显示的墙面腻子涂刷器 |
CN106088548A (zh) * | 2016-08-08 | 2016-11-09 | 上海同济环境工程科技有限公司 | 一种混凝土表面涂层智能电动刷 |
CN111270819B (zh) * | 2020-02-22 | 2021-09-03 | 北京正升建设工程有限公司 | 一种墙面粉刷装置 |
FR3125518A1 (fr) * | 2021-07-26 | 2023-01-27 | Saint-Gobain Isover | Machine de soufflage. |
Family Cites Families (9)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
GB2124194B (en) * | 1981-03-13 | 1985-06-26 | Ecomax | Insulation dispensing apparatus |
GB2103695B (en) * | 1981-06-12 | 1985-09-25 | Cape Insulation Ltd | Cavity wall insulation |
GB2131862A (en) * | 1982-12-11 | 1984-06-27 | John Barry Jackson | A system for filling a cavity wall |
NL8204888A (nl) | 1982-12-17 | 1984-07-16 | Rouwenhorst B V | Werkwijze en inrichting voor het isoleren van een spouwmuur. |
DE19906138A1 (de) * | 1999-02-13 | 2000-08-24 | Isofloc Oekologische Bautechni | Vorrichtung und Einrichtung zum Befüllen von hohlen Rahmenelementen mit Dämmstoff-Flocken und Verfahren zur Anwendung der Vorrichtung |
DE20106489U1 (de) | 2001-04-14 | 2001-09-06 | Gleixner, Markus, 93482 Pemfling | Vorrichtung zum Einblasen von Einblasdämmstoffen in Dämmstoffkammern von Wand-, Decken- oder Dachelementen |
EP2146015A1 (fr) | 2008-07-17 | 2010-01-20 | Stefan Haupt | Procédé et dispositif d'injection d'un isolant |
DE202008000090U1 (de) | 2008-07-17 | 2008-09-18 | Haupt, Stefan | Injektionsanordnung zur Einbringung einer Dämmung |
EP2333199A1 (fr) * | 2009-12-03 | 2011-06-15 | isofloc AG | Dispositif et procédé d'injection de matériau isolant dans des chambres de matériau isolant |
-
2012
- 2012-04-23 EP EP20120165109 patent/EP2657431A1/fr not_active Withdrawn
-
2013
- 2013-04-23 EP EP13164909.7A patent/EP2657432B1/fr active Active
- 2013-04-23 DK DK13164909.7T patent/DK2657432T3/en active
- 2013-04-23 PL PL13164909T patent/PL2657432T3/pl unknown
Non-Patent Citations (1)
Title |
---|
None * |
Also Published As
Publication number | Publication date |
---|---|
EP2657432A2 (fr) | 2013-10-30 |
EP2657431A1 (fr) | 2013-10-30 |
EP2657432A3 (fr) | 2014-07-16 |
PL2657432T3 (pl) | 2017-07-31 |
DK2657432T3 (en) | 2017-03-13 |
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