WO2022267669A1 - 具有自锁功能的驱动器及线性致动器 - Google Patents
具有自锁功能的驱动器及线性致动器 Download PDFInfo
- Publication number
- WO2022267669A1 WO2022267669A1 PCT/CN2022/088648 CN2022088648W WO2022267669A1 WO 2022267669 A1 WO2022267669 A1 WO 2022267669A1 CN 2022088648 W CN2022088648 W CN 2022088648W WO 2022267669 A1 WO2022267669 A1 WO 2022267669A1
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- WIPO (PCT)
- Prior art keywords
- self
- friction
- drive shaft
- ring
- driver
- Prior art date
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Classifications
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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
- F16H—GEARING
- F16H25/00—Gearings comprising primarily only cams, cam-followers and screw-and-nut mechanisms
- F16H25/18—Gearings comprising primarily only cams, cam-followers and screw-and-nut mechanisms for conveying or interconverting oscillating or reciprocating motions
- F16H25/20—Screw mechanisms
- F16H25/2015—Means specially adapted for stopping actuators in the end position; Position sensing means
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02K—DYNAMO-ELECTRIC MACHINES
- H02K7/00—Arrangements for handling mechanical energy structurally associated with dynamo-electric machines, e.g. structural association with mechanical driving motors or auxiliary dynamo-electric machines
- H02K7/10—Structural association with clutches, brakes, gears, pulleys or mechanical starters
- H02K7/116—Structural association with clutches, brakes, gears, pulleys or mechanical starters with gears
- H02K7/1163—Structural association with clutches, brakes, gears, pulleys or mechanical starters with gears where at least two gears have non-parallel axes without having orbital motion
- H02K7/1166—Structural association with clutches, brakes, gears, pulleys or mechanical starters with gears where at least two gears have non-parallel axes without having orbital motion comprising worm and worm-wheel
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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
- F16H—GEARING
- F16H1/00—Toothed gearings for conveying rotary motion
- F16H1/02—Toothed gearings for conveying rotary motion without gears having orbital motion
- F16H1/04—Toothed gearings for conveying rotary motion without gears having orbital motion involving only two intermeshing members
- F16H1/12—Toothed gearings for conveying rotary motion without gears having orbital motion involving only two intermeshing members with non-parallel axes
- F16H1/16—Toothed gearings for conveying rotary motion without gears having orbital motion involving only two intermeshing members with non-parallel axes comprising worm and worm-wheel
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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
- F16H—GEARING
- F16H25/00—Gearings comprising primarily only cams, cam-followers and screw-and-nut mechanisms
- F16H25/18—Gearings comprising primarily only cams, cam-followers and screw-and-nut mechanisms for conveying or interconverting oscillating or reciprocating motions
- F16H25/20—Screw mechanisms
- F16H25/22—Screw mechanisms with balls, rollers, or similar members between the co-operating parts; Elements essential to the use of such members
- F16H25/2285—Screw mechanisms with balls, rollers, or similar members between the co-operating parts; Elements essential to the use of such members with rings engaging the screw shaft with the inner perimeter, e.g. using inner rings of a ball bearing
- F16H25/229—Eccentric rings with their axis arranged substantially parallel to the screw shaft axis
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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
- F16H—GEARING
- F16H25/00—Gearings comprising primarily only cams, cam-followers and screw-and-nut mechanisms
- F16H25/18—Gearings comprising primarily only cams, cam-followers and screw-and-nut mechanisms for conveying or interconverting oscillating or reciprocating motions
- F16H25/20—Screw mechanisms
- F16H25/24—Elements essential to such mechanisms, e.g. screws, nuts
- F16H25/2454—Brakes; Rotational locks
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02K—DYNAMO-ELECTRIC MACHINES
- H02K7/00—Arrangements for handling mechanical energy structurally associated with dynamo-electric machines, e.g. structural association with mechanical driving motors or auxiliary dynamo-electric machines
- H02K7/08—Structural association with bearings
- H02K7/081—Structural association with bearings specially adapted for worm gear drives
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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
- F16H—GEARING
- F16H25/00—Gearings comprising primarily only cams, cam-followers and screw-and-nut mechanisms
- F16H25/18—Gearings comprising primarily only cams, cam-followers and screw-and-nut mechanisms for conveying or interconverting oscillating or reciprocating motions
- F16H25/20—Screw mechanisms
- F16H2025/2031—Actuator casings
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02K—DYNAMO-ELECTRIC MACHINES
- H02K2205/00—Specific aspects not provided for in the other groups of this subclass relating to casings, enclosures, supports
- H02K2205/03—Machines characterised by thrust bearings
Definitions
- the invention relates to the field of drivers, in particular to a driver and a linear actuator with a self-locking function.
- the principle of torsion spring self-locking is similar.
- the material of the torsion spring seat is POM100P.
- the friction coefficient will be reduced after the torsion spring seat runs for a period of time, resulting in a decline in self-locking performance.
- the technical problem to be solved by the present invention is to overcome the deficiencies of the prior art and propose a driver with a self-locking function, which has stable self-locking performance.
- the driver with self-locking function includes a casing and a drive shaft for outputting power, the end of the casing is provided with an end cover, and the end cover is provided with a self-locking mechanism for applying a self-locking force to the drive shaft,
- the self-locking mechanism includes a friction seat set on the drive shaft and rotates synchronously with the drive shaft, a friction ring installed in the end cover and kept fixed with the end cover, the friction seat and the friction ring are in interference fit , to realize the two-way self-locking of the drive shaft.
- the friction ring includes an inner ring and an outer ring, the friction ring is sleeved on the outer periphery of the friction seat through the inner ring, and the outer ring is clamped with the inner wall of the end cover to limit the friction ring circular rotation.
- one of the outer ring and the inner wall of the end cover is provided with a clamping slot, and the other is provided with a clamping block matching the clamping slot.
- the friction ring also includes a positioning flange connected to the outer ring, a bearing is provided outside the drive shaft, a positioning step is provided on the inner wall of the end cover, and the positioning flange is limited It is located between the bearing and the positioning step.
- the inner ring is provided with a notch, the two ends of the notch are provided with connecting parts extending to the outer ring, and the two connecting parts define an oil groove for filling lubricating oil.
- the friction seat is fixed on the drive shaft through a pin shaft.
- the pin shaft radially penetrates the drive shaft, and the side of the friction seat is provided with a mounting groove, and the pin shaft is installed in the mounting groove with an interference fit.
- an avoidance end is provided at the end of the friction seat away from the installation groove, and the avoidance end is tapered to avoid the end cover.
- the drive shaft is respectively provided with grooves on both sides of the self-locking mechanism, and the grooves are fitted with snap springs for axially positioning the self-locking mechanism.
- a linear actuator including the above-mentioned driver with self-locking function.
- the invention discloses a driver.
- the driver is usually applied to equipment.
- the drive shaft outputs torque to drive the device.
- the self-locking mechanism provided in the driver can generate a self-locking force acting on the drive shaft, which can avoid damage caused by external force.
- the resulting drive shaft reverses and remains stable;
- the relative rotation between the friction seat and the friction ring can generate friction force, which is the self-locking force of the self-locking mechanism.
- the friction ring is fixedly installed on the end cover, and the connection between the end cover and the shell is generally fixed by screws. This enables the friction ring to remain fixed to the end cover so that it will not be driven by the friction seat to rotate, and the friction seat can maintain synchronous rotation with the drive shaft.
- the friction ring includes an inner ring and an outer ring, the friction ring is fitted on the outer periphery of the friction seat through the inner ring, and the outer ring is engaged with the inner wall of the end cover to limit the circumferential rotation of the friction ring .
- the clamping method makes the cooperation between the friction ring and the end cover relatively simple, and does not need to pass through
- the way of interference fit will not cause damage to the friction ring or the end cover during the assembly process; the friction ring is set outside the friction seat, and the reaction force of the friction seat to the friction ring is in the radial direction of the friction ring, not in the In the axial direction, it will not affect the fit of the friction ring and the end cover.
- one of the outer ring and the inner wall of the end cap is provided with a card slot, and the other is provided with a card block matching the card slot.
- the friction ring also includes a positioning flange connected to the outer ring, a bearing is provided outside the drive shaft, and a positioning step is provided on the inner wall of the end cover, and the positioning flange is limited by the between the bearing and the positioning step.
- the bearing is set on the drive shaft, its inner ring can rotate synchronously with the drive shaft.
- the friction ring is installed in the end cover, install the end cover on the shell.
- the positioning flange is located on the positioning step and the outer ring of the bearing In between, the position of the positioning flange in the axial direction is limited, thereby limiting the displacement of the friction ring in the axial direction, and avoiding the structural dispersion of the self-locking mechanism during use.
- the inner ring is provided with a notch
- the two ends of the notch are provided with connecting parts extending to the outer ring
- the two connecting parts define an oil groove for filling lubricating oil.
- the friction seat is fixed on the drive shaft through a pin shaft.
- the rotation of the friction seat relative to the drive shaft can be limited by the pin shaft, so that the friction seat can keep synchronous rotation with the drive shaft, and the friction seat can be fixed by the pin shaft, so that the friction seat does not need to be installed on the drive shaft with interference fit, so that The drive shaft will not be damaged during the installation process, and the drive shaft will not rely on the friction between the friction seat to maintain the synchronous rotation of the friction seat, and will not cause damage to the drive shaft during operation.
- the pin shaft radially penetrates the drive shaft, and the side of the friction seat is provided with an installation groove, and the pin shaft is installed in the installation groove with an interference fit.
- the end of the friction seat away from the installation groove is provided with an escape end, and the avoidance end is tapered to avoid the end cover. Since the friction seat needs to cooperate with the pin shaft, and the pin shaft is the part used to drive the friction seat during the rotation of the drive shaft, so the pin shaft cannot be deformed, and the pin shaft has a certain diameter, so the friction seat also has a A certain thickness, if the friction seat is too thick, it will contact the end cover and affect the installation of the end cover and wear the inner surface of the end cover. By setting the avoidance end on the friction seat, the thickness of the friction seat will not be reduced, and it will also avoid end cap.
- the drive shaft is provided with grooves on both sides of the self-locking mechanism, and the grooves are fitted with snap rings for axially positioning the self-locking mechanism.
- the snap ring After the snap ring is installed in the groove, it protrudes from the surface of the drive shaft, so that the self-locking mechanism can be positioned, and the performance of the self-locking mechanism can be affected by dispersion of the friction seat and the friction ring.
- the invention also discloses a linear actuator, which includes the above-mentioned driver.
- the linear actuator controls the movement of the object in the linear direction through the column.
- the power of the column is provided by the driver.
- a self-locking mechanism is arranged in the driver, which can prevent the column from moving in a straight line. Retraction occurs under the action of external force, and the rotation of the drive shaft can be stopped quickly, which improves the telescopic accuracy of the column.
- FIG. 1 is a schematic structural diagram of a driver in an embodiment of the present invention
- Fig. 2 is the explosion diagram A of the driver in the embodiment of the present invention.
- Fig. 3 is the enlarged schematic diagram of place A in Fig. 2;
- Fig. 4 is the explosion diagram B of the driver in the embodiment of the present invention.
- Fig. 5 is the enlarged schematic diagram of place B in Fig. 2;
- Fig. 6 is a cross-sectional view of the driver in the embodiment of the present invention.
- Housing 100 drive shaft 110, end cover 120, block 130, bearing 140, positioning step 150, pin shaft 160, through hole 170, groove 180;
- Friction ring 300 oil groove 310 , inner ring 320 , outer ring 330 , notch 340 , connecting portion 350 , locking groove 360 , and positioning flange 370 .
- first and second are used for descriptive purposes only, and cannot be interpreted as indicating or implying relative importance or implicitly specifying the quantity of indicated technical features. Thus, a feature defined as “first” and “second” may explicitly or implicitly include one or more of these features.
- plural means two or more, unless otherwise clearly defined.
- a first feature being “on” or “under” a second feature may include direct contact between the first and second features, and may also include the first and second features Not in direct contact but through another characteristic contact between them.
- “above”, “above” and “above” the first feature on the second feature include that the first feature is directly above and obliquely above the second feature, or simply means that the first feature is horizontally higher than the second feature.
- "Below”, “under” and “under” the first feature to the second feature include that the first feature is directly below and obliquely below the second feature, or simply means that the first feature is less horizontally than the second feature.
- the embodiment of the present invention discloses a driver with a self-locking function, including a housing 100 and a drive shaft 110 for outputting power, the end of the housing 100 is provided with an end cover 120, and the end cover 120 is provided with a A self-locking mechanism that applies a self-locking force to the drive shaft 110.
- the self-locking mechanism includes a friction seat 200 that is sleeved on the drive shaft 110 and rotates synchronously with the drive shaft 110, and a friction seat that is installed in the end cover 120 and remains fixed with the end cover 120.
- the ring 300 , the friction seat 200 and the friction ring 300 are in interference fit to realize bidirectional self-locking of the drive shaft 110 .
- the invention discloses a driver.
- the driver is usually applied to equipment.
- the drive shaft 110 outputs torque to drive the device.
- the self-locking mechanism provided in the driver can generate a self-locking force acting on the drive shaft 110, which can avoid The drive shaft 110 reversed due to the action can be kept stable;
- the relative rotation between the friction seat 200 and the friction ring 300 can generate friction force, which is the self-locking force of the self-locking mechanism.
- the friction ring 300 is fixedly installed on the end cover 120, and the connection between the end cover 120 and the housing 100 is generally The fixed connection is carried out by screws, so that the friction ring 300 can keep fixed with the end cover 120 so as not to be rotated by the friction seat 200, and the friction seat 200 can keep synchronous rotation with the drive shaft 110, when the drive shaft 110 starts to rotate , there will be friction between the friction seat 200 and the friction ring 300.
- the drive shaft 110 rotates normally, the power generated by the driver is enough to overcome the friction force.
- the friction force can make the drive shaft 110 quickly stop, when the drive shaft 110 is stationary, the static friction between the friction seat 200 and the friction ring 300 can make the drive shaft 110 rotate without external force, and has stable self-locking performance, and the forward rotation of the drive shaft 110 and In reverse, the magnitude of the friction force will not change, that is, the drive shaft 110 can be bidirectionally self-locked.
- the material of the friction ring 300 is PEEK
- the material of the friction seat 200 is PPS or PEEK.
- the friction ring 300 and the friction seat 200 have good high temperature resistance, and will not make their own friction coefficient drop when the temperature rises, so that they can maintain Stable self-locking performance.
- the friction ring 300 is set on the friction seat 200.
- the friction seat 200 is driven to rotate relative to the friction ring 300.
- the drive shaft 110 has a relatively high speed.
- the friction ring 300 and the friction seat 200 will wear to different degrees, which will reduce the friction coefficient of the two, thereby reducing the self-locking force.
- the friction ring 300 is provided with an oil groove 310, which can store Lubricating oil can adhere to the outer periphery of the friction seat 200 during the rotation of the friction seat 200 and enter between the friction seat 200 and the friction ring 300, thereby reducing wear, prolonging the life of the self-locking mechanism, and reducing heat generation.
- the friction ring 300 includes an inner ring 320 and an outer ring 330 , the friction ring 300 is fitted on the outer periphery of the friction seat 200 through the inner ring 320 , and the outer ring 330 is engaged with the inner wall of the end cover 120 to limit the circumferential rotation of the friction ring 300 .
- the clamping method makes the cooperation between the friction ring 300 and the end cover 120 relatively simple , and there is no need for an interference fit, which will not cause damage to the friction ring 300 or the end cover 120 during the assembly process; the friction ring 300 is set outside the friction seat 200, and the reaction force of the friction seat 200 to the friction ring 300 is The radial direction of the friction ring 300 is not in the axial direction, so the cooperation between the friction ring 300 and the end cover 120 will not be affected.
- the above-mentioned oil groove 310 is defined by the inner ring 320, and the inner ring 320 is provided with a notch 340, and the two ends of the notch 340 are provided with connecting parts 350 extending to the outer ring 330, and the two connecting parts 350 and the outer ring 330 form a
- the oil groove 310, the outer circumference of the friction seat 200 is offset against the inner ring 320, that is, connected to the oil groove 310, so that the lubricating oil can be conveniently contacted with the outer circumference of the friction seat 200, and when the friction seat 200 is installed in the inner ring 320, the gap 340 is also A certain deformation may occur under the extrusion of the friction seat 200 , thereby enlarging the width of the notch 340 and facilitating the installation of the friction seat 200 .
- the number of gaps 340 can also be set to be multiple, one is to increase the storage capacity of lubricating oil, and the other is to reduce the influence of the reaction force on the inner
- the friction ring 300 is clamped in the end cover 120 through the outer ring 330.
- Fig. 3 and Fig. 6 in another embodiment of the present invention, it is specifically described How does the friction ring 300 cooperate with the end cover 120 .
- the outer ring 330 is provided with a card slot 360 that is sunken toward the center of the circle, and the inner wall of the end cover 120 is provided with a card block 130 protruding toward the center of the circle.
- friction can be limited
- the rotation of the ring 300 and the size of the locking groove 360 can be slightly larger than the locking block 130. Even if the friction ring 300 has a certain angle change in the circumferential direction, it is not enough to affect the use, and the design requirements for the mold can be relaxed.
- the locking block 130 may also be provided on the outer ring 330
- the locking slot 360 may be provided on the inner wall of the end cover 120 .
- the friction ring 300 also includes a positioning flange 370 connected with the outer ring 330, the positioning flange 370 is an annular convex edge, which has the same diameter and inner diameter as the outer ring 330 of the friction ring 300.
- the drive shaft 110 is provided with a bearing 140.
- the bearing 140 is sleeved on the drive shaft 110.
- the outer ring is in contact with the inner wall of the housing 100.
- the inner wall of the end cover 120 is provided with a positioning step 150.
- the end cover 120 is installed on the casing 100.
- the positioning flange 370 is located on the positioning step 150 Between the outer ring of the bearing 140 and the position of the positioning flange 370 in the axial direction is limited, thereby limiting the displacement of the friction ring 300 in the axial direction.
- the positioning flange 370 can be clamped by the positioning step 150 and the outer ring of the bearing 140, or a certain gap can be left. Although there will be a certain displacement groove 180 in the axial direction, the displacement distance is not enough to affect the self-locking mechanism of stability.
- the installation structure of the friction seat 200 on the drive shaft 110 is specifically illustrated.
- the friction seat 200 is set on the drive shaft 110 and fixed by the pin shaft 160.
- the pin shaft 160 can be driven to rotate synchronously, thereby driving the rotation of the friction seat 200, and the friction seat 200 is fixed by the pin shaft 160 , the pin shaft 160 has the function of positioning and fixing the friction seat 200, and there is no need to install the friction seat 200 on the drive shaft 110 with an interference fit, so the drive shaft 110 will not be damaged during the process of installing the friction seat 200 on the drive shaft 110, And the driving shaft 110 will not rely on the friction force between the friction seat 200 to maintain the synchronous rotation of the friction seat 200 , and will not cause damage to the driving shaft 110 during operation.
- the existing motor self-locking structure usually installs a collar on the motor shaft with an interference fit, and limits the circumferential rotation of the collar.
- a braking force is generated between the collar and the motor shaft.
- the self-locking mechanism when the self-locking mechanism is assembled, it will not cause damage to the parts in the driver, and there is no relative friction between the drive shaft 110 and the friction seat 200, so the drive shaft 110 will not be worn.
- the drive shaft 110 is provided with a radially through hole 170, the pin shaft 160 is arranged in the through hole 170, and the side of the friction seat 200 is provided with a mounting groove 210, and the pin shaft 160 is installed in the mounting groove 210 with an interference fit.
- install the pin shaft 160 first, then align the installation groove 210 with the pin shaft 160 to complete the cooperation between the friction seat 200 and the pin shaft 160, and the assembly is more convenient.
- the interference fit of 200 can keep the friction seat 200 on the drive shaft 110 and limit the axial displacement of the friction seat 200 on the drive shaft 110 , thereby ensuring the stability of the self-locking mechanism.
- the friction seat 200 needs to cooperate with the pin shaft 160, and the pin shaft 160 is a part used to drive the friction seat 200 during the rotation of the drive shaft 110, so the pin shaft 160 cannot be deformed, and the pin shaft 160 has a certain diameter, so the friction seat 200 also has a certain thickness to accommodate the pin shaft 160. If the friction seat 200 is too thick, it will contact the end cover 120 and affect the installation of the end cover 120 and wear the inner surface of the end cover 120.
- the friction seat 200 is far away from the installation groove 210
- An avoidance end 220 is provided at one end, and the avoidance end 220 is tapered, which can avoid the cover 120 of the end 220, so that the self-locking mechanism will not be affected by the end cover 120, and the thickness of the friction seat 200 will not be reduced.
- grooves 180 are respectively arranged on both sides of the self-locking mechanism on the drive shaft 110, and the grooves 180 are clamped with snap rings for axially positioning the self-locking mechanism, and the jumpers protrude after being installed in the grooves 180
- the friction seat 200 can be limited so as to prevent the friction seat 200 from disengaging from the pin shaft 160 , so as to ensure that the friction seat 200 and the friction ring 300 remain in cooperation.
- the present invention also discloses a linear actuator, wherein the linear actuator is provided with the driver with the self-locking function disclosed above.
- the linear actuator controls the movement of the object in the linear direction through the column.
- the power of the column is provided by the driver.
- a self-locking mechanism is installed in the driver to avoid the retraction of the column under the action of external force, and the rotation of the drive shaft can be very fast.
- the ground stop improves the telescopic accuracy of the column.
- the expansion and contraction speed of the conventional telescopic column is 35mm/s, and the lead of the internal screw is 10+10. Since the lead of the screw is small, the method of core + torsion spring + screw is conventionally used to realize self-locking. If you increase the lifting speed of the conventional telescopic column to 80mm/s-150mm/s, or increase the load of the conventional telescopic column to 4 times the static self-locking, if you still use the core + torsion spring + screw rod for self-locking, Due to the acceleration of the lifting speed, the speed of the motor will increase and the noise will increase. If the lead of the screw is changed to 20+20, the load test of the whole table will drop due to the decrease of the self-locking force of the screw.
- the linear actuator adopts the driver of the present application, and when the overall load of the lifting device is loaded, the lead of the screw rod is increased or the torsion spring is canceled, and the whole table load can be lifted and self-locked.
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- Engineering & Computer Science (AREA)
- General Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
- Power Engineering (AREA)
- Snaps, Bayonet Connections, Set Pins, And Snap Rings (AREA)
- Chairs For Special Purposes, Such As Reclining Chairs (AREA)
- Connection Of Motors, Electrical Generators, Mechanical Devices, And The Like (AREA)
Abstract
Description
Claims (10)
- 具有自锁功能的驱动器,包括外壳(100)和用于输出动力的驱动轴(110),其特征在于,所述外壳(100)端部设有端盖(120),所述端盖(120)内设有用于向所述驱动轴(110)施加自锁力的自锁机构,所述自锁机构包括套装在驱动轴(110)上并随驱动轴(110)同步转动的摩擦座(200)、安装在所述端盖(120)内且与端盖(120)保持固定的摩擦环(300),所述摩擦座(200)与所述摩擦环(300)过盈配合,以实现对所述驱动轴(110)的双向自锁。
- 根据权利要求1所述的具有自锁功能的驱动器,其特征在于,所述摩擦环(300)包括内圈(320)和外圈(330),所述摩擦环(300)通过内圈(320)套装在所述摩擦座(200)的外周,所述外圈(330)与所述端盖(120)内壁卡接以限制摩擦环(300)的周向转动。
- 根据权利要求2所述的具有自锁功能的驱动器,其特征在于,所述外圈(330)和所述端盖(120)内壁其中之一设有卡槽(360),另一个设有与所述卡槽(360)匹配的卡块(130)。
- 根据权利要求2所述的具有自锁功能的驱动器,其特征在于,所述摩擦环(300)还包括与所述外圈(330)相连的定位凸边(370),所述驱动轴(110)外设有轴承(140),所述端盖(120)内壁设有定位台阶(150),所述定位凸边(370)被限位在所述轴承(140)和所述定位台阶(150)之间。
- 根据权利要求2所述的具有自锁功能的驱动器,其特征在于,所述内圈(320)上设有缺口(340),所述缺口(340)的两端设有延伸至所述外圈(330)的连接部(350),且两个连接部(350)限定出用于填充润滑油的油槽(310)。
- 根据权利要求1所述的具有自锁功能的驱动器,其特征在于,所述摩擦座(200)通过销轴(160)固定在所述驱动轴(110)上。
- 根据权利要求6所述的具有自锁功能的驱动器,其特征在于,所述销轴(160)径向贯穿所述驱动轴(110),所述摩擦座(200)侧部设有安装槽(210),所述 销轴(160)过盈配合地安装在所述安装槽(210)内。
- 根据权利要求7所述的具有自锁功能的驱动器,其特征在于,所述摩擦座(200)远离所述安装槽(210)的一端设有避让端(220),所述避让端(220)呈渐缩状以避让所述端盖(120)。
- 根据权利要求1至8中任一项所述的具有自锁功能的驱动器,其特征在于,所述驱动轴(110)上位于所述自锁机构的两侧分别设有凹槽(180),所述凹槽(180)处卡装用于轴向定位自锁机构的卡簧。
- 线性致动器,其特征在于,包括权利要求1至9中任一项所述的具有自锁功能的驱动器。
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EP22827169.8A EP4257846A4 (en) | 2021-06-24 | 2022-04-24 | DRIVE DEVICE HAVING SELF-LOCKING FUNCTION AND LINEAR ACTUATOR |
US18/271,268 US12247646B2 (en) | 2021-06-24 | 2022-04-24 | Self-locking drive and linear actuator |
US19/025,052 US20250155003A1 (en) | 2021-06-24 | 2025-01-16 | Self-locking drive and linear actuator |
US19/025,195 US20250155004A1 (en) | 2021-06-24 | 2025-01-16 | Self-locking drive and linear actuator |
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