An electronic lock testing device
By using a second drive motor to rotate the side clamping wheel and the elastic outer sleeve, the problems of hard damage and insufficient friction during limit positioning in existing electronic lock testing devices are solved, realizing automated picking, placing and positioning of electronic locks, and improving the stability and efficiency of testing.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- DONGGUAN ZHONGSHANG INTELLIGENT EQUIP CO LTD
- Filing Date
- 2025-08-16
- Publication Date
- 2026-08-04
AI Technical Summary
Existing electronic lock testing devices lack buffer protection during limit switching, which can lead to partial damage to the electronic lock. Insufficient friction affects stability, and the picking, placing, and position adjustment rely on manual operation, resulting in low automation and difficulty in continuously testing multiple electronic locks.
The second drive motor drives the side clamping wheel and the elastic outer sleeve to rotate, realizing the automatic picking and placing and position adjustment of the electronic lock. The anti-slip groove of the elastic outer sleeve increases the friction to avoid hard damage, and the position of the side clamping wheel is adjusted by the first drive motor to adapt to different electronic lock sizes and shapes.
It improves the automation and efficiency of electronic lock testing, ensures positional stability, reduces manual operation steps, facilitates continuous testing of multiple electronic locks, and enhances the practicality and ease of operation of the device.
Smart Images

Figure CN224594755U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of electronic lock testing, and specifically to an electronic lock testing device. Background Technology
[0002] An electronic lock is a smart lock that uses electronic, biometric, or wireless communication technologies to unlock, lock, and manage access. As a core device for modern home security, electronic locks offer significant improvements in security, convenience, and intelligence compared to traditional mechanical locks. The core of an electronic lock is to verify the user's identity through non-mechanical means, driving the bolt to extend and retract to unlock. Based on unlocking methods, electronic locks can be categorized as: combination locks, biometric locks, card locks, wireless control locks, and multimodal fusion locks. As a critical security device involving personal and property safety, the reliability, security, and compliance of electronic locks require rigorous testing and verification, and testing equipment is the core tool for achieving this goal.
[0003] In existing electronic lock testing processes, the structures used to limit the electronic lock components typically lack effective buffer protection designs, making them prone to hard damage during limiting. Simultaneously, insufficient friction between the limiting structure and the electronic lock component causes positional wobbling during testing, affecting test stability. Furthermore, existing devices rely heavily on manual handling for picking up, placing, and adjusting the electronic lock components, resulting in low automation levels, increased manual operation steps, reduced overall testing efficiency, and difficulty in continuously testing multiple electronic lock components, thus compromising the device's practicality and ease of operation. Utility Model Content
[0004] The purpose of this invention is to address the above-mentioned deficiencies and provide an electronic lock testing device. The second drive motor can drive the side clamping wheel and the elastic outer sleeve to rotate, thereby causing the electronic lock part to move outward or inward. This realizes the automatic picking and placing and position adjustment of the electronic lock part, solving the technical problem that existing devices rely heavily on manual labor for picking and placing and position adjustment of the electronic lock part, resulting in a low level of automation.
[0005] The objective of this utility model is achieved through the following means:
[0006] An electronic lock testing device includes a support base, a test platform rotatably connected to the top of the support base, a power distribution box installed inside the support base, electronic lock parts on both sides of the center of the upper surface of the test platform, a test component above the electronic lock parts, a control box installed at the rear end of the upper surface of the test platform, a lifting component installed inside the control box, the lifting end of the lifting component connected to the test component, rotating shafts on both sides of the test component, rotating shafts rotatably connected to the test platform, a first drive motor coaxially connected to the top of the rotating shaft, a connecting seat installed on the surface of the rotating shaft, a second drive motor installed on the upper surface of the connecting seat, a side clamping wheel connected to the lower surface of the connecting seat, an elastic sleeve connected to the outer surface of the side clamping wheel, anti-slip grooves evenly formed around the outer surface of the elastic sleeve, and the side clamping wheel coaxially connected to the second drive motor.
[0007] The electronic lock to be tested is placed on the center of the test bench surface. Power is connected through the distribution box inside the support base, and the device enters standby mode. The lifting component inside the control box is activated, which moves the test component vertically. The relative height between the test component and the electronic lock is adjusted so that the test component is aligned with the part of the electronic lock to be tested. The test component is a common component on the market, so it will not be described in detail here. The first drive motor is activated, which drives the rotating shaft to rotate. The connecting seat on the surface of the rotating shaft rotates synchronously with the rotating shaft, causing the side clamping wheel to move towards the side of the electronic lock until the elastic sleeve on the outer surface of the side clamping wheel contacts the side of the electronic lock. After the electronic lock is tested, the second drive motor is activated, which drives the side clamping wheel to rotate. The side clamping wheel moves the electronic lock outward through the elastic sleeve.
[0008] Furthermore, protective side plates are installed on both sides of the upper surface of the test bench, and a hinge assembly is added between the support base and the test bench.
[0009] Protective side plates are installed on both sides of the upper surface of the test bench; a hinge assembly is set between the support base and the test bench to connect the support base and the test bench through the hinge assembly.
[0010] Furthermore, the first drive motor is connected to the test bench via a first motor mount, and the second drive motor is connected to the connecting seat via a second motor mount.
[0011] Install the first motor mount on the test bench, and then connect and fix the first drive motor to the first motor mount; install the second motor mount on the connecting seat, and then connect and fix the second drive motor to the second motor mount.
[0012] Furthermore, both sides of the support base and the test platform are provided with annular grooves, and both sides of the support base are rotatably connected with annular connecting plates.
[0013] Annular grooves are made on both sides of the support base and both sides of the test bench; the ring connecting plates are rotatably connected to both sides of the support base.
[0014] Furthermore, a locking rod is installed on the upper part of the inner side of the ring connecting plate, and the locking rod slides and fits against the inner wall of the annular groove.
[0015] A locking rod is installed on the upper inner side of the ring plate to keep the locking rod in a sliding fit with the inner wall of the annular groove.
[0016] Furthermore, a counterweight is installed on the lower surface of the ring connecting plate, and an external connecting handle is installed at the center of the front side of the ring connecting plate.
[0017] Install a counterweight on the lower surface of the ring connecting plate, and install an external connecting handle at the center of the front of the ring connecting plate.
[0018] The beneficial effects of this utility model are as follows: the rotating shafts on both sides of the test assembly are rotatably connected to the test bench. Under the drive of the first drive motor, the rotating shafts can drive the connecting seat and the side clamping wheel to rotate, so that the elastic sleeve on the outer surface of the side clamping wheel is tightly attached to the outer surface of the electronic lock part. The elastic sleeve can play a buffering role in the limiting process, avoiding hard damage to the electronic lock part. At the same time, the anti-slip groove on the outer surface of the elastic sleeve can increase the friction between it and the electronic lock part, ensuring the stability of the limiting process and ensuring that the electronic lock part is stable in position during the test.
[0019] After the test is completed, the second drive motor can drive the side clamping wheel and the elastic outer sleeve to rotate, thereby moving the electronic lock part outward or inward. This realizes the automatic picking and placing and position adjustment of the electronic lock part, reduces manual operation steps, and improves the automation level and overall efficiency of the testing process. At the same time, the bidirectional movement function of the side clamping wheel makes it easy to continuously test multiple electronic lock parts, enhancing the practicality and ease of operation of the device. Attached Figure Description
[0020] Figure 1 This is a three-dimensional structural diagram of an electronic lock testing device according to the present invention;
[0021] Figure 2 This is a schematic diagram of the internal left rear view of the control box of an electronic lock testing device according to this utility model;
[0022] Figure 3 This is a schematic diagram of the lifting assembly and its connection of an electronic lock testing device according to the present invention;
[0023] Figure 4 This is a schematic diagram of the internal structure of the support base of an electronic lock testing device according to the present invention;
[0024] Figure 5This is a schematic diagram of the side clamping wheel and its connection structure of an electronic lock testing device according to the present invention;
[0025] Figure 6 This is a schematic diagram of the separation structure of the ring connecting plate, support base, and test table of an electronic lock testing device according to this utility model;
[0026] In the diagram, 1. Support base; 2. Test bench; 3. Side clamping wheel; 4. Protective side plate; 5. Control box; 6. Lifting assembly; 7. Hinge assembly; 8. Test assembly; 9. Electronic lock part; 10. Distribution box; 11. Rotating shaft; 12. First drive motor; 13. Connecting seat; 14. Second drive motor; 15. Elastic outer sleeve; 16. Annular groove; 17. Ring connecting plate; 18. Locking rod; 19. Counterweight; 20. External connecting handle. Detailed Implementation
[0027] The present invention will now be described in further detail with reference to the accompanying drawings and specific embodiments.
[0028] In this embodiment, refer to Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 and Figure 6 The specific implementation of the electronic lock testing device includes a support base 1, a test platform 2 rotatably connected to the top of the support base 1, a power distribution box 10 installed in the inner cavity of the support base 1, electronic lock parts 9 added to both sides of the center of the upper surface of the test platform 2, a test component 8 added above the electronic lock parts 9, a control box 5 installed at the rear end of the upper surface of the test platform 2, a lifting component 6 added to the inner cavity of the control box 5, the lifting end of the lifting component 6 connected to the test component 8, a rotating shaft 11 set on both sides of the test component 8, the rotating shaft 11 rotatably connected to the test platform 2, a first drive motor 12 coaxially connected to the top of the rotating shaft 11, a connecting seat 13 installed on the surface of the rotating shaft 11, a second drive motor 14 added to the upper surface of the connecting seat 13, a side clamping wheel 3 connected to the lower surface of the connecting seat 13, an elastic sleeve 15 connected to the outer surface of the side clamping wheel 3, anti-slip grooves evenly opened around the outer surface of the elastic sleeve 15, and the side clamping wheel 3 coaxially connected to the second drive motor 14.
[0029] The electronic lock part 9 to be tested is placed on the center of the upper surface of the test bench 2. The power is connected through the distribution box 10 in the inner cavity of the support base 1, and the device enters the standby state. The lifting component 6 in the inner cavity of the control box 5 is activated, which drives the test component 8 to move vertically. The relative height between the test component 8 and the electronic lock part 9 is adjusted so that the test component 8 is aligned with the part of the electronic lock part 9 to be tested. The test component 8 is a common component on the market, so it will not be described in detail here. The first drive motor 12 is activated, which drives the rotating shaft 11 to rotate. The connecting seat 13 on the surface of the rotating shaft 11 rotates synchronously with the rotating shaft 11, which causes the side clamping wheel 3 to move towards the side of the electronic lock part 9 until the elastic sleeve 15 on the outer surface of the side clamping wheel 3 contacts the side of the electronic lock part 9. After the electronic lock part 9 is tested, the second drive motor 14 is activated, which drives the side clamping wheel 3 to rotate. The side clamping wheel 3 drives the electronic lock part 9 to move outward through the elastic sleeve 15.
[0030] The first drive motor 12 drives the rotating shaft 11 to rotate, which can flexibly adjust the position of the connecting seat 13 and the side clamping wheel 3 to adapt to the side testing requirements of electronic lock parts 9 of different sizes and shapes; the second drive motor 14 drives the side clamping wheel 3 to rotate, which can drive the electronic lock parts 9 to move outward or inward.
[0031] like Figure 1 and Figure 2 As shown, protective side plates 4 are installed on both sides of the upper surface of the test bench 2, and a hinge assembly 7 is added between the support base 1 and the test bench 2.
[0032] Protective side plates 4 are installed on both sides of the upper surface of the test bench 2; a hinge assembly 7 is set between the support base 1 and the test bench 2, so that the support base 1 and the test bench 2 are connected through the hinge assembly 7; the protective side plates 4 can protect the test components or test process on the test bench 2, and prevent external factors from interfering with the test or objects generated during the test from splashing outwards; the hinge assembly 7 allows the support base 1 and the test bench 2 to rotate relative to each other, increasing the angle adjustment flexibility of the test bench 2 and making it easier to adapt to different test requirements.
[0033] like Figure 1 and Figure 4 As shown, the first drive motor 12 is connected to the test bench 2 through the first motor mount, and the second drive motor 14 is connected to the connecting seat 13 through the second motor mount.
[0034] The first motor mount is installed on the test bench 2, and then the first drive motor 12 is connected and fixed to the first motor mount. The second motor mount is installed on the connecting seat 13, and then the second drive motor 14 is connected and fixed to the second motor mount. The first motor mount provides a stable mounting base for the first drive motor 12, making the connection between the first drive motor 12 and the test bench 2 more reliable and reducing the impact of vibration generated by the first drive motor 12 during operation on the test bench 2. Similarly, the second motor mount provides stable mounting support for the second drive motor 14, ensuring that the second drive motor 14 is firmly connected to the connecting seat 13 and ensuring the normal operation of the second drive motor 14.
[0035] like Figure 6 As shown, both sides of the support base 1 and the test platform 2 are provided with annular grooves 16, and both sides of the support base 1 are rotatably connected with annular connecting plates 17. The annular grooves 16 provide trajectory space for the movement of related components; the annular connecting plates 17 on both sides of the support base 1 can be rotated and adjusted, improving the flexibility of the structure and better adapting to different working conditions. A locking rod 18 is installed on the upper inner side of the annular connecting plate 17, and the locking rod 18 slides against the inner wall of the annular groove 16.
[0036] A locking rod 18 is installed on the upper inner side of the connecting plate 17, so that the locking rod 18 is in a sliding contact with the inner wall of the annular groove 16. The sliding contact between the locking rod 18 and the inner wall of the annular groove 16 guides the movement of the connecting plate 17, ensuring that the connecting plate 17 moves stably along the set trajectory, and at the same time enhances the tightness of the connection between the connecting plate 17 and the support base 1 and the test platform 2. A counterweight 19 is installed on the lower surface of the connecting plate 17, and an outer connecting handle 20 is installed at the center of the front of the connecting plate 17. The counterweight 19 increases the weight of the lower part of the connecting plate 17, improves the overall stability of the connecting plate 17, and prevents it from shaking or tipping over during operation. The outer connecting handle 20 provides a convenient force point for the rotation operation of the connecting plate 17, making it easier for the operator to rotate and adjust the connecting plate 17, thus improving the convenience of operation.
[0037] The process of an electronic lock testing device in this embodiment is as follows: The electronic lock part 9 to be tested is placed on both sides of the center of the upper surface of the test platform 2, and the power is turned on through the power distribution box 10 in the inner cavity of the support base 1, and the device enters the standby state.
[0038] The lifting assembly 6 inside the control box 5 is activated, which drives the test assembly 8 to move vertically and adjusts the relative height between the test assembly 8 and the electronic lock part 9 so that the test assembly 8 is aligned with the part to be tested in the electronic lock part 9.
[0039] The first drive motor 12 starts, driving the rotating shaft 11 to rotate. The connecting seat 13 on the surface of the rotating shaft 11 rotates synchronously with the rotating shaft 11, causing the side clamping wheel 3 to move towards the side of the electronic lock part 9 until the elastic sleeve 15 on the outer surface of the side clamping wheel 3 contacts the side of the electronic lock part 9. The protective side plate 4 can protect the test components or test process on the test bench 2, and prevent external factors from interfering with the test or objects generated during the test from splashing outward.
[0040] The first motor mount provides a stable mounting foundation for the first drive motor 12, making the connection between the first drive motor 12 and the test bench 2 more reliable and reducing the impact of vibration generated by the first drive motor 12 during operation on the test bench 2; the second motor mount provides stable mounting support for the second drive motor 14, ensuring that the second drive motor 14 is firmly connected to the connecting seat 13 and guaranteeing the normal operation of the second drive motor 14.
[0041] The annular groove 16 provides trajectory space for the movement of related components; the sliding contact between the lever 18 and the inner wall of the annular groove 16 guides the movement of the connecting plate 17, ensuring that the connecting plate 17 moves stably along the set trajectory, while also enhancing the tightness of the connection between the connecting plate 17 and the support base 1 and the test platform 2; the counterweight 19 increases the weight of the lower part of the connecting plate 17, improving the overall stability of the connecting plate 17 and preventing it from shaking or tipping over during operation; the outer connecting handle 20 provides a convenient force point for the rotation operation of the connecting plate 17;
[0042] The first drive motor 12 drives the rotating shaft 11 to rotate, which can flexibly adjust the position of the connecting seat 13 and the side clamping wheel 3 to adapt to the side limiting requirements of electronic lock parts 9 of different sizes and shapes. After the electronic lock parts 9 are tested, the second drive motor 14 starts and drives the side clamping wheel 3 to rotate. The side clamping wheel 3 drives the electronic lock parts 9 to move outward through the elastic sleeve 15. The second drive motor 14 drives the side clamping wheel 3 to rotate, which can drive the electronic lock parts 9 to move outward or inward.
[0043] The above description, in conjunction with specific preferred embodiments, provides a further detailed explanation of the present invention. It should not be construed that the specific implementation of the present invention is limited to these descriptions. For those skilled in the art, various simple deductions or substitutions can be made without departing from the concept of the present invention, and all such modifications and substitutions should be considered within the scope of protection of the present invention.
Claims
1. An electronic lock testing device, comprising a support base, a test platform rotatably connected to the top of the support base, a power distribution box installed inside the support base, electronic lock components on both sides of the center of the upper surface of the test platform, a test component installed above the electronic lock components, a control box installed at the rear end of the upper surface of the test platform, a lifting component installed inside the control box, and a lifting end of the lifting component connected to the test component, characterized in that: The test assembly has rotating shafts on both sides, which are rotatably connected to the test bench. A first drive motor is coaxially connected to the top of the rotating shaft. A connecting seat is installed on the surface of the rotating shaft. A second drive motor is added to the upper surface of the connecting seat. A side clamping wheel is connected to the lower surface of the connecting seat. An elastic sleeve is connected to the outer surface of the side clamping wheel. Anti-slip grooves are evenly formed around the outer surface of the elastic sleeve. The side clamping wheel is coaxially connected to the second drive motor.
2. The electronic lock testing device according to claim 1, characterized in that: The test bench is equipped with protective side plates on both sides of its upper surface, and a hinge assembly is provided between the support base and the test bench.
3. The electronic lock testing device according to claim 1, characterized in that: The first drive motor is connected to the test bench via a first motor mount, and the second drive motor is connected to the connecting seat via a second motor mount.
4. The electronic lock testing device according to claim 1, characterized in that: Both sides of the support base and the test platform are provided with annular grooves, and both sides of the support base are rotatably connected with annular connecting plates.
5. The electronic lock testing device according to claim 4, characterized in that: A locking rod is installed on the upper part of the inner side of the ring connecting plate, and the locking rod slides and fits against the inner wall of the annular groove.
6. The electronic lock testing device according to claim 5, characterized in that: A counterweight is installed on the lower surface of the ring connecting plate, and an outer connecting handle is installed at the center of the front side of the ring connecting plate.