Linear actuator
11473656 ยท 2022-10-18
Assignee
Inventors
Cpc classification
F16H25/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2025/2071
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2057/02034
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H57/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2057/02069
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D43/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K7/06
ELECTRICITY
F16D11/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2025/2081
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16H25/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H57/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The disclosure is a linear actuator. A transmission mechanism includes a motor, a gear set and a screw rod. A releasing mechanism is disposed between the gear set and the screw rod and includes a driving gear, a first clutch, a second clutch and a sliding sleeve. A toggle restraining mechanism includes a stem, a rotating element and a restraining assembly. The rotating element has a restraining hole and a rotating arm. The restraining assembly includes a restraining presser, a restraining spring and an engaging element. The stem is moved to rotate the rotating element, the rotating arm is rotated with the rotating element to push the sliding sleeve. The sliding sleeve is pushed by the rotating arm to separate from the second clutch. The engaging element is engaged in the restraining hole to restrain the rotating element from rotating when the rotating element is rotated to a specific angle.
Claims
1. A linear actuator, comprising: a transmission mechanism, comprising: a motor; a gear set, driven by the motor; and a screw rod, driven by the gear set; a releasing mechanism, disposed between the gear set and the screw rod, the releasing mechanism comprising: a driving gear, connected with the gear set; a first clutch, connected on the driving gear; a second clutch, connected on the screw rod; and a sliding sleeve, being connectable with the first clutch and the second clutch; and a toggle restraining mechanism, disposed on a side of the releasing mechanism, the toggle restraining mechanism comprising: a stem; a rotating element, driven by the stem; and a restraining assembly; wherein the rotating element comprises: a restraining hole; and a rotating arm; the restraining assembly comprises: a restraining presser, connected on the rotating element; a restraining spring, disposed in the restraining presser; and an engaging element, elastically pushed by the restraining spring, wherein the stem is moved by an external force to rotate the rotating element, the rotating arm rotates with the rotating element to push the sliding sleeve, the sliding sleeve is pushed by the rotating arm to separate from the second clutch, and the engaging element is engaged in the restraining hole to restrain the rotating element from rotating when the rotating element rotates to a specific angle.
2. The linear actuator of claim 1, further comprising: a housing, and the housing comprising: a motor case, the motor disposed therein, a gear case, covering the gear set; and an outer tube, adapted to sheathe the screw rod.
3. The linear actuator of claim 1, wherein the transmission mechanism further comprises a bearing and a nut, and the bearing is passed through by the screw rod and is fixed on an outside of the driving gear by the nut.
4. The linear actuator of claim 1, wherein the releasing mechanism further comprises a return spring disposed between the sliding sleeve and the first clutch.
5. The linear actuator of claim 4, wherein the driving gear comprises a notch, a protrusion is disposed on a side of the first clutch facing the driving gear, and the first clutch is connected to the driving gear by embedding the protrusion into the notch.
6. The linear actuator of claim 4, wherein the sliding sleeve further comprises a hollow cylinder, a pushed annular plate surrounding the hollow cylinder and multiple sliding gears disposed in the hollow cylinder, and the sliding sleeve moves in a direction away from the second clutch through the rotating arm pushing the pushed annular plate.
7. The linear actuator of claim 6, wherein the first clutch comprises a first annular plate, and two sides of the return spring elastically abut against the pushed annular plate and the first annular plate respectively.
8. The linear actuator of claim 6, wherein multiple first clutch gears are disposed on a side of the first clutch facing the sliding sleeve, multiple second clutch gears are disposed on a side of the second clutch facing the sliding sleeve, and two sides of the sliding gears engage with the first clutch gears and the second clutch gears respectively.
9. The linear actuator of claim 8, wherein the screw rod comprises a positioning portion, the second clutch comprises an engaging sleeve that the second clutch gears are disposed thereon, the engaging sleeve comprises an engaging hole corresponding to the positioning portion, and the second clutch and the screw rod are associated by the engaging hole and the positioning portion being positioned with each other.
10. The linear actuator of claim 1, wherein the toggle restraining mechanism further comprises a pulling element, a through hole is disposed on an end of the stem, and the pulling element passes through the through hole and connects to the stem.
11. The linear actuator of claim 10, wherein the stem comprises an upright plate disposed on an end thereof passed through by the pulling element.
12. The linear actuator of claim 1, wherein the toggle restraining mechanism further comprises a fixing element, a through hole is disposed on the stem, a connecting hole is disposed on the rotating element, and the stem is connected to the rotating element by the fixing element passing the through hole and the connecting hole.
13. The linear actuator of claim 12, wherein the rotating element comprises a restraining rod and a swaying plate connected to the restraining rod, the restraining hole is disposed on the restraining rod, and the rotating arm is disposed on the swaying plate.
14. The linear actuator of claim 13, wherein the restraining presser comprises a restraining cylinder and a pressing plate connected with the restraining cylinder, the restraining cylinder is positioned on the restraining rod, and the restraining spring and the engaging element are disposed in the restraining cylinder.
15. The linear actuator of claim 14, wherein the restraining assembly further comprises an adjusting screw and multiple fixing screws, an adjusting hole is disposed on the restraining cylinder, the adjusting screw is inserted into the adjusting hole and abuts against the restraining spring, a fixing hole is disposed on two sides of the pressing plate respectively, and the restraining presser is fixed by the fixing screws being associated with the fixing holes.
16. The linear actuator of claim 1, wherein the engaging element comprises a steel ball.
17. The linear actuator of claim 1, further comprising: a telescopic tube, connected to the screw rod.
Description
BRIEF DESCRIPTION OD THE DRAWINGS
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DETAILED DESCRIPTION
(12) The technical contents of this disclosure will become apparent with the detailed description of embodiments accompanied with the illustration of related drawings as follows. It is intended that the embodiments and drawings disclosed herein are to be considered illustrative rather than restrictive.
(13) Please refer to
(14) Please refer to
(15) The telescopic tube 20 connects to the screw rod 13 and is driven by the screw rod 13 to perform the reciprocating motion.
(16) The releasing mechanism 30 is disposed between the gear set 12 and the screw rod 13 as shown in
(17) In this embodiment, the transmission 10 further includes a bearing 14 and a nut 15. The bearing 14 is axially passed by the screw rod 13 and is fixed on an outside of the driving gear 31 by the nut 15.
(18) The toggle restraining mechanism 40 is disposed on a side of the releasing mechanism 30. As sown in
(19) Please refer to
(20) Moreover, the sliding sleeve 34 includes a hollow cylinder 341, a pushed annular plate 342 disposed around the hollow cylinder 341 and multiple sliding gears 343 formed in the hollow cylinder 341. The sliding sleeve 34 moves in a direction away from the second clutch 33 through the rotating arm 422 pushing the pushed annular plate 342.
(21) In detail, a side of the first clutch 32, which faces the sliding sleeve 34, is formed with multiple first clutch gears 322. Also, a side of the second clutch 33, which faces the sliding sleeve 34, is formed with multiple clutch gears 331. Two sides of the sliding gears 343 engage with the first clutch gears 322 and the second clutch gears 331 respectively.
(22) In this embodiment, the screw rod 13 is formed with a positioning portion 131. The second clutch 33 includes an engaging sleeve 332 formed with the second clutch gears 331. The engaging sleeve 332 is formed with an engaging hole 330 corresponding to the positioning portion 131. The second clutch 33 and the screw rod 13 are associated through the engaging hole 330 and the positioning portion 131 being positioned with each other. Besides, the first clutch 32 is formed with a first annular plate 323. Two sides of the return spring 35 elastically abut against the pushed annular plate 342 and the first annular plate 323 respectively as shown in
(23) In this embodiment, the toggle restraining mechanism 40 further includes a pulling element 44 and a fixing element 45. The pulling element 44 may be a pulling rod or rope as shown in
(24) Please refer to
(25) An end of the stem 41, which is passed by the pulling element 44, is formed with an upright plate 412 for the pulling element 44 to pass through.
(26) In an embodiment, the rotating element 42 includes a restraining rod 42a and a swaying plate 42b connected to the restraining rod 42a. The restraining rod 42a is formed with the restraining hole 421. The swaying plate 42b is formed with the rotating arm 422. The restraining presser 431 includes a restraining cylinder 431a and a pressing plate 431b connected with the restraining cylinder 431a. The restraining cylinder 431a is positioned on the restraining rod 42a, and both the restraining spring 432 and the engaging element 433 are disposed in the restraining cylinder 431a.
(27) In this embodiment, the restraining assembly 43 further includes an adjusting screw 434 and multiple fixing screws 435. The restraining cylinder 431a is formed with an adjusting hole 4310a. The adjusting screw 434 is inserted into the adjusting hole 4310a and abuts against the restraining spring 432. The elastic pressure of the restraining spring 432 to the engaging element 433 may be adjusted by the adjusting screw 434.
(28) Further, two sides of the pressing plate 431b are formed with a fixing hole 4310b respectively. The restraining presser 431 is fixed by associating the fixing screws 435 separately with the fixing holes 4310b.
(29) Please refer to
(30) As shown in
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(32) Please refer to
(33) Also, please refer to
(34) At the same time, the engaging element 433 is engaged in the restraining hole 421 to restrain the rotating element 42 from rotating when the rotating element 42 is rotated to a specific angle. Therefore, the releasing mechanism 30 is restrained so as to be kept in a status of quick releasing.
(35) Please refer to
(36) While this disclosure has been described by means of specific embodiments, numerous modifications and variations could be made thereto by those skilled in the art without departing from the scope and spirit of this disclosure set forth in the claims.