motor gearbox

The motor gearbox enhances gear clutch smoothness and motor stability through a clutch mechanism with planetary gears and a rotation prevention system, addressing issues of instability and lifespan reduction in smart door locks.

JP7767206B2Active Publication Date: 2025-11-11SHENZHEN OCEANWING SMART INNOVATIONS TECHNOLOGY CO LTD
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Patent Information

Application Number
JP2022053332
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-03-29
Filing Date
2022-03-29
Publication Date
2025-11-11
Estimated Expiration
2042-03-29

AI Technical Summary

Technical Problem

Existing motor gearboxes in smart door locks suffer from poor gear clutch smoothness and lack of motor protection, leading to unstable operation and reduced lifespan.

Method used

A motor gearbox design featuring a clutch mechanism with main and planetary gears that smoothly engage and disengage, and a rotation prevention mechanism with protective gears and elastic members to prevent excessive torque.

Benefits of technology

Improves gear clutch smoothness and extends motor lifespan by ensuring stable operation and reducing the risk of motor damage.

✦ Generated by Eureka AI based on patent content.

Smart Images

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Patent Text Reader

Abstract

To provide a motor gear box in association with the technical field of drive mechanisms.SOLUTION: A gearbox of the present invention includes a housing, a motor disposed in the housing, a gearbox output shaft disposed in the housing, and a clutch mechanism. The clutch mechanism includes a main gear and a planetary gear meshing with the main gear. When the main gear rotates, the planetary gear moves in the circumferential direction of the main gear and the main gear is in transmission connection with the motor, and when the motor drives the main gear to rotate, the planetary gear is selectively in transmission connection with the gearbox output shaft. According to such a system, the present invention can improve the smoothness of the gear meshing process.SELECTED DRAWING: Figure 3
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Description

[Technical Field]

[0001] The present invention relates to the technical field of drive mechanisms, and in particular to motor gearboxes. [Background technology]

[0002] In one aspect, the motor gearbox of a currently available smart door lock usually has a gear clutch mechanism designed to establish and release the transmission connection between the motor and the door lock through the gear clutch mechanism, particularly when the lock needs to be mechanically opened or closed, the transmission connection between the motor and the door lock needs to be released. However, the gear clutch mechanism of the existing motor gearbox is not designed rationally, and the mechanism's operation is unstable, resulting in poor gear clutch smoothness and easy rattle.

[0003] In another aspect, the motor gearboxes of currently available smart door locks do not have a corresponding protection mechanism designed for the motor, making it easy for the motor to become stuck in rotation, which will result in the motor being damaged by excessive torque, shortening the motor's lifespan and further reducing the battery life of the smart door lock. Summary of the Invention [Problem to be solved by the invention]

[0004] In view of the above, in one aspect, the technical problem to be solved by the present invention is to provide a motor gearbox that can improve the smoothness of the gear clutch process, and in another aspect, the technical problem to be solved by the present invention is to provide a motor gearbox that can extend the life of the motor. [Means for solving the problem]

[0005] In one aspect, one of the technical solutions adopted by the present invention to solve the above technical problems is to provide a motor gearbox, which includes a housing, a motor disposed in the housing, a gearbox output shaft disposed in the housing, and a clutch mechanism, the clutch mechanism including a main gear and planetary gears meshing with each other, when the main gear rotates, the planetary gears move in the circumferential direction of the main gear, the main gear is operably connected to the motor, and when the motor drives the main gear to rotate, the planetary gears are selectively operably connected to the gearbox output shaft.

[0006] In one embodiment of the present invention, the planetary gears include a first planetary gear and a second planetary gear spaced apart from each other in the circumferential direction of the main gear, and when the main gear rotates in a first rotational direction, the first planetary gear is operably connected to the gearbox output shaft, and when the main gear rotates in a second rotational direction, the second planetary gear is operably connected to the gearbox output shaft, the first rotational direction and the second rotational direction being opposite to each other.

[0007] In one embodiment of the present invention, the clutch mechanism further includes a main gear shaft on which the main gear is disposed, a support rotatably connected to the main gear shaft, and a planetary gear shaft on which the planetary gear is disposed, the planetary gear shaft being provided on the support and the planetary gear being rotatable relative to the planetary gear shaft.

[0008] In one embodiment of the present invention, the clutch mechanism further includes a clutch elastic member sandwiched between the planetary gear and the support body, the clutch elastic member being in a compressed state.

[0009] In one embodiment of the present invention, the support includes a first support part and a second support part connected to each other, with a connection point rotatably connected to the main gear shaft, and the planetary gear includes a first planetary gear and a second planetary gear arranged at intervals from each other in the circumferential direction of the main gear, the first planetary gear being provided on the first support part and the second planetary gear being provided on the second support part.

[0010] In one embodiment of the present invention, the motor gearbox includes a first transmission gear, in which a first planetary gear and a second planetary gear are operably connected to a gearbox output shaft via the first transmission gear, and the extension direction of the first support part and the extension direction of the second support part are arranged at a predetermined angle of less than 180°, and the space between the first support part and the second support part is directed toward the first transmission gear.

[0011] In one embodiment of the present invention, the main gear includes a first gear portion and a second gear portion arranged on the same axis, the first gear portion and the second gear portion being rotatable synchronously, the first gear portion being operatively connected to the motor, and the second gear portion being meshed with the planetary gear.

[0012] In one embodiment of the present invention, the motor gearbox further includes a rotation prevention mechanism, which includes a first protective gear rotatably connected to the motor, a second protective gear coaxially arranged with the first protective gear and rotatably connected to the gearbox output shaft, and a protective elastic member in a compressed state sandwiched between the first protective gear and the second protective gear.

[0013] In one embodiment of the present invention, the motor gearbox further includes a second transmission gear mounted on the gearbox output shaft, the second transmission gear is fixed to the gearbox output shaft, and the second transmission gear is operably connected to the planetary gear.

[0014] In one embodiment of the present invention, the motor gearbox further includes a worm operably connected to the output end of the motor, and a third transmission gear operably connected to the worm and the main gear, respectively.

[0015] In another aspect, one of the technical solutions adopted by the present invention to solve the above technical problems is to provide a motor gearbox, the motor gearbox including: a housing, a motor provided in the housing, a gearbox output shaft provided in the housing, and a rotation prevention mechanism, the rotation prevention mechanism including: a first protective gear operably connected to the motor, a second protective gear coaxial with the first protective gear and operably connected to the gearbox output shaft, and a protective elastic member in a compressed state sandwiched between the first protective gear and the second protective gear.

[0016] In one embodiment of the present invention, the anti-rotation mechanism further includes a protective gear shaft assembly, wherein the first protective gear and the second protective gear are all mounted on the protective gear shaft assembly, and a fixing protrusion is protruded from the outer circumferential surface of the protective gear shaft assembly, and the fixing protrusion abuts against a surface of the first protective gear remote from the second protective gear and / or the fixing protrusion abuts against a surface of the second protective gear remote from the first protective gear.

[0017] In one embodiment of the present invention, a first mounting groove is provided on a surface of the first protective gear remote from the second protective gear, and / or a first mounting groove is provided on a surface of the second protective gear remote from the first protective gear, and the fixing protrusion is fitted into the first mounting groove.

[0018] In one embodiment of the present invention, the anti-rotation mechanism further includes a protective gear shaft assembly, the first protective gear and the second protective gear are all mounted on the protective gear shaft assembly, and a fixing groove is provided on the outer circumferential surface of the protective gear shaft assembly. The anti-rotation mechanism further includes a fixed gasket engaged with the fixing groove, and the fixed gasket abuts against a surface of the first protective gear remote from the second protective gear and / or the fixed gasket abuts against a surface of the second protective gear remote from the first protective gear.

[0019] In one embodiment of the present invention, a second mounting groove is provided on a surface of the first protective gear remote from the second protective gear, and / or a second mounting groove is provided on a surface of the second protective gear remote from the first protective gear, and the fixing gasket is fitted into the second mounting groove.

[0020] In one embodiment of the present invention, the stationary gasket is a dished gasket.

[0021] In one embodiment of the present invention, the protective gear shaft assembly includes a protective gear shaft arranged in a housing, and a fixed shaft sleeve fitted on the protective gear shaft and fitted with a first protective gear and a second protective gear, wherein a fixing protrusion is protruded from the outer circumferential surface of the fixed shaft sleeve, and / or a fixing groove is provided on the outer circumferential surface of the fixed shaft sleeve.

[0022] In one embodiment of the present invention, the motor gearbox further includes a clutch mechanism, the clutch mechanism including a main gear and a planetary gear that mesh with each other, the planetary gear moving in a circumferential direction of the main gear when the main gear rotates, the main gear being operably connected to the motor, and the planetary gear being selectively operably connected to the first protective gear when the motor drives the main gear to rotate.

[0023] In one embodiment of the present invention, the motor gearbox further includes a first transmission gear, and the planetary gear is transmissively connected to the first protection gear via the first transmission gear.

[0024] In one embodiment of the present invention, the motor gearbox includes a second transmission gear mounted on the gearbox output shaft, the second transmission gear is fixed to the gearbox output shaft, and the second transmission gear meshes with the second protective gear. [Effects of the Invention]

[0025] The beneficial effects of one aspect of the present invention are as follows: Unlike the prior art, the present invention provides a motor gearbox. The clutch mechanism of the motor gearbox includes a main gear and planetary gears. The main gear and the planetary gears mesh with each other, and the planetary gears are movable in the circumferential direction of the main gear as the main gear rotates. In this way, while the motor is rotating the main gear, the planetary gears can be selectively operably connected to the gearbox output shaft; that is, the planetary gears can move along the circumferential direction of the main gear and be operably connected to the gearbox output shaft, or the planetary gears can move along the circumferential direction of the main gear and be disengaged from the gearbox output shaft. As a result, the planetary gear of the present invention can smoothly complete the clutch process with the gearbox output shaft, improving the smoothness of the gear clutch process.

[0026] Another advantageous effect of the present invention is as follows: Different from the prior art, the present invention provides a motor gearbox. The motor gearbox is designed with a rotation prevention mechanism for a motor, which includes a first protective gear, a second protective gear, and a protective elastic member. The protective elastic member is sandwiched between the first protective gear and the second protective gear, and the protective elastic member is in a compressed state. In this way, when the torque of the gearbox output shaft is equal to or less than the torque threshold, the protective elastic member applies a frictional force to rotate the first protective gear and the second protective gear synchronously, thereby ensuring the function of the motor to rotate the gearbox output shaft. On the other hand, when the torque of the gearbox output shaft is greater than the torque threshold, the frictional force applied by the protective elastic member is insufficient to maintain the synchronous rotation of the first protective gear and the second protective gear. At this time, the first protective gear and the second protective gear slip and rotate relative to each other, and no longer rotate synchronously. This prevents the motor from being subjected to excessive torque shock, which is beneficial to ensuring the stability of the motor and extending the service life of the motor. Furthermore, it is suggested that the battery life of a smart door lock using the motor gearbox of the present invention will also be improved to some extent due to the reduced risk of the motor jamming.

[0027] The drawings described herein are incorporated into and constitute a part of the specification, illustrate embodiments consistent with the present invention, and together with the specification, serve to explain the principles of the invention. Furthermore, these drawings and written description are not intended to limit the scope of the inventive concepts in any way, but rather to explain the inventive concepts to those skilled in the art by reference to specific embodiments. [Brief explanation of the drawings]

[0028] [Figure 1] 1 is a structural schematic diagram of an embodiment of a motor gearbox of the present invention; FIG. [Figure 2] FIG. 2 is a structural schematic diagram of the motor gearbox shown in FIG. 1 from another viewing angle. [Figure 3] 1 is a structural schematic diagram of an embodiment of a clutch mechanism of the present invention; [Figure 4] 1 is a structural schematic diagram of an embodiment of the present invention in which the clutch mechanism of the present invention and the first transmission gear are in mesh with each other; [Figure 5] 1 is a structural schematic diagram of an embodiment of a rotation prevention mechanism of the present invention. FIG. [Figure 6] 6 is a schematic cross-sectional view of the rotation prevention mechanism shown in FIG. 5 taken along the CC direction. FIG. DETAILED DESCRIPTION OF THE INVENTION

[0029] In order to clarify the objectives, technical solutions and advantages of the present invention, the following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the embodiments of the present invention. Obviously, the described embodiments are not all embodiments of the present invention, but only some embodiments of the present invention. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without requiring creative efforts fall within the patent scope of the present invention. Unless contradictory, the following embodiments and features of the embodiments may be combined with each other.

[0030] In one aspect, the present invention provides a motor gearbox to solve the technical problem of poor gear clutch smoothness in the motor gearbox of the prior art. The motor gearbox includes a housing, a motor disposed within the housing, a gearbox output shaft disposed within the housing, and a clutch mechanism, the clutch mechanism including a main gear and planetary gears that mesh with each other, wherein when the main gear rotates, the planetary gears move in the circumferential direction of the main gear, the main gear is operably connected to the motor, and when the motor rotates and drives the main gear, the planetary gears are selectively operably connected to the gearbox output shaft. This will be described in detail below.

[0031] In another aspect, to solve the technical problem of the short service life of motor gearboxes in the prior art, one embodiment of the present invention provides a motor gearbox, the motor gearbox including a housing, a motor disposed within the housing, a gearbox output shaft disposed within the housing, and a rotation prevention mechanism, the rotation prevention mechanism including a first protective gear operably connected to the motor, a second protective gear disposed coaxially with the first protective gear and operably connected to the gearbox output shaft, and a protective elastic member in a compressed state sandwiched between the first protective gear and the second protective gear, as described in detail below.

[0032] Referring to Figures 1 and 2, Figure 1 is a structural schematic diagram of one embodiment of the motor gearbox of the present invention, and Figure 2 is a structural schematic diagram of the motor gearbox shown in Figure 1 from another viewing angle.

[0033] In one embodiment, the motor gearbox of this embodiment can be applied to a product such as a smart door lock, and more specifically, can be applied to drive and operate a spring lock, which is a smart door lock, to complete the unlocking and locking operations. Of course, the motor gearbox of this embodiment is not limited to application to a smart door lock, and is not limited here.

[0034] The motor gearbox includes a housing 10, a motor 20 provided in the housing 10, and a gearbox output shaft 30. The gearbox output shaft 30 is drivably connected to the locking tongue, and the gearbox output shaft 30 rotates about its own central axis to drive the locking tongue for unlocking and locking. It can be understood that the rotation direction of the gearbox output shaft 30 is opposite to that for unlocking and locking.

[0035] The motor 20 is operatively connected to the gearbox output shaft 30 and drives the gearbox output shaft 30 to rotate. In the case of a smart door lock, the motor 20 drives the unlocking and locking functions, which allows the smart door lock to be fully automated and improves user convenience. Of course, a smart door lock usually provides a function for the user to unlock and lock the door themselves, i.e., a function that is not unlocked and locked by the motor 20. For example, the motor gearbox further includes a knob 40, which is engaged with the gearbox output shaft 30, i.e., the knob 40 is fixed relative to the gearbox output shaft 30, and the user can rotate the knob 40 to rotate the gearbox output shaft 30 and perform unlocking and locking.

[0036] Also, refer to Figure 2. In one embodiment, when a user needs to use the knob to unlock or lock the door, the transmission connection between the motor 20 and the gearbox output shaft 30 must be released so that the user can turn the knob to rotate the gearbox output shaft 30. This is because when a user uses the knob to unlock or lock the door, the transmission connection between the motor 20 and the gearbox output shaft 30 is maintained, and because the meshing between the worm and helical gear at the output end of the motor 20 has a self-locking effect, the helical gear does not easily reverse the worm, and the resistance to reverse rotation of the motor 20 is large. Therefore, when a user needs to use the knob to unlock or lock the door, the transmission connection between the motor 20 and the gearbox output shaft 30 must be released.

[0037] Also, referring to FIG. 3, FIG. 3 is a structural schematic diagram of an embodiment of the clutch mechanism of the present invention.

[0038] In view of the above, the motor gearbox of this embodiment further includes a clutch mechanism 50 that selectively releases the operative connection between the motor 20 and the gearbox output shaft 30. Specifically, the clutch mechanism 50 includes a main gear 51 and a planetary gear 52. The main gear 51 and the planetary gear 52 mesh with each other, and the planetary gear 52 is movable in the circumferential direction of the main gear 51 as the main gear 51 rotates. The main gear 51 is operatively connected to the motor 20, and when the motor 20 rotates the main gear 51, the planetary gear 52 is selectively operatively connected to the gearbox output shaft 30, causing the gearbox output shaft 30 to rotate.

[0039] That is, while the motor 20 rotates and drives the main gear 51, the planetary gears 52 can be selectively operably connected to the gearbox output shaft 30. The planetary gears 52 maintain a meshing relationship with the main gear 51 and can rotate on their own axis as the main gear 51 rotates, while also being movable in the circumferential direction of the main gear 51. The planetary gears 52 can move along the circumferential direction of the main gear 51 and be operably connected to the gearbox output shaft 30, at which point a operably connection between the motor 20 and the gearbox output shaft 30 is established, and the motor 20 is used to achieve unlocking and locking. The planetary gears 52 can also move along the circumferential direction of the main gear 51 and be separated from the gearbox output shaft 30, at which point the operably connection between the motor 20 and the gearbox output shaft 30 is released, allowing the user to unlock and lock by operating the knob.

[0040] As can be seen from the above, the clutch mechanism 50 of the present invention is reasonably designed and can provide a smooth clutch process, allowing the planetary gear 52 to smoothly complete the clutch process with the gearbox output shaft 30, thereby improving the smoothness of the gear clutch process.

[0041] 2 and 3. In one embodiment, the clutch mechanism 50 further includes a main gear shaft 53. The main gear shaft 53 is mounted in the housing 10, and the main gear 51 is fitted to the main gear shaft 53. Here, the main gear 51 is rotatably connected to the main gear shaft 53, and is rotatable relative to the main gear shaft 53. The clutch mechanism 50 further includes a support 54 and a planetary gear shaft 55. The support 54 is rotatably connected to the main gear shaft 53, i.e., another portion of the support 54 is rotatable about the portion of the support 54 connected to the main gear shaft 53. The planetary gear shaft 55 is mounted on the support 54, and the planetary gear 52 is rotatably fitted to the planetary gear shaft 55.

[0042] Because the main gear 51 and the planetary gears 52 mesh with each other, when the motor 20 drives and rotates the main gear 51, the main gear 51 applies a certain amount of moment to the planetary gears 52 (FIG. 4 shows a case where the main gear 51 applies moments to the first planetary gear 521 and the second planetary gear 522, respectively. Details will be described later), driving and moving the planetary gears 52 in the circumferential direction of the main gear 51, during which the main gear 51 and the planetary gears 52 maintain their meshed state. Meanwhile, the design in which the support 54 is rotatably connected to the main gear shaft 53 is the basis for a structure in which the planetary gears 52 can move in the circumferential direction of the main gear 51, and the support 54 can swing as the planetary gears 52 move in the circumferential direction of the main gear 51.

[0043] Referring to FIGS. 3 and 4, FIG. 4 is a structural schematic diagram of an embodiment in which the clutch mechanism of the present invention and the first transmission gear are in mesh with each other.

[0044] In one embodiment, it is contemplated that the gearbox output shaft 30 is rotatable forward and reverse to accommodate door unlocking and locking operations. If the clutch mechanism 50 includes only one planetary gear 52, when the motor 20 needs to switch from driving the gearbox output shaft 30 in forward rotation to driving the gearbox output shaft 30 in reverse rotation, the main gear 51 will rotate in reverse, and the planetary gear 52 will need to move a large stroke circumferentially around the main gear 51 to be reconnected to the gearbox output shaft 30 in a power-transmitting manner.

[0045] In view of the above, in this embodiment, the planetary gear 52 includes a first planetary gear 521 and a second planetary gear 522 that are spaced apart from each other in the circumferential direction of the main gear 51. When the main gear 51 rotates in a first rotational direction, the first planetary gear 521 is operatively connectable to the gearbox output shaft 30, and when the main gear 51 rotates in a second rotational direction, the second planetary gear 522 is operatively connectable to the gearbox output shaft 30. Here, the first rotational direction and the second rotational direction are opposite directions, i.e., one of the first rotational direction and the second rotational direction may be a clockwise rotational direction and the other a counterclockwise rotational direction.

[0046] As shown in Figures 2 and 4, when the motor 20 drives the main gear 51 to rotate in a first rotational direction (for example, the clockwise direction shown in Figure 4), the main gear 51 applies a moment to the first planetary gear 521 and the second planetary gear 522, respectively (the acting force of the moment is shown at F in Figure 4, and the distance between the main gear 51 and the first planetary gear 521 and the second planetary gear 522 becomes a power arm). As a result, the first planetary gear 521 and the second planetary gear 522 both move in the circumferential direction of the main gear 51, and the first planetary gear 521 and the second planetary gear 522 move in the same direction, and finally the first planetary gear 521 is connected to the gearbox output shaft 30 in a translatable manner, and the second planetary gear 522 is not connected to the gearbox output shaft 30 in a translatable manner. Similarly, when the motor 20 drives the main gear 51 to rotate in a second rotational direction, the first planetary gear 521 and the second planetary gear 522 both move in the circumferential direction of the main gear 51, the first planetary gear 521 and the second planetary gear 522 move in the same direction, the movement direction of the first planetary gear 521 and the second planetary gear 522 is opposite to the above, the rotation direction of the main gear 51, the first planetary gear 521 and the second planetary gear 522 is opposite to the above, and finally the second planetary gear 522 is operably connected to the gearbox output shaft 30, and the first planetary gear 521 is not operably connected to the gearbox output shaft 30.

[0047] As described above, in this embodiment, the design of the first planetary gear 521 and the second planetary gear 522 allows the transmission connection between the motor 20 and the gearbox output shaft 30 to be re-established more quickly when the motor 20 rotates in the reverse direction, thereby improving the operating efficiency of the motor gearbox. This avoids the problem that, due to the existence of only one planetary gear 52, when the motor 20 rotates in the reverse direction, the planetary gear 52 must move a large stroke in the circumferential direction of the main gear 51 in order to be re-connected in a transmission manner to the gearbox output shaft 30.

[0048] Furthermore, the first planetary gear 521 and the second planetary gear 522 may be rotatably mounted on the same planetary gear shaft 55. Specifically, the planetary gear shaft 55 includes a first planetary gear shaft 551 and a second planetary gear shaft 552, and the first planetary gear 521 is mounted on the support body 54 via the first planetary gear shaft 551, and the second planetary gear 522 is mounted on the support body 54 via the second planetary gear shaft 552.

[0049] The support body 54 includes a first support portion 541 and a second support portion 542. The first support portion 541 and the second support portion 542 are connected at their adjacent ends, and the connection portion between the first support portion 541 and the second support portion 542 is rotatably connected to the main gear shaft 53. Specifically, the first support portion 541 supports the first planetary gear 521, and the second support portion 542 supports the second planetary gear 522.

[0050] The motor gearbox further includes a first transmission gear 60, and the first planetary gear 521 and the second planetary gear 522 are operatively connected to the gearbox output shaft 30 via the first transmission gear 60. Specifically, when the first planetary gear 521 is operatively connected to the gearbox output shaft 30 via the first transmission gear 60, the second planetary gear 522 is disengaged from the gearbox output shaft 30. When the second planetary gear 522 is operatively connected to the gearbox output shaft 30 via the first transmission gear 60, the first planetary gear 521 is disengaged from the gearbox output shaft 30.

[0051] The extending direction of the first support portion 541 (shown by dashed line A in FIG. 4) and the extending direction of the second support portion 542 (shown by dashed line B in FIG. 4) are set at a predetermined angle θ less than 180°, and the support portion 54 is configured like a boomerang, as shown in FIG. 4. The space formed by the recess in the support portion 54 faces the first transmission gear 60.

[0052] According to the above method, the first support portion 541 and the second support portion 542 both extend close to the first transmission gear 60, thereby reducing the distance between the first planetary gear 521 and the second planetary gear 522 and the first transmission gear 60, which is advantageous in reducing the stroke required for the first planetary gear 521 to move until it is re-transmittably connected to the first transmission gear 60, and in reducing the stroke required for the second planetary gear 522 to move until it is re-transmittably connected to the first transmission gear 60, thereby improving the operating efficiency of the entire motor gearbox.

[0053] 3, in one embodiment, the clutch mechanism 50 further includes a clutch elastic member 56. The clutch elastic member 56 is sandwiched between the planetary gear 52 and the support body 54, and the clutch elastic member 56 is in a compressed state. Due to the elastic restoring force of the clutch elastic member 56, the clutch elastic member 56 abuts against the planetary gear 52, and a certain amount of frictional resistance exists between the clutch elastic member 56 and the planetary gear 52.

[0054] The friction resistance provided by the clutch elastic member 56 during the rotation of the planetary gear 52 allows the rotation of the planetary gear 52 to have a certain damping force, which is beneficial to ensuring the stable operation of the planetary gear 52. Furthermore, when the motor gearbox is not operating, the transmission connection between the planetary gear 52 and the gearbox output shaft 30 is released, and the friction resistance provided by the clutch elastic member 56 can prevent the rotation of the planetary gear 52 to a certain extent, and further prevent false triggering of the planetary gear 52 and the operation of the transmission connection of the gearbox output shaft 30, which is beneficial to ensuring the stable operation of the motor gearbox.

[0055] Optionally, the clutch elastic member 56 may be a spring or other elastic member. The clutch elastic member 56 is fitted onto the planetary gear shaft 55, with one end abutting against the planetary gear 52 and the other end abutting against the support body 54. One end of the planetary gear shaft 55 abuts against the side of the planetary gear 52 away from the support body 54, and the other end passes through the support body 54 and is restricted to the side of the support body 54 away from the planetary gear 52 by a circlip, thereby ensuring that the planetary gear 52 and the support body 54 do not separate due to the action of the elastic restoring force of the clutch elastic member 56.

[0056] 2 and 3. In one embodiment, the main gear 51 includes a first gear portion 511 and a second gear portion 512, which are arranged coaxially and rotatable synchronously, i.e., the main gear 51 is a double gear. The first gear portion 511 of the main gear 51 is operatively connected to the motor 20, and the second gear portion 512 meshes with the planetary gear 52.

[0057] Optionally, the teeth of the first gear portion 511, the second gear portion 512 and the planet gear 52 are all straight teeth.

[0058] In addition, after the motor 20 drives the motor gearbox to complete one unlocking or locking operation, it reverses both to a certain extent, thereby releasing the transmission-enabled connection between the planetary gear 52 and the gearbox output shaft 30, i.e., neither the first planetary gear 521 nor the second planetary gear 522 is transmission-enabled connected to the gearbox output shaft 30, thereby allowing the user to mechanically and easily perform unlocking and locking at any time using the above-mentioned knob, etc., when the motor 20 is not operating.

[0059] 2, 5 and 6, FIG. 5 is a structural schematic diagram of one embodiment of the rotation prevention mechanism of the present invention, and FIG. 6 is a cross-sectional structural schematic diagram of the rotation prevention mechanism shown in FIG. 5 taken along the CC direction.

[0060] The motor gearboxes of smart door locks currently on the market do not have a corresponding protection mechanism designed for the motor 20, making it easy for the motor 20 to become stuck in rotation. When the motor 20 becomes stuck in rotation, the motor 20 receives excessive torque and is damaged, shortening the lifespan of the motor 20 and further reducing the battery life of the smart door lock.

[0061] In view of the above, the motor gearbox of this embodiment further includes a rotation prevention mechanism 70 including a first protective gear 71, a second protective gear 72, and a protective elastic member 73. The first protective gear 71 and the second protective gear 72 are arranged coaxially, the first protective gear 71 is connected to the motor 20 so as to be able to transmit power, the second protective gear 72 is connected to the gearbox output shaft 30 so as to be able to transmit power, the protective elastic member 73 is sandwiched between the first protective gear 71 and the second protective gear 72, and the protective elastic member 73 is in a compressed state.

[0062] The protective elastic member 73 is in direct contact with the first protective gear 71 and the second protective gear 72, respectively, and in its compressed state, the protective elastic member 73 applies a certain frictional force to the first protective gear 71 and the second protective gear 72. In this way, when the torque of the gearbox output shaft 30 is equal to or less than the torque threshold, the protective elastic member 73 applies a frictional force to cause the first protective gear 71 and the second protective gear 72 to rotate synchronously, thereby ensuring the function of the motor 20 to rotate the gearbox output shaft 30. On the other hand, when the torque of the gearbox output shaft 30 is greater than the torque threshold, the frictional force applied by the protective elastic member 73 is insufficient to maintain the synchronous rotation of the first protective gear 71 and the second protective gear 72. In this case, the first protective gear 71 and the second protective gear 72 slip and rotate relative to each other, resulting in asynchronous rotation. This prevents the motor 20 from being subjected to excessive torque shock, is advantageous to ensuring the stability of the motor 20, and extends the life of the motor 20.

[0063] Furthermore, when the motor 20 is blocked, its power consumption increases significantly. This suggests that the battery life of a smart door lock using the motor gearbox of the present invention may also be improved to some extent due to the reduced risk of the motor 20 being blocked.

[0064] The torque threshold is defined as the maximum torque that the gearbox output shaft 30 can have when the first protective gear 71 and the second protective gear 72 rotate synchronously. If the torque of the gearbox output shaft 30 exceeds the torque threshold, the first protective gear 71 and the second protective gear 72 slip and rotate relative to each other, and no longer rotate synchronously.

[0065] In one embodiment, the anti-rotation mechanism 70 further includes a protective gear shaft assembly 74, and the first protective gear 71 and the second protective gear 72 are both mounted on the protective gear shaft assembly 74. A fixing protrusion 741 is protruded from the outer circumferential surface of the protective gear shaft assembly 74, and the fixing protrusion 741 abuts against a surface of the first protective gear 71 remote from the second protective gear 72 and / or abuts against a surface of the second protective gear 72 remote from the first protective gear 71, so that the first protective gear 71 and the second protective gear 72 sandwich the protective elastic member 73.

[0066] Furthermore, a first mounting groove 75 into which a fixing protrusion 741 is fitted is provided on the surface of the first protective gear 71 remote from the second protective gear 72 and / or the surface of the second protective gear 72 remote from the first protective gear 71. This is advantageous for reducing the overall thickness of the rotation prevention mechanism 70, making the structure more compact, and is also advantageous for reducing the size of the motor gearbox.

[0067] In one embodiment, the anti-rotation mechanism 70 further includes a protective gear shaft assembly 74 and a fixed gasket 76, and the first protective gear 71 and the second protective gear 72 are both fitted to the protective gear shaft assembly 74. The protective gear shaft assembly 74 further includes a fixed groove 742 on its outer circumferential surface, into which the fixed gasket 76 is engaged. The fixed gasket 76 abuts against a surface of the first protective gear 71 remote from the second protective gear 72 and / or abuts against a surface of the second protective gear 72 remote from the first protective gear 71, so that the first protective gear 71 and the second protective gear 72 sandwich the protective elastic member 73.

[0068] Furthermore, a second mounting groove 77 into which a fixed gasket 76 is fitted is provided on the surface of the first protective gear 71 remote from the second protective gear 72 and / or the surface of the second protective gear 72 remote from the first protective gear 71. This is advantageous for reducing the overall thickness of the rotation prevention mechanism 70, making the structure more compact, and is also advantageous for reducing the size of the motor gearbox.

[0069] 5 and 6, for example, a fixing protrusion 741 is provided at one end of the protective gear shaft assembly 74 and a fixing groove 742 is provided at the other end to facilitate assembly of the anti-rotation mechanism 70. For example, the fixing protrusion 741 abuts against the surface of the first protective gear 71 remote from the second protective gear 72, and the fixing gasket 76 is engaged with the fixing groove 742 and abuts against the surface of the second protective gear 72 remote from the first protective gear 71.

[0070] According to the above method, the first protective gear 71, the protective elastic member 73 and the second protective gear 72 are sequentially attached to the protective gear shaft assembly 74 from the end of the protective gear shaft assembly 74 where the fixing groove 742 is provided, and then the fixing gasket 76 is engaged with the fixing groove 742, so that the positions of the first protective gear 71, the protective elastic member 73 and the second protective gear 72 on the protective gear shaft assembly 74 are fixed, and the first protective gear 71 and the second protective gear 72 sandwich the protective elastic member 73.

[0071] In this case, the first mounting groove 75 is provided on the surface of the first protective gear 71 that is away from the second protective gear 72, and the second mounting groove 77 is provided on the surface of the second protective gear 72 that is away from the first protective gear 71.

[0072] Optionally, the fixed gasket 76 may be a dish-shaped gasket or the like. The protective elastic member 73 may be a spring or the like, and the protective elastic member 73 is fitted to the protective gear shaft assembly 74, with one end abutting the first protective gear 71 and the other end abutting the second protective gear 72.

[0073] In one embodiment, the protective gear shaft assembly 74 includes a protective gear shaft 743 and a fixed shaft sleeve 744, the protective gear shaft 743 is mounted in the housing 10, the fixed shaft sleeve 744 is fitted onto the protective gear shaft 743, and the first protective gear 71 and the second protective gear 72 are all fitted onto the fixed shaft sleeve 744. Furthermore, the protective gear shaft 743 and the fixed shaft sleeve 744 are fixed relative to each other.

[0074] 6, a fixing protrusion 741 is protruded from the outer peripheral surface of the fixed shaft sleeve 744, and / or a fixing groove 742 is formed on the outer peripheral surface of the fixed shaft sleeve 744. In the above embodiment, when the protective gear shaft assembly 74 is provided with the fixing protrusion 741 at one end and the fixing groove 742 at the other end, the fixed shaft sleeve 744 is provided with the fixing protrusion 741 at one end and the fixing groove 742 at the other end.

[0075] 2 to 6 , in one embodiment, the first protective gear 71 is operatively connected to the motor 20 via the planetary gear 52 of the clutch mechanism 50 of the above-described embodiment. As described in the above embodiment, the motor gearbox further includes a first transmission gear 60, and the planetary gear 52 is operatively connected to the first protective gear 71 via the first transmission gear 60.

[0076] 2, the third gear portion 61 and the fourth gear portion 62 are arranged on the same axis and can rotate synchronously, that is, the first transmission gear 60 is a double gear. The third gear portion 61 of the first transmission gear 60 meshes with the planet gear 52 of the clutch mechanism 50, and the fourth gear portion 62 meshes with the first protective gear 71.

[0077] Optionally, the teeth of the third gear portion 61 and the fourth gear portion 62 are both straight teeth.

[0078] 2, 5, and 6. In one embodiment, the motor gearbox further includes a second transmission gear 80, which is fitted to the gearbox output shaft 30 and fixed relative to each other. The second transmission gear 80 meshes with the second protective gear 72, causing the second protective gear 72 to rotate, which in turn rotates the gearbox output shaft 30. FIG. 2 shows that the second transmission gear 80 is provided with a non-circular irregular through-hole 81, and the gearbox output shaft 30 passes through the through-hole 81. The shape of the gearbox output shaft 30 and the through-hole 81 match, so that the second transmission gear 80 and the gearbox output shaft 30 are engaged with each other and fixed relative to each other.

[0079] 2 and 3, in one embodiment, the motor gearbox further includes a worm 21 and a third transmission gear 90, the worm 21 is operably connected to the output end 22 of the motor 20, and the worm 21 is operably connected to the main gear 51 via the third transmission gear 90, and the motor 20 rotates and drives the main gear 51 of the clutch mechanism 50 via the worm 21, thereby driving the entire motor gearbox.

[0080] The third transmission gear 90 includes a fifth gear portion 91 and a sixth gear portion 92. As shown in FIG. 2, the fifth gear portion 91 and the sixth gear portion 92 are arranged coaxially and can rotate synchronously, i.e., the third transmission gear 90 is a double gear. The fifth gear portion 91 of the third transmission gear 90 has helical teeth and meshes with the worm 21 to convert rotation of the output end of the motor 20 into rotation of the third transmission gear 90. The sixth gear portion 92 of the third transmission gear 90 meshes with the main gear 51, specifically the first gear portion 511 of the main gear 51.

[0081] Optionally, the tooth type of sixth gear portion 92 is straight tooth.

[0082] The operation process of the motor gearbox of the present invention will be outlined below.

[0083] When unlocking or locking by driving the motor 20, the motor 20 rotates the worm 21, causing the third transmission gear 90 to rotate clockwise, and then rotates the main gear 51 of the clutch mechanism 50 counterclockwise, causing the first planetary gear 521 to move circumferentially around the main gear 51 and mesh with the first transmission gear 60, causing the first transmission gear 60 to rotate counterclockwise, and then the first transmission gear 60 rotates the first protective gear 71 and the second protective gear 72 clockwise, and then the second protective gear 72 rotates the second transmission gear 80 counterclockwise, further rotating the gearbox output shaft 30, thus completing either the unlocking or locking operation.

[0084] Of course, during the other operation of unlocking or locking described above, the second planetary gear 522 meshes with the first transmission gear 60, and the rotation direction of each gear is opposite to that described above, so this will not be described in detail here.

[0085] In addition, if the torque of the gearbox output shaft 30 becomes excessive during the unlocking or locking process, the first protective gear 71 and the second protective gear 72 will slip and rotate relative to each other, and will no longer rotate synchronously. This prevents the motor 20 from being subjected to excessive torque shock, which is advantageous in ensuring the stability of the motor 20 and extending the life of the motor 20.

[0086] Furthermore, in the present invention, unless otherwise clearly specified or limited, the terms "coupled," "connected," "laminate," etc. should be understood in a broad sense, and may refer to, for example, a fixed connection, a detachable connection, or an integral unit, a direct connection, an indirect connection via an intermediate medium, internal communication between two elements, or an interactive relationship between two elements. Those skilled in the art can understand the specific meaning of the above terms in the present invention depending on the situation.

[0087] It should be noted that the above embodiments are only used to explain the technical solutions of the present invention, and are not intended to limit the same. The present invention has been described in detail with reference to the above embodiments. However, it is obvious to those skilled in the art that the technical solutions described in the above embodiments can be modified, or some or all of the technical features can be replaced with equivalents, and such modifications and replacements will not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of the present invention.

Claims

1. A motor gearbox, Housing and a motor disposed within the housing; a gearbox output shaft disposed within the housing; A clutch mechanism; Including, The clutch mechanism includes: a main gear and a planetary gear that mesh with each other; a main gear shaft on which the main gear is disposed; a support rotatably connected to the main gear shaft; a planetary gear shaft on which the planetary gear is disposed, the planetary gear shaft being provided on the support, and the planetary gear being rotatable relative to the planetary gear shaft; a clutch elastic member sandwiched between the planetary gear and the support; Including, When the main gear rotates, the planetary gear moves in the circumferential direction of the main gear, the main gear is rotatably connected to the motor, and when the motor rotates the main gear, the planetary gear is selectively rotatably connected to the gearbox output shaft; The clutch elastic member is in a compressed state, and generates frictional resistance between the clutch elastic member and the planetary gear. The motor gearbox further includes a rotation prevention mechanism disposed between the planetary gear and the gearbox output shaft; The rotation prevention mechanism includes: a first protective gear operably connected to the motor; a second protective gear provided coaxially with the first protective gear and rotatably connected to the gearbox output shaft; a protective elastic member in a compressed state sandwiched between the first protective gear and the second protective gear; A motor gearbox comprising:

2. the planetary gears include a first planetary gear and a second planetary gear spaced apart from each other in the circumferential direction of the main gear, When the main gear rotates in a first rotational direction, the first planetary gear is operatively connected to the gearbox output shaft; When the main gear rotates in a second rotational direction, the second planetary gear is operatively connected to the gearbox output shaft.

2. The motor gearbox of claim 1, wherein the first rotation direction and the second rotation direction are opposite to each other.

3. the support includes a first support portion and a second support portion connected to each other, the first support portion and the second support portion being rotatably connected to the main gear shaft at a connection point; the planetary gears include a first planetary gear and a second planetary gear spaced apart from each other in the circumferential direction of the main gear, the first planetary gear is provided on the first support portion, The motor gearbox according to claim 1 or 2, wherein the second planetary gear is provided on the second support portion.

4. a first transmission gear, wherein the first planetary gear and the second planetary gear are operably connected to the gearbox output shaft via the first transmission gear; an extending direction of the first support portion and an extending direction of the second support portion are provided at a predetermined angle of less than 180°; The motor gearbox according to claim 3 , wherein the space between the first support portion and the second support portion is directed toward the first transmission gear.

5. the main gear includes a first gear portion and a second gear portion provided coaxially, the first gear portion and the second gear portion are rotatable in synchronization with each other, the first gear portion is operatively connected to the motor; The motor gearbox according to any one of claims 1 to 4, wherein the second gear portion meshes with the planetary gear.

6. The motor gearbox further includes a second transmission gear mounted on the gearbox output shaft; the second transmission gear is fixed to the gearbox output shaft; The motor gearbox according to any one of claims 1 to 4, wherein the second transmission gear is connected to the planetary gear so as to be able to transmit power.

7. a worm rotatably connected to an output end of the motor; a third transmission gear connected to the worm and the main gear so as to be capable of transmitting power thereto; The motor gearbox according to any one of claims 1 to 4, further comprising:

8. A motor gearbox, Housing and a motor disposed within the housing; a gearbox output shaft disposed within the housing; a rotation prevention mechanism; a clutch mechanism, The rotation prevention mechanism includes: a first protective gear operably connected to the motor; a second protective gear provided coaxially with the first protective gear and rotatably connected to the gearbox output shaft; a protective elastic member in a compressed state sandwiched between the first protective gear and the second protective gear; Including, The clutch mechanism includes: a main gear and a planetary gear that mesh with each other; a main gear shaft on which the main gear is disposed; a support rotatably connected to the main gear shaft; a clutch elastic member sandwiched between the planetary gear and the support; Including, When the main gear rotates, the planetary gear moves in the circumferential direction of the main gear, the main gear is operatively connected to the motor; When the motor rotates the main gear, the planetary gear is selectively and operatively connected to the first protective gear; The clutch elastic member is in a compressed state, and generates frictional resistance between the clutch elastic member and the planetary gear.

9. the anti-rotation mechanism further includes a protective gear shaft assembly; The first protective gear and the second protective gear are both mounted on the protective gear shaft assembly, a fixing protrusion is provided on the outer peripheral surface of the protective gear shaft assembly, and the fixing protrusion abuts against a surface of the first protective gear that is remote from the second protective gear; and / or The motor gearbox according to claim 8, wherein the fixing protrusion abuts against a surface of the second protective gear remote from the first protective gear.

10. a first mounting groove is provided on a face of the first protective gear remote from the second protective gear; and / or a first mounting groove is provided on a surface of the second protective gear that is remote from the first protective gear; The motor gearbox according to claim 9, wherein the fixing protrusion is fitted into the first mounting groove.

11. the anti-rotation mechanism further includes a protective gear shaft assembly; The first protective gear and the second protective gear are both mounted on the protective gear shaft assembly; The protective gear shaft assembly has a fixing groove on its outer circumferential surface, the anti-rotation mechanism further includes a fixed gasket engaged with the fixed groove; the stationary gasket abuts a face of the first protective gear remote from the second protective gear; and / or The motor gearbox of claim 8, wherein the stationary gasket abuts a face of the second protective gear remote from the first protective gear.

12. a second mounting groove is provided on the face of the first protective gear remote from the second protective gear; and / or a second mounting groove is provided on a surface of the second protective gear that is remote from the first protective gear; The motor gearbox according to claim 11, wherein the fixed gasket is fitted into the second mounting groove.

13. The motor gearbox according to claim 11, wherein the stationary gasket is a dished gasket.

14. The protective gear shaft assembly a protective gear shaft provided within the housing; a fixed shaft sleeve fitted on the protective gear shaft, the first protective gear and the second protective gear being fitted therein; Including, A fixing protrusion is provided on the outer peripheral surface of the fixed shaft sleeve, and / or The motor gearbox according to any one of claims 9 to 13, characterized in that a fixing groove is provided on the outer peripheral surface of the fixed shaft sleeve.

15. the motor gearbox further includes a first transmission gear; The motor gearbox according to any one of claims 8 to 14, wherein the planetary gear is movably connected to the first protective gear via the first transmission gear.

16. The motor gearbox further includes a second transmission gear mounted on the gearbox output shaft; the second transmission gear is fixed to the gearbox output shaft; The motor gearbox according to any one of claims 8 to 13, wherein the second transmission gear meshes with a second protective gear.

Citation Information

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