Tap lock and scooter

CN224660927UActive Publication Date: 2026-08-21NINE INTELLIGENT CHANGZHOU TECH CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202521487418.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-07-15
Publication Date
2026-08-21
Estimated Expiration
2035-07-15

AI Technical Summary

Technical Problem

在相关技术中,龙头锁的零部件数量较多,装配工序复杂,且制造成本较高

Benefits of technology

[0030]根据本实用新型的实施例的代步车,龙头锁的锁舌可以通过两种方式进行解锁,第一种解锁方式是通过驱动装置驱动第一滑动件运动,以使第一滑动件带动锁舌移动至解锁位置,第二种解锁方式是通过牵引件驱动第二滑动件运动,第二滑动件可以带动第一滑动件同步运动,以使锁舌移动至解锁位置。当锁舌移动至解锁位置时,第一滑动件和第二滑动件中的至少一者可触发位置传感器,以便龙头锁向中控装置发送解锁反馈信号,保证车辆能够正常安全可靠的骑行。另一方面,由于驱动盒和盖板连接且围成容纳腔,驱动装置、第一滑动件和第二滑动件集成在驱动盒和盖板所围成的容纳腔内,相比于“在驱动盒的外侧再罩设一层壳体以容纳第一滑动件和第二滑动件”的方案而言,可以减少壳结构的布置数量,即简化了零部件的组装工序,有利于提高装配效率,制造成本较低。并且由于本实用新型的实施例的代步车的龙头锁的集成度较高,可以减小龙头锁的外形尺寸,减小龙头锁安装时的占用空间。

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224660927U_ABST
    Figure CN224660927U_ABST
Patent Text Reader

Abstract

The faucet lock can reduce the assembly quantity of parts, is favorable for improving assembly efficiency, and has low manufacturing cost.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of mobility scooter technology, specifically to a steering lock and a mobility scooter. Background Technology

[0002] Steering wheel locks are commonly used on electric vehicles, motorcycles, and other mobility scooters. They lock the steering wheel of the scooter after it is parked. The steering wheel lock is electrically connected to the scooter's central locking system, and unlocks and locks under the control of the central locking system. When the steering wheel lock unlocks, it sends an unlock feedback signal to the central locking system. Upon receiving this signal, the central locking system sends a signal to the scooter's power unit, allowing it to operate normally and thus enabling riding. In this technology, steering wheel locks have a large number of parts, complex assembly processes, and high manufacturing costs. Utility Model Content

[0003] This utility model aims to at least partially solve one of the technical problems in the related art.

[0004] Therefore, embodiments of this utility model propose a faucet lock that can reduce the number of parts to be assembled, which is beneficial to improving assembly efficiency and has a lower manufacturing cost.

[0005] An embodiment of this utility model also proposes a mobility scooter.

[0006] The faucet lock of this utility model includes: a housing, the housing including a drive box and a cover plate, the drive box and the cover plate being connected and forming a receiving cavity; a first locking mechanism, the first locking mechanism including a drive device, a first sliding member and a locking tongue, the drive device and the first sliding member being disposed in the receiving cavity, the drive device being used to drive the first sliding member to move along a first direction, the first sliding member being connected to the locking tongue to drive the locking tongue to move between a locked position and an unlocked position; a second locking mechanism, the second locking mechanism including a traction member and a second sliding member, the second sliding member being disposed in the receiving cavity, the traction member being connected to the second sliding member, the traction member being able to drive the first sliding member and the second sliding member to move synchronously along the first direction; and a position sensor, the position sensor being disposed in the receiving cavity, in the unlocked position, at least one of the first sliding member and the second sliding member can trigger the position sensor.

[0007] According to an embodiment of the present invention, the steering lock can be unlocked in two ways. The first unlocking method involves a drive device that moves a first sliding member, causing the first sliding member to move the steering lock to the unlocked position. The second unlocking method involves a traction member that moves a second sliding member, which in turn moves the first sliding member synchronously, causing the steering lock to move to the unlocked position. When the steering lock moves to the unlocked position, at least one of the first and second sliding members can trigger a position sensor, causing the steering lock to send an unlocking feedback signal to the central control device, ensuring the vehicle can be ridden normally, safely, and reliably.

[0008] On the other hand, since the drive box and cover plate are connected and form a receiving cavity, the drive device, the first sliding member, and the second sliding member are integrated within the receiving cavity formed by the drive box and cover plate. Compared to the solution of "adding another shell to the outside of the drive box to accommodate the first and second sliding members," this reduces the number of shell structures, thus simplifying the assembly process of the components, improving assembly efficiency, and lowering manufacturing costs. Furthermore, because the faucet lock of this embodiment has a high degree of integration, the overall size of the faucet lock can be reduced, thus reducing the space occupied during installation.

[0009] In some embodiments, the drive box has a first side plate, the locking tongue passes through the first side plate, and the second locking mechanism further includes a second elastic member, which cooperates with the second sliding member and the housing. In the unlocked position, the second elastic member presses the second sliding member toward the first side plate.

[0010] In some embodiments, at least one of the cover plate and the drive box is provided with a limiting rib, the second sliding member slides in cooperation with the limiting rib along the first direction, one end of the second elastic member is connected to the second sliding member, and the other end of the second elastic member is connected to the limiting rib.

[0011] In some embodiments, the second sliding member is provided with a mounting groove, the second elastic member is provided in the mounting groove, and the limiting rib is provided on the cover plate. When the first sliding member moves in a direction away from the first side plate, the limiting rib slides into the mounting groove and connects with the second elastic member.

[0012] In some embodiments, the second slider includes a first connecting portion and a second connecting portion connected together. The first connecting portion is arranged on one side of the second connecting portion along a second direction, the first direction being orthogonal to the second direction. The first connecting portion is connected to the traction member. The first connecting portion is located on the side of the first slider close to the first side plate. The second elastic member is located on the second connecting portion. When the traction member drives the second slider to move in a direction away from the first side plate, the first connecting portion can drive the first slider to move synchronously to unlock the latch.

[0013] In some embodiments, the drive box has a first side plate, the locking tongue passes through the first side plate, the first locking mechanism includes a first elastic member and a first energy storage block, the drive device is drivenly connected to the first energy storage block, the first energy storage block is slidably connected to the first sliding member along a first direction, and the first elastic member presses the first sliding member in the direction toward the first side plate.

[0014] In some embodiments, the position sensor is a single sensor corresponding to the first slider. When either the driving device or the traction member drives the bolt to move to the unlocked position, the first slider can trigger the position sensor.

[0015] In some embodiments, the position sensor includes a first position sensor and / or a second position sensor;

[0016] The first position sensor corresponds to the first slider. When the driving device drives the bolt to move to the unlock position, the first slider can trigger the first position sensor.

[0017] The second position sensor corresponds to the second slider. When the traction member drives the bolt to move to the unlock position, the second slider can trigger the second position sensor.

[0018] In some embodiments, the position sensor includes a first position sensor disposed within the receiving cavity. The first position sensor has a first button portion that is movable along a third direction. The first direction is orthogonal to the third direction. The first slider has a first inclined surface. When the latch moves from the locked position to the unlocked position, the first inclined surface can drive the first button portion to move along the third direction to trigger the first position sensor.

[0019] In some embodiments, the first slider further has a first plane parallel to the first direction. In the locked position, the first plane is disposed on the side of the first inclined surface away from the first position sensor. In the unlocked position, the first button portion abuts against the first plane.

[0020] In some embodiments, the first slider includes a first main body slider and a first trigger portion connected together, the locking tongue is connected to the first main body slider, the first inclined surface is disposed on the first trigger portion, the first trigger portion and the first position sensor are disposed on the same side of the first main body slider along a second direction, and in the locked position, the first trigger portion and the first position sensor are spaced apart along the first direction, and the first direction, the second direction and the third direction are orthogonal to each other.

[0021] In some embodiments, the position sensor further includes a second position sensor having a second button portion that is movable along the third direction. The second slider has a second inclined surface that drives the second button portion to move along the third direction when the latch moves from the locked position to the unlocked position, thereby triggering the second position sensor.

[0022] In some embodiments, the second slider further has a second plane parallel to the first direction. In the locked position, the second plane is located on the side of the second inclined surface away from the second position sensor. In the unlocked position, the second button portion abuts against the second plane.

[0023] In some embodiments, the first inclined plane and the second inclined plane are arranged side by side along the second direction, the first position sensor and the second position sensor are arranged side by side along the second direction, and the first direction, the second direction and the third direction are orthogonal to each other.

[0024] In some embodiments, the drive box includes a box body and a partition, the partition being disposed within the box body, the cover being connected to the box body, the receiving cavity including a first cavity and a second cavity, the first cavity being disposed between the partition and the box body, the second cavity being disposed between the partition and the cover, the drive device being disposed in the first cavity, and the first slider and the second slider being disposed in the second cavity.

[0025] In some embodiments, the faucet lock further includes an electronic control device, which includes a circuit board and electrical components. The electrical components are disposed on the circuit board, which is located in the first cavity. An opening is provided on the partition, through which the electrical components pass and extend into the second cavity.

[0026] In some embodiments, the clearance includes a first clearance and a second clearance, the first clearance and the second clearance being arranged at a distance from each other on the partition, the electrical component including a needle holder and the position sensor, the position sensor extending through the first clearance and the needle holder extending through the second clearance.

[0027] In some embodiments, the drive box includes a first ring platform, which is connected to the partition and disposed in the second cavity. The first ring platform is arranged circumferentially around the first clearance opening, and a first glue-filled gap is formed between the position sensor and the first ring platform.

[0028] In some embodiments, the drive box includes a second ring platform, which is integrally connected to the partition and disposed in the second cavity. The second ring platform is arranged circumferentially around the second clearance opening and forms a pin insertion cavity, into which the pin seat extends.

[0029] Another embodiment of the mobility scooter of the present invention includes the steering lock described in any one of the embodiments of the present invention.

[0030] According to an embodiment of the present invention, the scooter's steering lock can be unlocked in two ways. The first unlocking method involves a drive device driving a first sliding member to move, causing the first sliding member to move the steering lock to the unlocked position. The second unlocking method involves a traction member driving a second sliding member to move, which in turn drives the first sliding member to move synchronously, causing the steering lock to move to the unlocked position. When the steering lock moves to the unlocked position, at least one of the first and second sliding members can trigger a position sensor, allowing the steering lock to send an unlocking feedback signal to the central control device, ensuring the vehicle can be ridden normally, safely, and reliably. Furthermore, since the drive box and cover plate are connected and form a receiving cavity, the drive device, the first sliding member, and the second sliding member are integrated within this cavity. Compared to the solution of "adding another shell to the outside of the drive box to accommodate the first and second sliding members," this reduces the number of shell structures, simplifying the assembly process, improving assembly efficiency, and lowering manufacturing costs. Furthermore, because the steering wheel lock of the mobility scooter in this embodiment of the invention has a high degree of integration, the size of the steering wheel lock can be reduced, thus reducing the space occupied during installation. Attached Figure Description

[0031] Figure 1 This is a perspective view of the faucet lock according to an embodiment of this utility model.

[0032] Figure 2 This is a top view of the faucet lock according to an embodiment of the present utility model.

[0033] Figure 3 This is an exploded view of the faucet lock according to an embodiment of this utility model.

[0034] Figure 4 This is a perspective view of the faucet lock after the cover plate has been removed, according to an embodiment of this utility model.

[0035] Figure 5 This is a perspective view of the cover plate of the faucet lock according to an embodiment of the present utility model.

[0036] Figure 6 This is a partial schematic diagram of the faucet lock after removing the cover plate and the traction component according to an embodiment of the present utility model.

[0037] Figure 7 This is a perspective view of the faucet lock after removing the cover plate and the second locking mechanism according to an embodiment of the present utility model.

[0038] Figure 8 This is a perspective view of the first locking mechanism of the faucet lock according to an embodiment of the present utility model.

[0039] Figure 9 This is a perspective view of the first locking mechanism of the faucet lock according to an embodiment of the present invention, after the driving device has been removed.

[0040] Figure 10 This is a side view of the first locking mechanism of the faucet lock according to an embodiment of the present invention after the driving device has been removed.

[0041] Figure 11 This is an exploded view of some parts of the first locking mechanism of the faucet lock according to an embodiment of the present invention.

[0042] Figure 12 This is a rear view of the faucet lock after the first sliding member, the second sliding member, and the position sensor are assembled according to an embodiment of the present utility model.

[0043] Figure 13 This is a perspective view of the auger lock assembly consisting of the first sliding member, the second sliding member, and the position sensor, according to an embodiment of this utility model.

[0044] Figure 14 This is a perspective view of the faucet lock after the first and second sliding parts are assembled, according to an embodiment of the present utility model.

[0045] Figure 15 This is an exploded view of the first and second sliding members of the faucet lock according to an embodiment of the present invention.

[0046] Figure 16 This is a perspective view of the first sliding member, the second sliding member, and the position sensor assembled in another embodiment of the faucet lock of this utility model.

[0047] Figure 17This is a perspective view of the first sliding member, the second sliding member, and the position sensor assembled in another embodiment of the faucet lock of this utility model.

[0048] Figure 18 This is a perspective view of the first sliding member, the second sliding member, and the position sensor assembled in another embodiment of the faucet lock of this utility model.

[0049] Figure 19 This is a rear view of the faucet lock according to another embodiment of the present invention, after the first sliding member, the second sliding member, and the position sensor are assembled.

[0050] Figure 20 This is a perspective view of the assembled drive box and electronic control device of the faucet lock according to an embodiment of the present invention.

[0051] Figure 21 This is an exploded view of the faucet lock's drive box and electronic control device assembled according to an embodiment of this utility model.

[0052] Figure 22 This is an exploded view from another perspective of the assembled drive box and electronic control device of the faucet lock according to an embodiment of the present invention.

[0053] Figure 23 This is an exploded view of the electronic control device of the faucet lock according to an embodiment of this utility model.

[0054] Figure label:

[0055] 1. Outer shell; 11. Drive box; 111. Box body; 112. Partition; 1121. Clearance opening; 11211. First clearance opening; 11212. Second clearance opening; 113. First side plate; 12. Cover plate; 121. Limiting rib; 13. Receiving cavity; 131. First cavity; 132. Second cavity; 14. First annular platform; 141. First filling gap; 15. Second annular platform; 151. Pin cavity; 16. Ear socket; 161. Mating hole; 17. Pressing plate;

[0056] 2. First locking mechanism; 21. Drive device; 211. Drive motor; 212. Worm gear; 213. Gear set; 22. First sliding member; 221. First inclined surface; 222. First plane; 223. First main body slider; 224. First trigger part; 23. Locking tongue; 24. First elastic member; 25. First energy storage block; 251. Rack part;

[0057] 3. Second locking mechanism; 31. Traction member; 32. Second sliding member; 321. First connecting part; 322. Second connecting part; 323. Mounting groove; 324. Second inclined surface; 325. Second plane; 33. Second elastic member;

[0058] 4. Electrical components; 41. Position sensor; 411. First position sensor; 4111. First button section; 412. Second position sensor; 4121. Second button section; 42. Pin holder; 43. Motor conductive sheet; 431. Conductive sheet body; 432. Bending section;

[0059] 5. Circuit board. Detailed Implementation

[0060] The embodiments of the present invention are described in detail below, examples of which are shown in the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain the present invention, and should not be construed as limiting the present invention.

[0061] The following is a reference appendix. Figures 1 to 23 This invention describes a faucet lock and a mobility scooter according to embodiments of the present invention.

[0062] like Figures 1 to 4 As shown, the faucet lock of this utility model embodiment includes: a housing 1, a first locking mechanism 2, a second locking mechanism 3, and a position sensor 41. The housing 1 includes a drive box 11 and a cover plate 12. The drive box 11 and the cover plate 12 are connected and form a receiving cavity 13. The position sensor 41 is disposed in the receiving cavity 13.

[0063] The first locking mechanism 2 includes a driving device 21, a first sliding member 22, and a locking tongue 23. The driving device 21 and the first sliding member 22 are both located in the receiving cavity 13. The driving device 21 is used to drive the first sliding member 22 to move along a first direction. The first sliding member 22 is connected to the locking tongue 23 to drive the locking tongue 23 to move between the locked position and the unlocked position.

[0064] The second locking mechanism 3 includes a traction member 31 and a second sliding member 32. The second sliding member 32 is disposed in the receiving cavity 13. The traction member 31 is connected to the second sliding member 32. The traction member 31 can drive the first sliding member 22 and the second sliding member 32 to move synchronously in a first direction. In the unlocked position, at least one of the first sliding member 22 and the second sliding member 32 can trigger the position sensor 41.

[0065] According to an embodiment of the present invention, the throttle lock of the present invention allows the latch 23 to be unlocked in two ways. The first unlocking method involves the drive device 21 driving the first sliding member 22 to move, causing the first sliding member 22 to move the latch 23 to the unlocked position. The second unlocking method involves the traction member 31 driving the second sliding member 32 to move, which in turn drives the first sliding member 22 to move synchronously, thus moving the latch 23 to the unlocked position. When the latch 23 moves to the unlocked position, at least one of the first sliding member 22 and the second sliding member 32 can trigger the position sensor 41, causing the throttle lock to send an unlocking feedback signal to the central control device. In other words, both unlocking methods can drive the latch 23 to reciprocate between the locked and unlocked positions, ensuring that the latch 23 can be successfully unlocked and trigger the position sensor 41, thus ensuring the vehicle can be ridden normally, safely, and reliably.

[0066] On the other hand, since the drive box 11 and the cover plate 12 are connected and form a receiving cavity 13, the drive device 21, the first sliding member 22, and the second sliding member 32 are integrated within the receiving cavity 13 formed by the drive box 11 and the cover plate 12. Compared with the solution of "adding another shell to the outside of the drive box 11 to accommodate the first sliding member 22 and the second sliding member 32", the number of shell structures can be reduced, which simplifies the assembly process of the parts, improves assembly efficiency, and reduces manufacturing costs. Furthermore, since the faucet lock of this embodiment has a high degree of integration, the external size of the faucet lock can be reduced, thus reducing the space occupied during installation.

[0067] In other words, the faucet lock of this utility model integrates the drive device 21, the first sliding member 22 and the second sliding member 32 into the same housing 1, without the need to set up a housing on the outside of the drive box 11 to accommodate the transmission structure of the first sliding member 22 and the second sliding member 32, thereby reducing the number of parts assembled and occupying less space.

[0068] like Figure 1 , Figure 2 and Figure 4 As shown, the first direction can be the front-to-back direction of the faucet lock. When the latch 23 moves from the locked position to the unlocked position, the first sliding member 22 and the latch 23 can move synchronously from front to back. That is, when the latch 23 moves from the locked position to the unlocked position, the latch 23 can retract completely or partially into the receiving cavity 13. When the latch 23 moves from the unlocked position to the locked position, the first sliding member 22 and the latch 23 can move synchronously from back to front. That is, when the latch 23 moves from the unlocked position to the locked position, the front end of the latch 23 can extend out of the receiving cavity 13.

[0069] Optionally, such as Figure 4As shown, the drive box 11 has a first side plate 113, and the locking tongue 23 passes through the first side plate 113. The second locking mechanism 3 also includes a second elastic element 33, which cooperates with the second sliding element 32 and the outer shell 1. In the unlocked position, the second elastic element 33 presses the second sliding element 32 towards the first side plate 113. It can be understood that when the locking tongue 23 is in the unlocked position, the second elastic element 33 has elastic potential energy. When the traction force of the traction member 31 is removed (i.e., the external force of the traction member 31 acting on the second sliding element 32 is less than the elastic force of the second elastic element 33), the second elastic element 33 can drive the second sliding element 32 to move towards the first side plate 113, so as to push the first sliding element 22 and the locking tongue 23 to the locked position. This ensures that the second locking mechanism 3 can drive the locking tongue 23 to move normally, and the structure design is simple and requires fewer parts.

[0070] like Figure 5 and Figure 6 As shown, at least one of the cover plate 12 and the drive box 11 is provided with a limiting rib 121. The second sliding member 32 slides in cooperation with the limiting rib 121 along the first direction. One end of the second elastic member 33 is connected to the second sliding member 32, and the other end of the second elastic member 33 is connected to the limiting rib 121. It can be understood that when the operator applies a traction force to the traction member 31, the second sliding member 32 moves in the direction from front to back. Since the other end of the second elastic member 33 is positionally constrained by the limiting rib 121, the second sliding member 32 can drive the second elastic member 33 to move toward the limiting rib 121 and compress the second elastic member 33. When the traction force of the traction member 31 is removed, the second elastic member 33 can drive the second sliding member 32 to move toward the first side plate 113, so as to push the first sliding member 22 and the locking tongue 23 to the locked position.

[0071] The faucet lock of this utility model simplifies the reset process of the second sliding member 32 by using the above-described installation method for the second elastic member 33, which reduces the number of parts used and has a simple structural design and reliable movement.

[0072] For example, such as Figure 6 As shown, the second sliding member 32 has a mounting groove 323, the second elastic member 33 is disposed in the mounting groove 323, and the limiting rib 121 is disposed on the cover plate 12. When the first sliding member 22 moves in a direction away from the first side plate 113, the limiting rib 121 slides into the mounting groove 323 and connects with the second elastic member 33. Figure 5 and Figure 6As shown, the limiting rib 121 is located behind the second elastic member 33. When the second sliding member 32 moves backward, the limiting rib 121 can constrain the position of the second elastic member 33. Since the second elastic member 33 is located in the mounting groove 323, the space occupied by the second locking mechanism 3 can be reduced, so as to facilitate the arrangement of other components in the receiving cavity 13.

[0073] Additionally, since the limiting rib 121 is provided on the cover plate 12, the first sliding member 22 is in a direction away from the first side plate 113 (e.g. Figure 6 When the second sliding member 32 moves from front to back, the limiting rib 121 can slide into the mounting groove 323. Thus, the limiting rib 121 can both constrain the position of the second elastic member 33 and guide the forward and backward sliding of the second sliding member 32, which helps to improve the stability of the second sliding member 32 during movement, reduce the probability of the second sliding member 32 getting stuck, and make the movement process of the second locking mechanism 3 smoother.

[0074] like Figure 6 As shown, the second elastic element 33 is a cylindrical spring, which extends in the front-to-back direction and is located in the mounting groove 323.

[0075] like Figure 3 As shown, the outer casing 1 also includes a pressure plate 17, which is connected to the outer wall of the cover plate 12. A traction member 31 is located between the pressure plate 17 and the cover plate 12 to fix the traction member 31. Exemplarily, the traction member 31 is a pull cable, and a protective sleeve on the outside of the pull cable is fixed between the pressure plate 17 and the cover plate 12.

[0076] Optionally, such as Figure 6 , Figure 13 and Figure 15 As shown, the second slider 32 includes a first connecting portion 321 and a second connecting portion 322 connected together, the first connecting portion 321 being along a second direction (e.g., Figure 6 The first connecting part 321 (in the left-right direction) is arranged on one side of the second connecting part 322, and the first direction is orthogonal to the second direction. The first connecting part 321 is connected to the traction member 31. The first connecting part 321 is located on the side of the first sliding member 22 near the first side plate 113. The second elastic member 33 is located on the second connecting part 322. When the traction member 31 drives the second sliding member 32 to move in a direction away from the first side plate 113, the first connecting part 321 can drive the first sliding member 22 to move synchronously to unlock the locking tongue 23.

[0077] like Figure 6As shown, since the first connecting portion 321 is located on the side of the first sliding member 22 near the first side plate 113, when the traction member 31 drives the second sliding member 32 to move in a front-to-back direction, the first connecting portion 321 of the second sliding member 32 can push the first sliding member 22 to slide synchronously in a front-to-back direction. When the driving device 21 drives the first sliding member 22 to move in a front-to-back direction, the first sliding member 22 will not drive the second sliding member 32 to move; that is, the driving device 21 only drives the first sliding member 22 to move back and forth, without driving the second sliding member 32 to move.

[0078] Therefore, when the drive unit 21 is in normal use, the movement of the first locking mechanism 2 will not affect the second locking mechanism 3, meaning the second locking mechanism 3 remains stationary. When the drive unit 21 malfunctions, the second locking mechanism 3 can serve as a backup to unlock and lock the bolt 23, thereby improving the reliability of the steering lock and providing reliable protection for the safe riding of the scooter.

[0079] Optionally, such as Figure 4 , Figure 9 and Figure 11 As shown, the drive box 11 has a first side plate 113, and the locking tongue 23 passes through the first side plate 113. The first locking mechanism 2 includes a first elastic member 24 and a first energy storage block 25. The drive device 21 is drivenly connected to the first energy storage block 25. The first energy storage block 25 is slidably connected to the first sliding member 22 along a first direction. The first elastic member 24 presses the first sliding member 22 toward the first side plate 113. When the second locking mechanism 3 drives the locking tongue 23 to lock (extend), the drive device 21 can push the first energy storage block 25 forward. The first energy storage block 25 can push the first sliding member 22 forward through the first elastic member 24, so that the locking tongue 23 is locked (extended).

[0080] Since the first energy storage block 25 is slidably connected to the first sliding member 22 along the first direction, the first elastic member 24 presses against the first sliding member 22 in the direction of the first side plate 113. Therefore, when the drive device 21 fails, the second locking mechanism 3 can also push the first sliding member 22 to move backward, and when the first elastic member 24 can compress the stored energy, and when the traction member 31 in the second locking mechanism 3 releases the tension, the first elastic member 24 can reset to push the first sliding member 22 and the locking tongue 23 to move forward.

[0081] like Figure 8 and Figure 10As shown, the drive device 21 includes a drive motor 211, a worm gear 212, and a gear set 213. The first energy storage block 25 has a rack portion 251. The drive motor 211 is connected to the worm gear 212, the worm gear 212 meshes with the gear set 213, and the gear set 213 meshes with the rack portion 251. It can be understood that the drive motor 211 can drive the worm gear 212 to rotate, the worm gear 212 can drive the gear set 213 to rotate, and the gear set 213 drives the rack portion 251 to move in the front-back direction (first direction) to push the first sliding member 22 and the locking tongue 23 to slide back and forth.

[0082] In one example, such as Figure 19 As shown, there is one position sensor 41, which corresponds to the first sliding member 22. When either the driving device 21 or the traction member 31 drives the bolt 23 to move to the unlocked position, the first sliding member 22 can trigger the position sensor 41. That is, the first locking mechanism 2 and the second locking mechanism 3 can drive the first sliding member 22 to trigger the same position sensor 41. By setting a single position sensor 41, the faucet lock of this embodiment can reduce the manufacturing cost of the faucet lock.

[0083] In another example, such as Figure 12 , Figures 16 to 18 As shown, the position sensor 41 includes a first position sensor 411 and a second position sensor 412; the first position sensor 411 corresponds to the first slider 22, and the first slider 22 can trigger the first position sensor 411 when the driving device 21 drives the bolt 23 to move to the unlock position; the second position sensor 412 corresponds to the second slider 32, and the second slider 32 can trigger the second position sensor 412 when the traction member 31 drives the bolt 23 to move to the unlock position.

[0084] When the first position sensor 411 malfunctions and cannot send an unlocking feedback signal to the central control device, the second locking mechanism 3 can be activated. That is, the traction member 31 can pull the second sliding member 32 to move backward, and the second sliding member 32 pushes the first sliding member 22 to move backward, thereby driving the locking tongue 23 to the unlock position. At this time, the second sliding member 32 can trigger the second position sensor 412. After the central control device receives the unlocking feedback signal sent by the second position sensor 412, it allows the mobility scooter to be ridden normally.

[0085] Furthermore, the first locking mechanism 2 and the second locking mechanism 3 are independent of each other, and the backward movement of the first sliding member 22 will not affect the second sliding member 32. When the first position sensor 411 is functioning properly, only the first locking mechanism 2 is needed. When the first position sensor 411 malfunctions, the second position sensor 412 serves as a spare part, cooperating with the second locking mechanism 3 to send an unlocking feedback signal to the central control device, thereby ensuring that the mobility scooter can be ridden normally. Therefore, the second position sensor 412 has a low usage frequency and a long lifespan, providing reliable assurance for the normal and safe riding of the mobility scooter when the first position sensor 411 fails.

[0086] In addition, since the second locking mechanism 3 triggers and resets the second position sensor 412 through the traction member 31, the second sliding member 32 and the second elastic member 33, the number of parts of the second locking mechanism 3 can be reduced, thereby making the movement of the second locking mechanism 3 reliable, enhancing the triggering stability of the second position sensor 412, and helping to improve the safe service life of the second position sensor 412.

[0087] Optionally, such as Figure 7 and Figure 12 As shown, the position sensor 41 includes a first position sensor 411, which is disposed within the receiving cavity 13. The first position sensor 411 has a first button portion 4111, which is located along a third direction (e.g., Figure 12 The first slider 22 is movable in the up and down direction. The first direction is orthogonal to the third direction. The first slider 22 has a first inclined surface 221. When the locking tongue 23 moves from the locked position to the unlocked position, the first inclined surface 221 can drive the first button part 4111 to move along the third direction to trigger the first position sensor 411.

[0088] It is understandable that when the first slider 22 moves from front to back, the first inclined surface 221 can gradually approach and press down on the first button part 4111. Thus, within a certain range where the locking tongue 23 and the first slider 22 slide backward, the first slider 22 can continuously trigger the first position sensor 411 under the action of the first inclined surface 221. This ensures the reliability of the triggering of the first position sensor 411 and provides a reliable guarantee for the normal and safe riding of the mobility scooter.

[0089] Compared to the previous solution where "the button portion of the first position sensor 411 is movable along a first direction, and the first slider 22 uses a push-type triggering mechanism for the first position sensor 411," this application ensures reliable contact between the first slider 22 and the first position sensor 411, allowing the first position sensor 411 to be continuously triggered within a wider safety range. Furthermore, guided by the first inclined surface 221 of the first slider 22, the impact force of the first slider 22 on the first button portion 4111 is smaller, thereby extending the service life of the first position sensor 411 and reducing the risk of damage to the first position sensor 411.

[0090] Optionally, such as Figure 7 , Figure 14 and Figure 15 As shown, the first slider 22 also has a first plane 222, which is parallel to the first direction. In the locked position, the first plane 222 is located on the side of the first inclined surface 221 away from the first position sensor 411. In the unlocked position, the first button part 4111 abuts against the first plane 222.

[0091] Understandably, when the first slider 22 moves from front to back, the first inclined surface 221 can gradually approach and press down on the first button portion 4111. As the first slider 22 continues to move backward, the first flat surface 222 can contact the first button portion 4111, thereby ensuring that the first position sensor 411 is always in a triggered (pressed) state. Thus, within a certain range during the backward sliding of the latch 23 and the first slider 22, the first slider 22 can continuously trigger the first position sensor 411 under the action of the first flat surface 222, thereby ensuring the reliability of the triggering of the first position sensor 411 and providing a reliable guarantee for the normal and safe riding of the mobility scooter.

[0092] like Figure 10 As shown, the first inclined surface 221 gradually extends upward in a front-to-back direction, and the first flat surface 222 is located on the front side of the first inclined surface 221. When the first slider 22 moves in a front-to-back direction, the first button part 4111 comes into contact with the first flat surface 222 after being pressed by the first inclined surface 221.

[0093] Optionally, such as Figure 11 As shown, the first slider 22 includes a first main body slider 223 and a first trigger part 224 connected together. The locking tongue 23 is connected to the first main body slider 223. A first inclined surface 221 is provided on the first trigger part 224. The first trigger part 224 and the first position sensor 411 are along a second direction (e.g., Figure 11The first trigger part 224 and the first position sensor 411 are located on the same side of the first main body slider 223 (in the left-right direction). In the locked position, the first trigger part 224 and the first position sensor 411 are spaced apart along the first direction, and the first direction, the second direction, and the third direction are orthogonal to each other. It can be understood that the first trigger part 224 is located along the second direction on the side of the first main body slider 223 near the second sliding member 32, and the first trigger part 224 and the first position sensor 411 are generally located between the second sliding member 32 and the first main body slider 223. By adopting the above-described structure for the first sliding member 22, the faucet lock of this embodiment of the present invention can optimize the arrangement of components in the receiving cavity 13, which is beneficial to improving space utilization.

[0094] For example, the first position sensor 411 is a micro switch.

[0095] Optionally, such as Figures 12 to 14 As shown, the position sensor 41 also includes a second position sensor 412, which has a second button portion 4121. The second button portion 4121 is located along a third direction (e.g., Figure 12 The second slider 32 is movable in the vertical direction. It has a second inclined surface 324. When the latch 23 moves from the locked position to the unlocked position, the second inclined surface 324 can drive the second button part 4121 to move in the third direction to trigger the second position sensor 412.

[0096] It is understandable that when the second slider 32 moves from front to back, the second inclined surface 324 can gradually approach and press down on the second button part 4121. Thus, within a certain range of the second slider 32 sliding backward, the second slider 32 can continuously trigger the second position sensor 412 under the action of the second inclined surface 324. This can ensure the reliability of the triggering of the second position sensor 412 and provide a reliable guarantee for the normal and safe riding of the mobility scooter.

[0097] Compared to the previous solution where "the button portion of the second position sensor 412 is movable along a first direction, and the second slider 32 uses a push-type triggering mechanism for the second position sensor 412," this application ensures reliable contact between the second slider 32 and the second position sensor 412, allowing the second position sensor 412 to be continuously triggered within a wider safety range. Furthermore, guided by the second inclined surface 324 of the second slider 32, the impact force of the second slider 32 on the second button portion 4121 is reduced, thereby extending the service life of the second position sensor 412 and reducing the risk of damage to the second position sensor 412.

[0098] Optionally, such as Figure 14 and Figure 15As shown, the second slider 32 also has a second plane 325, which is parallel to the first direction. In the locked position, the second plane 325 is located on the side of the second inclined surface 324 away from the second position sensor 412. In the unlocked position, the second button part 4121 abuts against the second plane 325.

[0099] Understandably, when the second slider 32 moves from front to back, the second inclined surface 324 can gradually approach and press down on the second button portion 4121. As the second slider 32 continues to move backward, the second flat surface 325 can contact the second button portion 4121, thereby ensuring that the second position sensor 412 is always in a triggered (pressed) state. Therefore, within a certain range of the second slider 32 sliding backward, the second slider 32 can continuously trigger the second position sensor 412 under the action of the second flat surface 325, thus ensuring the reliability of the triggering of the second position sensor 412 and providing a reliable guarantee for the normal and safe riding of the mobility scooter.

[0100] like Figure 12 and Figure 14 As shown, the second inclined surface 324 gradually extends upward in the direction from front to back, and the second flat surface 325 is provided on the front side of the second inclined surface 324. When the second slider 32 moves in the direction from front to back, the second button part 4121 comes into contact with the second flat surface 325 after being pressed by the second inclined surface 324.

[0101] Optionally, such as Figure 12 and Figure 14 As shown, the first inclined surface 221 and the second inclined surface 324 are arranged side by side along the second direction, and the first position sensor 411 and the second position sensor 412 are also arranged side by side along the second direction. The first direction, the second direction, and the third direction are all orthogonal to each other. This allows for a compact arrangement of the first position sensor 411 and the second position sensor 412, and the distance between the first inclined surface 221 and the first position sensor 411 is approximately equal to the distance between the second inclined surface 324 and the second position sensor 412, ensuring that the trigger strokes of the first locking mechanism 2 and the second locking mechanism 3 are consistent.

[0102] For example, the second position sensor 412 is a micro switch.

[0103] Optionally, such as Figures 20 to 22As shown, the drive box 11 includes a box body 111 and a partition 112. The partition 112 is disposed inside the box body 111. The cover plate 12 is connected to the box body 111. The receiving cavity 13 includes a first cavity 131 and a second cavity 132. The first cavity 131 is disposed between the partition 112 and the box body 111, and the second cavity 132 is disposed between the partition 112 and the cover plate 12. The drive device 21 is disposed in the first cavity 131, and the first sliding member 22 and the second sliding member 32 are disposed in the second cavity 132. The faucet lock of this embodiment of the present invention can facilitate the support of the first sliding member 22 and the second sliding member 32 by setting the partition 112. Furthermore, since the drive device 21 is independently disposed in the first cavity 131, the first cavity 131 can be sealed separately, thereby improving the electrical safety of the drive device 21.

[0104] Optionally, such as Figures 21 to 23 As shown, the faucet lock also includes an electronic control device, which includes a circuit board 5 and an electrical component 4. The electrical component 4 is mounted on the circuit board 5, which is located within the first cavity 131. A clearance opening 1121 is provided on the partition 112, through which the electrical component 4 passes and extends into the second cavity 132. Because the circuit board 5 is located within the first cavity 131, it can be protected by the first cavity 131, reducing the probability of the circuit board 5 coming into contact with water. Furthermore, because the electrical component 4 passes through the clearance opening 1121 and extends into the second cavity 132, it facilitates the assembly of the circuit board 5 with the drive box 11.

[0105] In other words, when assembling the components of the faucet lock, the circuit board 5 and the electrical component 4 can be pre-assembled together, and then the assembled electronic control device can be installed in the drive box 11. That is, the circuit board 5 is placed in the first cavity 131, and the electrical component 4 passes through the clearance opening 1121 and extends into the second cavity 132, which facilitates the automated assembly of the electronic control device.

[0106] Optionally, such as Figure 21 and Figure 22 As shown, the clearance opening 1121 includes a first clearance opening 11211 and a second clearance opening 11212. The first clearance opening 11211 and the second clearance opening 11212 are arranged at intervals on the partition 112. The electrical component 4 includes a pin holder 42 and a position sensor 41. The position sensor 41 extends through the first clearance opening 11211, and the pin holder 42 extends through the second clearance opening 11212. The position sensor 41 extends from the first clearance opening 11211 to the second cavity 132, which facilitates the cooperation between the first sliding member 22 and the second sliding member 32 and the position sensor 41. The pin holder 42 extends from the second clearance opening 11212 to the second cavity 132, which facilitates the cooperation between the pin head of the external wire harness and the pin holder 42.

[0107] The position sensor 41 is provided with a sealing structure at the mating position with the first clearance port 11211, and the needle seat 42 is provided with a sealing structure at the mating position with the second clearance port 11212, so as to improve the waterproof sealing effect of the first cavity 131 and prevent the circuit board 5 from contacting water.

[0108] For example, such as Figure 6 and Figure 20 As shown, the drive box 11 includes a first ring platform 14, which is connected to the partition 112 and disposed in the second cavity 132. The first ring platform 14 is arranged circumferentially around the first clearance opening 11211, and there is a first glue-filling gap 141 between the position sensor 41 and the first ring platform 14.

[0109] Understandably, the first sealant gap 141 allows sufficient sealant to be stored at the contact point between the position sensor 41 and the first ring platform 14, ensuring the reliability of the seal between the position sensor 41 and the first clearance opening 11211. Furthermore, the design of the first sealant gap 141 prevents sealant overflow during application or delamination of the sealant layer.

[0110] For example, the first ring platform 14 and the partition plate 112 are integrally formed.

[0111] For example, such as Figure 20 and Figure 21 As shown, the drive box 11 includes a second annular platform 15, which is integrally connected to the partition 112 and located in the second cavity 132. The second annular platform 15 is arranged circumferentially around the second clearance opening 11212, forming a pin insertion cavity 151, into which the pin seat 42 extends. It is understood that the integral molding of the second annular platform 15 and the partition 112 avoids water ingress at the connection point compared to a separate connection between the second annular platform 15 and the partition 112, thereby further improving the waterproof sealing effect at the pin seat 42 position.

[0112] Optionally, such as Figures 21 to 23 As shown, the electronic control device also includes a motor conductive plate 43. The motor conductive plate 43 includes a conductive plate body 431 and a bent portion 432. The bent portion 432 is located at the end of the conductive plate body 431. Both the conductive plate body 431 and the bent portion 432 are connected to the circuit board 5. The conductive plate body 431 can be inserted downward into the drive motor 211 to supply power to the drive motor 211. Since both the conductive plate body 431 and the bent portion 432 are connected to the circuit board 5, there are two fixed points between the motor conductive plate 43 and the circuit board 5 to ensure that the motor conductive plate 43 can be vertically inserted into the circuit board 5 before soldering, thus preventing positional displacement of the motor conductive plate 43 during the soldering process.

[0113] like Figure 1 As shown, the outer casing 1 also includes an ear seat 16, which is connected to the first side plate 113 of the drive box 11. The ear seat 16 is provided with a mating hole 161 for connecting the frame. A bolt is inserted into the mating hole 161 to install the steering lock onto the frame.

[0114] Another embodiment of the mobility scooter of this utility model includes the steering lock of this utility model. For example, the mobility scooter can be an electric two-wheeler or a motorcycle.

[0115] According to an embodiment of the present invention, the steering lock's bolt 23 can be unlocked in two ways. The first unlocking method involves the drive device 21 driving the first sliding member 22 to move, causing the first sliding member 22 to move the bolt 23 to the unlocked position. The second unlocking method involves the traction member 31 driving the second sliding member 32 to move, which in turn drives the first sliding member 22 to move synchronously, thus moving the bolt 23 to the unlocked position. When the bolt 23 moves to the unlocked position, at least one of the first sliding member 22 and the second sliding member 32 can trigger the position sensor 41, causing the steering lock to send an unlocking feedback signal to the central control device, ensuring the vehicle can be ridden normally, safely, and reliably. On the other hand, since the drive box 11 and the cover plate 12 are connected and form a receiving cavity 13, the drive device 21, the first sliding member 22, and the second sliding member 32 are integrated within the receiving cavity 13 formed by the drive box 11 and the cover plate 12. Compared with the solution of "adding another shell to the outside of the drive box 11 to accommodate the first sliding member 22 and the second sliding member 32", the number of shell structures can be reduced, which simplifies the assembly process of the parts, improves assembly efficiency, and reduces manufacturing costs. Furthermore, since the steering lock of the mobility scooter in this embodiment of the present invention has a high degree of integration, the external size of the steering lock can be reduced, and the space occupied during the installation of the steering lock can be reduced.

[0116] In the description of this utility model, it should be understood that the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential", etc., indicating the orientation or positional relationship are based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this utility model and simplifying the description, and are not intended to indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model.

[0117] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, a feature defined as "first" or "second" may explicitly or implicitly include at least one of that feature. In the description of this utility model, "a plurality of" means at least two, such as two, three, etc., unless otherwise explicitly specified.

[0118] In this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," "joining," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection, an electrical connection, or a connection that allows communication between them; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components, unless otherwise explicitly limited. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.

[0119] In this utility model, unless otherwise explicitly specified and limited, "above" or "below" the second feature can mean that the first feature is in direct contact with the second feature, or that the first feature is in indirect contact with the second feature through an intermediate medium. Furthermore, "above," "on top of," and "over" the second feature can mean that the first feature is directly above or diagonally above the second feature, or simply that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature can mean that the first feature is directly below or diagonally below the second feature, or simply that the first feature is at a lower horizontal level than the second feature.

[0120] In this utility model, the terms "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., refer to a specific feature, structure, material, or characteristic described in connection with that embodiment or example, which is included in at least one embodiment or example of this utility model. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. Moreover, without contradiction, those skilled in the art can combine and integrate the different embodiments or examples described in this specification, as well as the features of different embodiments or examples.

[0121] Although the above embodiments have been shown and described, it is understood that the above embodiments are exemplary and should not be construed as limiting the present invention. Any changes, modifications, substitutions and variations made to the above embodiments by those skilled in the art are within the protection scope of the present invention.

Claims

1. A faucet lock, characterized in that, include: The outer casing (1) includes a drive box (11) and a cover plate (12), the drive box (11) and the cover plate (12) are connected and form a receiving cavity (13); The first locking mechanism (2) includes a driving device (21), a first sliding member (22), and a locking tongue (23). The driving device (21) and the first sliding member (22) are both located in the receiving cavity (13). The driving device (21) is used to drive the first sliding member (22) to move along a first direction. The first sliding member (22) is connected to the locking tongue (23) to drive the locking tongue (23) to move between the locked position and the unlocked position. The second locking mechanism (3) includes a traction member (31) and a second sliding member (32). The second sliding member (32) is disposed in the receiving cavity (13). The traction member (31) is connected to the second sliding member (32). The traction member (31) can drive the first sliding member (22) and the second sliding member (32) to move synchronously along the first direction. A position sensor (41) is disposed in the receiving cavity (13). In the unlocked position, at least one of the first slider (22) and the second slider (32) can trigger the position sensor (41).

2. The faucet lock according to claim 1, characterized in that, The drive box (11) has a first side plate (113), the locking tongue (23) passes through the first side plate (113), and the second locking mechanism (3) further includes a second elastic member (33). The second elastic member (33) cooperates with the second sliding member (32) and the outer shell (1). In the unlocked position, the second elastic member (33) presses the second sliding member (32) toward the first side plate (113).

3. The faucet lock according to claim 2, characterized in that, At least one of the cover plate (12) and the drive box (11) is provided with a limiting rib (121), the second sliding member (32) slides in cooperation with the limiting rib (121) along the first direction, one end of the second elastic member (33) is connected to the second sliding member (32), and the other end of the second elastic member (33) is connected to the limiting rib (121).

4. The faucet lock according to claim 3, characterized in that, The second sliding member (32) is provided with a mounting groove (323), the second elastic member (33) is provided in the mounting groove (323), and the limiting rib (121) is provided on the cover plate (12). When the first sliding member (22) moves in a direction away from the first side plate (113), the limiting rib (121) slides into the mounting groove (323) and connects with the second elastic member (33).

5. The faucet lock according to claim 2, characterized in that, The second sliding member (32) includes a first connecting part (321) and a second connecting part (322) connected together. The first connecting part (321) is arranged on one side of the second connecting part (322) along a second direction. The first direction is orthogonal to the second direction. The first connecting part (321) is connected to the traction member (31). The first connecting part (321) is located on the side of the first sliding member (22) close to the first side plate (113). The second elastic member (33) is located on the second connecting part (322). When the traction member (31) drives the second sliding member (32) to move in a direction away from the first side plate (113), the first connecting part (321) can drive the first sliding member (22) to move synchronously to unlock the locking tongue (23).

6. The faucet lock according to claim 1, characterized in that, The drive box (11) has a first side plate (113), the locking tongue (23) passes through the first side plate (113), the first locking mechanism (2) includes a first elastic member (24) and a first energy storage block (25), the drive device (21) is connected to the first energy storage block (25) in a transmission connection, the first energy storage block (25) is slidably connected to the first sliding member (22) in a first direction, and the first elastic member (24) presses the first sliding member (22) in the direction toward the first side plate (113).

7. The faucet lock according to any one of claims 1-6, characterized in that, The position sensor (41) is one, and the position sensor (41) corresponds to the first sliding member (22). When either the driving device (21) or the traction member (31) drives the locking tongue (23) to move to the unlocked position, the first sliding member (22) can trigger the position sensor (41). Alternatively, the position sensor (41) may include a first position sensor (411) and / or a second position sensor (412); The first position sensor (411) corresponds to the first slider (22). When the driving device (21) drives the bolt (23) to move to the unlock position, the first slider (22) can trigger the first position sensor (411). The second position sensor (412) corresponds to the second slider (32). When the traction member (31) drives the locking tongue (23) to move to the unlock position, the second slider (32) can trigger the second position sensor (412).

8. The faucet lock according to any one of claims 1-6, characterized in that, The position sensor (41) includes a first position sensor (411), which is disposed in the receiving cavity (13). The first position sensor (411) has a first button (4111) which is movable along a third direction. The first direction is orthogonal to the third direction. The first slider (22) has a first inclined surface (221). When the latch (23) moves from the locked position to the unlocked position, the first inclined surface (221) can drive the first button (4111) to move along the third direction to trigger the first position sensor (411).

9. The faucet lock according to claim 8, characterized in that, The first slider (22) also has a first plane (222), which is parallel to the first direction. In the locked position, the first plane (222) is located on the side of the first inclined surface (221) away from the first position sensor (411). In the unlocked position, the first button part (4111) abuts against the first plane (222). And / or, the first slider (22) includes a first main body slider (223) and a first trigger part (224) connected together, the locking tongue (23) is connected to the first main body slider (223), the first inclined surface (221) is provided on the first trigger part (224), the first trigger part (224) and the first position sensor (411) are provided on the same side of the first main body slider (223) along the second direction, and in the locked position, the first trigger part (224) and the first position sensor (411) are spaced apart along the first direction, and the first direction, the second direction and the third direction are orthogonal to each other.

10. The faucet lock according to claim 8, characterized in that, The position sensor (41) further includes a second position sensor (412), which has a second button (4121) that is movable along the third direction. The second slider (32) has a second inclined surface (324). When the latch (23) moves from the locked position to the unlocked position, the second inclined surface (324) can drive the second button (4121) to move along the third direction to trigger the second position sensor (412).

11. The faucet lock according to claim 10, characterized in that, The second slider (32) also has a second plane (325), which is parallel to the first direction. In the locked position, the second plane (325) is located on the side of the second inclined surface (324) away from the second position sensor (412). In the unlocked position, the second button part (4121) abuts against the second plane (325). And / or, the first inclined plane (221) and the second inclined plane (324) are arranged side by side along the second direction, the first position sensor (411) and the second position sensor (412) are arranged side by side along the second direction, and the first direction, the second direction and the third direction are orthogonal to each other.

12. The faucet lock according to any one of claims 1-6, characterized in that, The drive box (11) includes a box body (111) and a partition (112). The partition (112) is disposed inside the box body (111). The cover plate (12) is connected to the box body (111). The receiving cavity (13) includes a first cavity (131) and a second cavity (132). The first cavity (131) is disposed between the partition (112) and the box body (111). The second cavity (132) is disposed between the partition (112) and the cover plate (12). The drive device (21) is disposed in the first cavity (131). The first sliding member (22) and the second sliding member (32) are disposed in the second cavity (132).

13. The faucet lock according to claim 12, characterized in that, The faucet lock also includes an electronic control device, which includes a circuit board (5) and an electrical component (4). The electrical component (4) is disposed on the circuit board (5), which is located in the first cavity (131). A clearance opening (1121) is provided on the partition (112). The electrical component (4) passes through the clearance opening (1121) and extends into the second cavity (132).

14. The faucet lock according to claim 13, characterized in that, The clearance opening (1121) includes a first clearance opening (11211) and a second clearance opening (11212). The first clearance opening (11211) and the second clearance opening (11212) are arranged at intervals on the partition plate (112). The electrical component (4) includes a needle holder (42) and a position sensor (41). The position sensor (41) passes through the first clearance opening (11211), and the needle holder (42) passes through the second clearance opening (11212).

15. The faucet lock according to claim 14, characterized in that, The drive box (11) includes a first ring platform (14), which is connected to the partition (112) and disposed in the second cavity (132). The first ring platform (14) is arranged circumferentially around the first clearance opening (11211). The position sensor (41) and the first ring platform (14) have a first glue-filling gap (141). And / or, the drive box (11) includes a second ring platform (15), the second ring platform (15) is integrally connected to the partition (112) and disposed in the second cavity (132), the second ring platform (15) is arranged circumferentially around the second clearance opening (11212), the second ring platform (15) forms a pin insertion cavity (151), and the pin seat (42) extends into the pin insertion cavity (151).

16. A mobility scooter, characterized in that, The faucet lock includes any one of claims 1-15.