Electronic equipment durability testing device
By designing an electronic device durability testing device with an adjustment bracket and a drive assembly, the problems of low testing efficiency and inaccurate results in the prior art are solved, and efficient and accurate durability testing is achieved.
Patent Information
- Application Number
- CN202421994669.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-16
- Publication Date
- 2025-09-26
- Estimated Expiration
- 2034-08-16
AI Technical Summary
The existing technology for electronic equipment durability testing is inefficient, the test results cannot guarantee accuracy and consistency, and it is easy to cause worker fatigue.
An electronic device durability testing device is designed, which includes an adjustment bracket, a drive assembly and an operating member. The posture of the drive assembly is adjusted by adjusting the bracket so that the operating member and the component to be tested are arranged relative to each other along a first direction, and the drive assembly is used to realize the reciprocating motion of the operating member to complete the test.
It improves the efficiency of durability testing, ensures the accuracy and consistency of test results, reduces manual participation, and improves test reliability.
Smart Images

Figure CN223389835U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of durability testing, in particular to a durability testing device for electronic equipment. Background Art
[0002] With the advancement of technology, large-screen products such as LCD TVs, large screens for education and conferences, and other electronic devices are becoming increasingly common in our daily lives and work. The reliability and durability of these devices are crucial to the user experience. Components such as buttons and interfaces on electronic devices, which users frequently interact with, have a significant impact on overall product quality. Therefore, rigorous durability testing of these components is essential during product design and production.
[0003] Currently, durability testing of components such as buttons and interfaces on electronic devices is primarily performed manually. This testing method is not only inefficient but also subject to significant human error, making it difficult to guarantee the accuracy and consistency of test results. Furthermore, the highly repetitive nature of testing can easily lead to fatigue among workers, thus compromising test quality. Utility Model Content
[0004] The utility model provides an electronic equipment durability testing device, which is used to at least solve or improve the problems in the prior art of low test efficiency and inability to ensure the accuracy and consistency of test results when performing manual durability testing on electronic equipment.
[0005] The utility model provides an electronic equipment durability testing device, comprising: an adjustment bracket, a driving component and an operating member;
[0006] The adjustment bracket is connected to the driving assembly, and the driving assembly is connected to the operating member; the adjustment bracket is used to adjust the posture of the driving assembly so that the operating member and the part to be measured on the electronic device are arranged relative to each other along a first direction; the driving assembly is used to drive the operating member to reciprocate along the first direction so that the operating member contacts or separates from the part to be measured.
[0007] According to an electronic equipment durability testing device provided by the present utility model, the adjustment bracket includes a frame body, a first linear module, a second linear module and a third linear module;
[0008] The first linear module is arranged on the frame; the first linear module and the second linear module are connected to drive the second linear module to move along the X-axis direction; the second linear module and the third linear module are connected to drive the third linear module to move along the Z-axis direction; the third linear module and the driving component are connected to drive the driving component to move along the Y-axis direction; the X-axis direction, the Y-axis direction and the Z-axis direction are perpendicular to each other.
[0009] According to an electronic device durability testing device provided by the present utility model, the driving assembly includes a driving motor, a connecting rod assembly and a sliding member;
[0010] The output end of the driving motor is connected to the first end of the connecting rod assembly, the second end of the connecting rod assembly is connected to the sliding member, the sliding member is slidably provided on the adjustment bracket along the first direction, and the sliding member is connected to the operating member;
[0011] The driving motor drives the sliding member to reciprocate along the first direction through the connecting rod assembly.
[0012] According to an electronic equipment durability testing device provided by the present utility model, the connecting rod assembly includes a crank and a connecting rod;
[0013] The output end of the driving motor is connected to the crank, the crank is rotatably connected to the first end of the connecting rod, and the second end of the connecting rod is rotatably connected to the sliding member.
[0014] According to an electronic equipment durability testing device provided by the present utility model, the linkage rod includes a first rod body, a second rod body and a locking member;
[0015] The second rod is adjustably arranged on the first rod along the extension direction of the first rod, and the locking member is used to achieve a locking connection between the first rod and the second rod;
[0016] The crank is rotatably connected to one end of the first rod away from the second rod, and one end of the second rod away from the first rod is rotatably connected to the sliding member.
[0017] According to an electronic device durability testing device provided by the present utility model, the sliding member includes a first sliding block, a second sliding block and a limit frame;
[0018] The first slider and the second slider are spaced apart along the first direction; the second end of the connecting rod assembly is connected to the first slider, and the second slider is connected to the operating member;
[0019] The first end of the limit frame is connected to the second slider, and the second end of the limit frame extends to one side of the first slider; the first slider is provided with an elastic trigger member, and the elastic trigger member is inserted into the limit frame;
[0020] When the first slider moves toward the electronic device, the elastic triggering member touches the first end of the limit frame, so that the second slider drives the operating member to move toward the part to be measured;
[0021] When the first sliding block moves away from the electronic device, the elastic triggering member touches the second end of the limiting frame, so that the second sliding block drives the operating member to move away from the part to be measured.
[0022] According to an electronic device durability testing device provided by the utility model, the limit frame includes a first clamping portion, a second clamping portion and a connecting rod;
[0023] The first clamping portion is connected to the second slider and is clamped to one end of the connecting rod; the second clamping portion is provided on one side of the first slider and is clamped to the other end of the connecting rod;
[0024] The first clamping portion and the second clamping portion are spaced apart along the first direction, and the distance between the first clamping portion and the second clamping portion is adjustable.
[0025] According to the utility model, an electronic device durability testing device further includes: an angle adjustment member; the angle adjustment member includes an adjustment seat, a support rod and a guide seat, the adjustment seat is provided on the adjustment bracket and connected to the bottom end of the support rod, the top end of the support rod is connected to the guide seat, and the second slider is movably provided on the guide seat along the first direction;
[0026] Wherein, the adjustment seat is used to adjust the height of the support rod.
[0027] According to the utility model, an electronic device durability testing device further includes: a clamp, which is provided on the sliding member and is used to clamp the operating member.
[0028] According to the utility model, an electronic device durability testing device further includes: a connecting component, which is arranged on the adjustment bracket and is used to fix the electronic device.
[0029] According to an electronic equipment durability testing device provided by the present utility model, the connecting assembly includes a first connecting member and a clamping seat;
[0030] The first connecting member extends along the first direction and is arranged on the adjustment bracket in a liftable manner along the height direction; the clamping seat is arranged on the first connecting member and is used to clamp the opposite side of the electronic device along a second direction, and the second direction is perpendicular to the first direction;
[0031] The operating member is used to contact or separate from the part to be tested located on the side of the electronic device.
[0032] According to an electronic device durability testing device provided by the present utility model, the connecting assembly includes a second connecting member, a first clamping member, and a second clamping member;
[0033] The second connecting member is provided on the adjustment bracket and extends along the first direction; the first clamping member and the second clamping member are adjustably provided on the second connecting member along the first direction and are used to clamp opposite sides of the electronic device along the first direction;
[0034] Wherein, the operating member is used to contact or separate from the part to be tested located on the front of the electronic device.
[0035] The electronic device durability testing device provided by the present invention, by providing an adjustment bracket, a driving component and an operating member, can use the adjustment bracket to adjust the posture of the driving component so that the operating member and the part to be tested on the electronic device are relatively arranged along a first direction. During the test operation, it is only necessary to drive the operating member to reciprocate along the first direction through the driving component to achieve the reciprocating contact or separation of the operating member and the part to be tested on the electronic device. The entire test process does not require human participation, which not only improves the efficiency of the durability test of the electronic device, but also ensures the accuracy and consistency of the test results, which is conducive to accurate evaluation of the durability of the electronic device. BRIEF DESCRIPTION OF THE DRAWINGS
[0036] In order to more clearly illustrate the technical solutions in the present invention or the prior art, a brief introduction will be given below to the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.
[0037] Figure 1 This is one of the structural diagrams of the electronic equipment durability testing device provided by the utility model;
[0038] Figure 2 The utility model provides Figure 1 The main structural diagram of the electronic equipment durability testing device shown is as follows;
[0039] Figure 3This is a schematic diagram of the installation structure of the drive assembly provided by the utility model on the adjustment bracket;
[0040] Figure 4 It is a structural diagram of the locking assembly provided by the utility model;
[0041] Figure 5 This is the second structural diagram of the electronic equipment durability testing device provided by the present utility model;
[0042] Figure 6 The utility model provides Figure 5 The main structural diagram of the electronic equipment durability testing device shown is as follows;
[0043] Figure 7 The utility model provides Figure 5 A schematic diagram of the structure of the connected components;
[0044] Reference numerals:
[0045] 1. Adjustment bracket; 11. Frame; 12. First linear module; 13. Second linear module; 14. Third linear module;
[0046] 2. Driving assembly; 21. Driving motor; 22. Connecting rod assembly; 23. Sliding member; 221. Crank; 222. Connecting rod; 231. First slider; 232. Second slider; 233. Limiting frame; 234. Elastic trigger member;
[0047] 3. Locking assembly; 31. Clamp; 32. Locking piece;
[0048] 4. Clamp;
[0049] 5. Connecting assembly; 511. First connecting member; 512. Clamping seat; 521. Second connecting member; 522. First clamping member; 523. Second clamping member;
[0050] 6. Angle adjustment member; 61. Adjustment seat; 62. Support rod; 63. Guide seat. DETAILED DESCRIPTION
[0051] To make the purpose, technical solutions, and advantages of the present invention more clear, the following will be combined with the accompanying drawings to clearly and completely describe the technical solutions of the present invention. Obviously, the embodiments described are only some of the embodiments of the present invention, not all of them. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0052] The following combination Figure 1-Figure 7, the electronic device durability testing device provided by the utility model embodiment is described in detail through specific embodiments and application scenarios.
[0053] like Figure 1 and Figure 5 As shown, the embodiment of the present utility model provides an electronic device durability testing device, comprising: an adjustment bracket 1, a driving assembly 2 and an operating member;
[0054] The adjustment bracket 1 is connected to the driving component 2, and the driving component 2 is connected to the operating member; the adjustment bracket 1 is used to adjust the posture of the driving component 2 so that the operating member and the part to be measured on the electronic device are arranged relative to each other along a first direction; the driving component 2 is used to drive the operating member to reciprocate along the first direction so that the operating member contacts or separates from the part to be measured.
[0055] It is understandable that the electronic device subjected to durability testing shown in this embodiment can be either large-size screen products such as LCD TVs, large educational screens, large conference screens, or household appliances such as refrigerators, air conditioners, and washing machines. The following takes large-size screen products as an example to specifically describe the scheme shown in this embodiment.
[0056] For large-screen products, the front and side surfaces of the large-screen product are equipped with a part to be tested. The part to be tested can be a physical button or an interface, including but not limited to an HDMI interface, a USB interface, and a power socket. When the part to be tested is a physical button, the operating element is a flexible pressing head for pressing the physical button; when the part to be tested is an interface, the operating element is a plug connector that adapts to the interface.
[0057] like Figures 1 to 3 As shown, when performing a durability test on the part to be tested on the side of a large-size screen product, the driving component 2 drives the operating member to reciprocate along a first direction parallel to the front side (display surface) of the large-size screen product, so that the operating member reciprocally contacts or separates from the part to be tested.
[0058] like Figures 5 to 7 As shown, when performing a durability test on the part to be tested on the front of a large-size screen product, the driving component 2 drives the operating member to reciprocate along a first direction perpendicular to the front of the large-size screen product, so that the operating member reciprocally contacts or separates from the part to be tested.
[0059] In order to realize the entire test process, the adjustment bracket 1 can use a multi-degree-of-freedom robotic arm and other design structures that can adjust the posture of the adjustment drive component 2, so as to meet the testing of electronic equipment with different placement postures; the drive component 2 can use a linear motor or a telescopic rod, etc., as long as it can drive the operating part to reciprocate along the first direction.
[0060] The electronic device durability testing device shown in the present invention is equipped with an adjustment bracket 1, a drive component 2 and an operating member. The adjustment bracket 1 can be used to adjust the posture of the drive component 2 so that the operating member and the part to be tested on the electronic device are relatively arranged along a first direction. During the test operation, it is only necessary to drive the operating member to reciprocate along the first direction through the drive component 2 to achieve the reciprocating contact or separation of the operating member and the part to be tested on the electronic device. The entire test process does not require human participation, which not only improves the efficiency of the durability test of the electronic device, but also ensures the accuracy and consistency of the test results, which is conducive to accurate evaluation of the durability of the electronic device.
[0061] It should be pointed out here that compared with small-sized electronic devices such as mobile phones and tablets, large-sized screen products have greater weight and are usually equipped with fixed brackets. Large-sized screen products themselves have better stability and do not require additional fixation of large-sized screen products. Therefore, the footprint of the entire test device is relatively small, and the large-sized screen product will not have slight displacement during the test. The driving component 2 can be directly used to drive the operating part to reciprocately contact or separate with the part to be tested, which can ensure the continuity of the test of the part to be tested and the validity of the test results.
[0062] In some embodiments, as Figure 1 、 Figure 2 、 Figure 5 and Figure 6 As shown, the adjustment bracket 1 includes a frame 11, a first linear module 12, a second linear module 13 and a third linear module 14;
[0063] The first linear module 12 is arranged on the frame 11; the first linear module 12 is connected to the second linear module 13 to drive the second linear module 13 to move along the X-axis direction; the second linear module 13 is connected to the third linear module 14 to drive the third linear module 14 to move along the Z-axis direction; the third linear module 14 is connected to the driving component 2 to drive the driving component 2 to move along the Y-axis direction; the X-axis direction, the Y-axis direction and the Z-axis direction are perpendicular to each other.
[0064] It can be understood that the Z-axis direction shown in this embodiment may be a vertical direction, and the Y-axis direction may be the first direction shown in the above embodiment.
[0065] The frame 11 can be assembled from aluminum profiles or aluminum alloy profiles, which not only ensures the structural strength of the frame 11 but also achieves a lightweight design of the entire adjustment bracket 1 .
[0066] The first linear module 12, the second linear module 13, and the third linear module 14 can all adopt a screw adjustment mechanism known in the art. The base of the first linear module 12 is connected to the frame 11, the slider on the first linear module 12 is connected to the slider on the second linear module 13, the base of the second linear module 13 is connected to the base of the third linear module 14, and the slider of the third linear module 14 is connected to the drive assembly 2. The screws of each set of screw adjustment mechanisms can be equipped with handwheels. In this way, the operator can adjust the posture of the drive assembly 2 along the X-axis direction, the Y-axis direction, and the Z-axis direction respectively by turning the handwheels of each screw adjustment mechanism.
[0067] like Figure 1 and Figure 4 As shown, the screw of the screw adjustment mechanism is also equipped with a locking assembly 3. After the posture of the drive assembly 2 is adjusted, the locking assembly 3 can be used to lock the screw to prevent the screw from rotating again, thereby ensuring that the posture of the drive assembly 2 does not change during the test.
[0068] Specifically, the locking assembly 3 includes a clamp 31 and a locking piece 32. The clamp 31 is provided on the frame 11. The clamp 31 is used to embrace the peripheral wall of the screw. The locking piece 32 is used to realize the locking connection between the two ends of the clamp 31 so that the inner wall of the clamp 31 abuts against the peripheral wall of the screw.
[0069] Furthermore, in order to ensure the stability of the second linear module 13 moving along the X-axis direction, two sets of first linear modules 12 can be set, and the two sets of first linear modules 12 are arranged side by side along the Y-axis direction, and the lead screws of the two sets of first linear modules 12 can be rotated synchronously through a synchronous belt or chain.
[0070] At the same time, there are two sets of second linear modules 13, which are connected to the two sets of first linear modules 12 in a one-to-one correspondence. The lead screws of the two sets of second linear modules 13 can also be rotated synchronously through synchronous belts or chains.
[0071] In some embodiments, as Figure 1 、 Figure 2 and Figure 3 As shown, the driving assembly 2 includes a driving motor 21, a connecting rod assembly 22 and a sliding member 23;
[0072] The output end of the driving motor 21 is connected to the first end of the connecting rod assembly 22, the second end of the connecting rod assembly 22 is connected to the sliding member 23, the sliding member 23 is slidably provided on the adjustment bracket 1 along the first direction, and the sliding member 23 is connected to the operating member; wherein, the driving motor 21 drives the sliding member 23 to reciprocate along the first direction through the connecting rod assembly 22.
[0073] It is understandable that the drive motor 21 can be a stepper motor known in the art. The drive motor 21 can be installed on the slider of the third linear module 14, and the sliding member 23 is slidably provided on the slider of the third linear module 14 along the first direction.
[0074] The drive motor 21 is equipped with an angle sensor, for example, the angle sensor is an encoder; the drive motor 21 and the angle sensor are respectively configured to be connected to the host computer, and the angle sensor is used to collect the angle information of the rotation of the drive motor 21. The host computer controls the working state of the drive motor 21 according to the instructions input by the user and the angle information fed back by the angle sensor.
[0075] Furthermore, if Figure 3 As shown, the connecting rod assembly 22 includes a crank 221 and a connecting rod 222; the output end of the drive motor 21 is connected to the crank 221, the crank 221 and the first end of the connecting rod 222 are rotatably connected, and the second end of the connecting rod 222 is rotatably connected to the sliding member 23.
[0076] It can be understood that the drive motor 21 is used to drive the crank 221 to rotate, and the crank 221 drives the first end of the connecting rod 222 to rotate around the output end of the drive motor 21, so that the first end of the connecting rod 222 can reciprocate along the first direction, and then the connecting rod 222 drives the sliding member 23 to reciprocate along the first direction.
[0077] In some embodiments, as Figure 3 As shown, the connecting rod 222 includes a first rod body, a second rod body and a locking member; the second rod body is adjustably arranged on the first rod body along the extension direction of the first rod body, and the locking member is used to achieve a locking connection between the first rod body and the second rod body; the crank 221 is rotatably connected to the end of the first rod body away from the second rod body, and the end of the second rod body away from the first rod body is rotatably connected to the sliding member 23.
[0078] It is understandable that the first rod body and the second rod body can be plugged together to form a telescopic rod that can be extended and retracted, and the locking member can be a locking bolt provided on the first rod body or the second rod body.
[0079] After the position of the second rod body relative to the first rod body is adjusted, the first rod body and the second rod body are fastened together by a locking member, thereby achieving adjustment of the length of the linkage rod 222 .
[0080] In practical applications, the movement stroke of the sliding member 23 can be adjusted by increasing or decreasing the length of the connecting rod 222 .
[0081] In some embodiments, as Figure 3As shown, the sliding member 23 includes a first slider 231, a second slider 232 and a limit frame 233; the first slider 231 and the second slider 232 are spaced apart along the first direction; the second end of the connecting rod assembly 22 is connected to the first slider 231, and the second slider 232 is connected to the operating member;
[0082] The first end of the limit frame 233 is connected to the second slider 232, and the second end of the limit frame 233 extends to one side of the first slider 231; the first slider 231 is provided with an elastic trigger member 234, and the elastic trigger member 234 is inserted into the limit frame 233;
[0083] When the first slider 231 moves toward the electronic device, the elastic trigger member 234 touches the first end of the limit frame 233, so that the second slider 232 drives the operating member to move toward the part to be tested;
[0084] When the first slider 231 moves away from the electronic device, the elastic triggering member 234 touches the second end of the limiting frame 233 , so that the second slider 232 drives the operating member away from the part to be measured.
[0085] It is understood that the limit frame 233 can be configured as a rectangular frame structure, and the elastic trigger member 234 can be composed of a central column disposed on the first slider 231 and an elastic sleeve disposed around the peripheral wall of the central column. By using the elastic trigger member 234 and the limit frame 233 to cooperate, the impact caused by the elastic trigger member 234 and the limit frame 233 when they collide can be reduced.
[0086] The first slider 231 and the second slider 232 are movably disposed on the third linear module 14 along the first direction; the elastic trigger member 234 is located at the top of the first slider 231 , and the limit frame 233 is located at the top of the first slider 231 and the second slider 232 .
[0087] In actual application, when the first slider 231 is driven by the connecting rod assembly 22 to move along the first direction toward one side of the second slider 232, the first slider 231 gradually approaches the second slider 232 until the elastic trigger member 234 touches the first end of the limit frame 233. Since the limit frame 233 is connected to the second slider 232, the second slider 232 will drive the operating member to move toward the part to be measured under the drive of the limit frame 233 until the operating member touches the part to be measured or is plugged into the part to be measured.
[0088] Correspondingly, when the first slider 231 is driven by the connecting rod assembly 22 to move along the first direction toward the side away from the second slider 232, the first slider 231 gradually moves away from the second slider 232 until the elastic trigger member 234 touches the second end of the limit frame 233. Since the limit frame 233 is connected to the second slider 232, the second slider 232 will drive the operating member to separate from the part to be measured under the drive of the limit frame 233.
[0089] Furthermore, if Figure 3 As shown, the limiting frame 233 includes a first clamping portion, a second clamping portion and a connecting rod; the first clamping portion is connected to the second slider 232 and clamped at one end of the connecting rod; the second clamping portion is provided on one side of the first slider 231 and clamped at the other end of the connecting rod;
[0090] The first clamping portion and the second clamping portion are spaced apart along the first direction, and the distance between the first clamping portion and the second clamping portion is adjustable.
[0091] It is understandable that two connecting rods can be provided, each connecting rod extending along the first direction, and the two connecting rods are arranged side by side; the first clamping portion, the second clamping portion and the two connecting rods form a rectangular frame structure.
[0092] In actual applications, by controlling the clamping position of the connecting rod by the first clamping part and the second clamping part, for example, adjusting the length of the connecting rod between the first clamping part and the second clamping part, the distance between the first clamping part and the second clamping part can be adjusted. This design can adjust the travel of the first slider 231 toward the side away from the second slider 232.
[0093] In some embodiments, as Figure 1 and Figure 2 As shown, the durability testing device also includes: an angle adjustment member 6; the angle adjustment member 6 includes an adjustment seat 61, a support rod 62 and a guide seat 63, the adjustment seat 61 is arranged on the adjustment bracket 1, and is connected to the bottom end of the support rod 62, the top end of the support rod 62 is connected to the guide seat 63, and the second slider 232 is movably arranged on the guide seat 63 along the first direction; wherein, the adjustment seat 61 is used to adjust the height of the support rod 62.
[0094] It is understandable that since the operating member is installed on the second slider 232 and is configured to extend toward the part to be tested along the first direction, the height of the guide seat 63 can be adjusted by adjusting the height of the support rod 62 by adjusting the seat 61, thereby adjusting the inclination angle of the second slider 232 relative to the horizontal plane, and then adjusting the inclination angle of the operating member, which is conducive to ensuring that the operating member is relative to the part to be tested on the electronic device along the first direction, thereby meeting the test requirements.
[0095] Optionally, the adjustment seat 61 includes a base and a cap, the cap is threadedly connected to the base, and a spherical cavity is formed between the cap and the base; a ball head is provided at the bottom end of the support rod 62, and an elastic member is provided between the ball head and the base, the ball head abuts against the cap, and the support rod 62 is passed through the cap and connected to the support rod 62.
[0096] In actual application, by rotating the cap to adjust the installation height of the cap relative to the base, the cap can control the lifting and lowering of the ball head relative to the base, thereby achieving height adjustment of the support rod 62.
[0097] In some embodiments, as Figure 1 and Figure 5 As shown, in order to facilitate the operator to install or replace the operating member, the durability testing device further includes: a clamp 4, which is provided on the sliding member 23 and is used to clamp the operating member.
[0098] Specifically, the clamp 4 includes a first clamping body and a second clamping body. A clamping opening for clamping the operating member is formed between the first clamping body and the second clamping body. The first clamping body is connected to the sliding member 23 .
[0099] Among them, a flexible contact layer is provided on one side of the first clamping body facing the second clamping body and / or one side of the second clamping body facing the first clamping body. For example, the flexible contact layer is a rubber layer. This design can ensure the reliability of the clamp 4 clamping the operating part and prevent the operating part from shifting relative to the clamp 4 when subjected to external force.
[0100] like Figure 1 As shown, when using an operating member to perform a durability test on the side of a large-screen product, the clamp 4 can be installed on the sliding member 23 in a side-by-side manner to prevent interference between the clamp 4 and the side of the large-screen product. The sliding member 23 can be connected to the clamp 4 via an adapter to ensure that the operating member held by the clamp 4 can contact the side of the large-screen product.
[0101] like Figure 5 As shown, when the operating member is used to perform a durability test on the portion to be tested on the front of a large-size screen product, the clamp 4 can be installed on the sliding member 23 in a horizontally distributed manner.
[0102] In some embodiments, as Figure 1 and Figure 5 As shown, the durability testing device further includes: a connecting component 5, which is provided on the adjusting bracket 1 and is used to fix the electronic device.
[0103] In practical applications, the connecting assembly 5 is used to limit the position of the electronic device relative to the adjustment bracket 1 to prevent the electronic device from changing its posture under the action of the operating member, thereby ensuring the accuracy of the durability test results.
[0104] Alternatively, as Figure 1 and Figure 2 As shown, the connecting assembly 5 includes a first connecting member 511 and a clamping seat 512; the first connecting member 511 extends along a first direction and is arranged on the adjustable bracket 1 so as to be liftable along the height direction; the clamping seat 512 is arranged on the first connecting member 511 and is used to clamp the opposite side of the electronic device along a second direction, which is perpendicular to the first direction;
[0105] The operating member is used to contact or separate from the part to be tested located on the side of the electronic device.
[0106] It is understandable that the connection assembly 5 shown in this embodiment is suitable for performing durability testing on a portion to be tested on the side of an electronic device.
[0107] In actual application, the first connecting member 511 is rod-shaped and is configured to be horizontally arranged; a slider is provided on the first connecting member 511, and a slide rail extending in the vertical direction is provided on the frame 11 of the adjustment bracket 1, and the slider is movably arranged on the slide rail; after the height of the first connecting member 511 relative to the adjustment bracket 1 is adjusted, the first connecting member 511 can be fixed to the adjustment bracket 1 by a fastener (such as a locking bolt).
[0108] At the same time, the clamping seat 512 includes a base, a first side wing and a second side wing, and at least one of the first side wing and the second side wing is provided with a locking bolt threadedly connected thereto; the first side wing and the second side wing are spaced apart from each other and arranged side by side on the upper side of the base along the second direction; when fixing the electronic device (large-size screen product), the base can be supported on the bottom end of the electronic device, and the first side wing and the second side wing are arranged on both sides of the electronic device along the second direction; then, the electronic device is fixed by means of a locking bolt passing through the first side wing and / or the second side wing.
[0109] Alternatively, as Figure 5 、 Figure 6 and Figure 7 As shown, the connecting assembly 5 includes a second connecting member 521, a first clamping member 522 and a second clamping member 523;
[0110] The second connecting member 521 is provided on the adjustment bracket 1 and extends along the first direction; the first clamping member 522 and the second clamping member 523 are adjustably provided on the second connecting member 521 along the first direction and are used to clamp the electronic device at opposite sides along the first direction;
[0111] The operating member is used to contact or separate from the part to be tested located on the front of the electronic device.
[0112] It is understandable that the connection assembly 5 shown in this embodiment is suitable for performing durability testing on the part to be tested on the front of an electronic device.
[0113] The second connecting member 521 can be configured in a rod shape, the second connecting member 521 is horizontally arranged, and is fixed to the adjustment bracket 1 by fasteners such as locking bolts and pins; the side of the second connecting member 521 is provided with a slide groove extending along the first direction, and the first clamping member 522 and the second clamping member 523 are respectively movably arranged in the slide groove.
[0114] When the electronic device is a large-size screen product, the distance between the first clamping member 522 and the second clamping member 523 can be adjusted according to the thickness of the bottom end of the large-size screen product. Then, the second connecting member 521 is supported on the bottom end of the large-size screen product, and the large-size screen product is placed between the first clamping member 522 and the second clamping member 523 in an extended position along the second direction. Then, the first clamping member 522 and the second clamping member 523 are fixed on the second connecting member 521 to achieve the fixation of the large-size screen product.
[0115] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the aforementioned embodiments, or make equivalent replacements for some of the technical features therein. However, these modifications or replacements do not deviate the essence of the corresponding technical solutions from the spirit and scope of the technical solutions of the various embodiments of the present invention.
Claims
1. An electronic equipment durability testing device, characterized in that: include: Adjust the bracket, drive assembly and operating parts; The adjusting bracket is connected to the driving assembly, and the driving assembly is connected to the operating member; The adjustment bracket is used to adjust the posture of the driving assembly so that the operating member and the part to be measured on the electronic device are arranged relative to each other along a first direction; the driving assembly is used to drive the operating member to reciprocate along the first direction so that the operating member contacts or separates from the part to be measured; The adjusting bracket includes a frame body, a first linear module, a second linear module and a third linear module; The first linear module is provided on the frame; the first linear module is connected to the second linear module to drive the second linear module to move along the X-axis direction; The second linear module is connected to the third linear module to drive the third linear module to move along the Z-axis direction; the third linear module is connected to the driving assembly to drive the driving assembly to move along the Y-axis direction; the X-axis direction, the Y-axis direction and the Z-axis direction are perpendicular to each other.
2. The electronic device durability testing device according to claim 1, wherein: The driving assembly includes a driving motor, a connecting rod assembly and a sliding member; The output end of the driving motor is connected to the first end of the connecting rod assembly, the second end of the connecting rod assembly is connected to the sliding member, the sliding member is slidably provided on the adjustment bracket along the first direction, and the sliding member is connected to the operating member; Wherein, the driving motor drives the sliding member to reciprocate along the first direction through the connecting rod assembly.
3. The electronic device durability testing device according to claim 2, characterized in that: The connecting rod assembly includes a crank and a connecting rod; The output end of the driving motor is connected to the crank, the crank is rotatably connected to the first end of the connecting rod, and the second end of the connecting rod is rotatably connected to the sliding member.
4. The electronic device durability testing device according to claim 3, characterized in that: The connecting rod includes a first rod body, a second rod body and a locking member; The second rod is adjustably provided on the first rod along the extension direction of the first rod, and the locking member is used to achieve a locking connection between the first rod and the second rod; The crank is rotatably connected to an end of the first rod away from the second rod, and an end of the second rod away from the first rod is rotatably connected to the sliding member.
5. The electronic device durability testing device according to claim 2, wherein: The sliding member includes a first sliding block, a second sliding block and a limit frame; The first slider and the second slider are spaced apart along the first direction; the second end of the connecting rod assembly is connected to the first slider, and the second slider is connected to the operating member; The first end of the limit frame is connected to the second slider, and the second end of the limit frame extends to one side of the first slider; the first slider is provided with an elastic trigger member, and the elastic trigger member is inserted into the limit frame; When the first slider moves toward the electronic device, the elastic triggering member touches the first end of the limit frame, so that the second slider drives the operating member to move toward the part to be measured; When the first sliding block moves away from the electronic device, the elastic triggering member touches the second end of the limiting frame, so that the second sliding block drives the operating member to move away from the part to be measured.
6. The electronic device durability testing device according to claim 5, characterized in that: The limiting frame includes a first clamping portion, a second clamping portion and a connecting rod; The first clamping portion is connected to the second slider and is clamped to one end of the connecting rod; the second clamping portion is provided on one side of the first slider and is clamped to the other end of the connecting rod; The first clamping portion and the second clamping portion are spaced apart along the first direction, and the distance between the first clamping portion and the second clamping portion is adjustable.
7. The electronic device durability testing device according to claim 5, characterized in that: Also includes: Angle adjustment member; The angle adjustment member includes an adjustment seat, a support rod and a guide seat, the adjustment seat is provided on the adjustment bracket and connected to the bottom end of the support rod, the top end of the support rod is connected to the guide seat, and the second slider is movably provided on the guide seat along the first direction; Wherein, the adjustment seat is used to adjust the height of the support rod.
8. The electronic device durability testing device according to claim 2, characterized in that: Also includes: A clamp is provided on the sliding member and is used for clamping the operating member.
9. The electronic device durability testing device according to any one of claims 1 to 8, characterized in that: Also includes: A connecting component is provided on the adjusting bracket and is used to fix the electronic device.
10. The electronic device durability testing device according to claim 9, characterized in that: The connecting assembly includes a first connecting member and a clamping seat; The first connecting member extends along the first direction and is arranged on the adjustment bracket in a liftable manner along the height direction; the clamping seat is arranged on the first connecting member and is used to clamp the opposite side of the electronic device along a second direction, and the second direction is perpendicular to the first direction; The operating member is used to contact or separate from the part to be tested located on the side of the electronic device.
11. The electronic device durability testing device according to claim 9, characterized in that: The connecting assembly includes a second connecting member, a first clamping member and a second clamping member; The second connecting member is provided on the adjustment bracket and extends along the first direction; the first clamping member and the second clamping member are adjustably provided on the second connecting member along the first direction and are used to clamp opposite sides of the electronic device along the first direction; Wherein, the operating member is used to contact or separate from the part to be tested located on the front of the electronic device.