Aging test device
By designing a fully automated aging test device, the problems of low efficiency and inaccurate results in traditional aging tests have been solved, enabling efficient and accurate mass production testing of products.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-11
- Publication Date
- 2026-03-31
AI Technical Summary
Traditional aging test methods are inefficient, produce inaccurate results, and are prone to interference between multiple products, making it impossible to accurately determine product yield.
Design an aging test device, including a feeding and charging mechanism, a transfer mechanism, an automatic testing mechanism, a data reading mechanism, and a discharging mechanism, to achieve full-process automation. It adopts multiple charging chambers with independent design, and combines data reading and remote MES terminal analysis to ensure the accuracy of test results.
It achieves full automation from product loading, charging, testing to data reading and unloading, improving testing efficiency, ensuring that the charging process does not interfere with each other, enabling large-scale testing in a small space, and quickly determining product yield through data analysis.
Smart Images

Figure CN224066906U_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of mechanical equipment technology, and more specifically to an aging test device. Background Technology
[0002] With the rapid development of electronic technology, electronic products are increasingly widely used in people's daily lives and industrial production. In order to ensure the performance and quality of electronic products in actual use, aging testing has become an indispensable and important part of the electronic product manufacturing process.
[0003] Traditional aging tests typically involve manual operation, placing electronic products in a specific environment for simple charging and discharging operations. This method is inefficient and cannot monitor internal product data in real time. Furthermore, interference between multiple products during testing can lead to inaccurate results and make it impossible to accurately determine product yield.
[0004] Therefore, this application designs an aging test device to improve test efficiency and the accuracy of test results. Utility Model Content
[0005] To improve testing efficiency and the accuracy of test results, this application provides an aging test apparatus.
[0006] This application provides an aging test device, which adopts the following technical solution:
[0007] An aging test device includes a feeding and charging mechanism, a transfer mechanism, an automatic testing mechanism, a data reading mechanism, and a discharging mechanism. The feeding and charging mechanism includes a feeding component and at least two sets of charging components. Each charging component includes a charging tray and a preparation tray. The charging tray has several charging chambers. The feeding component sequentially clamps products into each of the charging chambers. After charging, the products are sequentially clamped into the preparation tray, and then the preparation tray is transferred to the front end of the automatic testing mechanism. The automatic testing mechanism includes several testing components distributed on both sides of the transfer mechanism and corresponding to the charging components. The testing components are used for swing testing and combustion testing. The transfer mechanism feeds the preparation trays into the testing components one by one. After testing, the products are transferred to the data reading mechanism through the transfer mechanism to read the corresponding data and transmit it to a remote MES terminal. After reading, the products are unloaded through the discharging mechanism.
[0008] By adopting the above technical solutions, the entire process from product loading, charging, testing to data reading and unloading is automated, improving testing efficiency. The charging tray in the loading and charging mechanism is designed with multiple charging chambers, which can charge multiple products simultaneously. The spare tray allows multiple products to quickly enter the testing phase after charging, enabling the aging test device to complete aging tests on a large number of products in a small space. Each charging chamber is independently designed to ensure that products do not interfere with each other during charging. The data reading mechanism can read the internal data of the products during testing. Through remote MES terminal analysis and processing of data, the yield of the products can be quickly determined, ensuring the accuracy of test results.
[0009] Optionally, the feeding assembly includes a feeding gripper and a first pressure sensor, the first pressure sensor being used to detect the pressure of the feeding gripper holding the product and whether the product is clamped in place.
[0010] Optionally, the upper end of the feeding gripper has a second pressure sensor and an elastic element. The second pressure sensor is used to detect the pressure when the feeding gripper inserts the product into the charging compartment.
[0011] Optionally, the charging component also includes a barcode scanner, and the material tray is provided with a QR code, the barcode scanner being used to scan product information.
[0012] Optionally, the transfer mechanism includes a clamping member, an X-axis transfer assembly, a Y-axis transfer assembly, and a Z-axis transfer assembly. The clamping member is used to clamp the material tray. The Y-axis transfer assembly includes a first moving plate and a second moving plate. The clamping member is slidably connected to the first moving plate, and the first moving plate is slidably connected to the second moving plate.
[0013] By adopting the above technical solution, the X-axis transfer assembly moves the material tray between the feeding and charging mechanism and the unloading mechanism, the Z-axis transfer assembly moves the material tray vertically, and the Y-axis transfer assembly moves the material tray between the test components on both sides. The clamping component can achieve double the stroke movement on the Y-axis by moving the first moving plate and the second moving plate.
[0014] Optionally, the test assembly includes a rotation drive and a rotation component. The rotation component includes a rotating plate, a pressing drive, a pressing plate, a clamping drive, and a clamping plate. The material tray rests on the rotating plate. The pressing drive causes the pressing plate to press against the material tray. The clamping drive causes the clamping plate to clamp both sides of the material tray. The rotation drive causes the rotation component to reciprocate along the rotating plate to achieve the swing test.
[0015] Optionally, the testing assembly further includes a testing drive, a reciprocating drive, and several sets of testing rods. The number of sets of testing rods corresponds to the number of products in the preparation tray. Each set of testing rods includes two testing rods. The testing drive drives one of the testing rods in each set to be inserted into the product. After the testing time is reached, the reciprocating drive drives the testing rod to move and insert the other testing rod in each set into the product. The test is repeated several times.
[0016] By adopting the above technical solution, since the product will generate heat during the testing process, the temperature of the product and the temperature of the testing environment will rise. If the product is not cooled down at this time, the product will stop working, and the product test will be judged as a failure within the equipment cycle.
[0017] Optionally, a cooling mechanism may also be included, which includes a temperature sensor, a fan, and an air conditioner. When the temperature sensor detects that the temperature has reached the set temperature, the fan and / or the air conditioner are turned on to cool down the temperature.
[0018] Optionally, the unloading mechanism includes unloading grippers, unloading bins, and unloading conveyor belts. The unloading conveyor belts are connected to unloading bins on both sides at opposite ends. The unloading grippers hold products and move them alternately into the unloading bins on both sides.
[0019] In summary, this application includes the following beneficial technical effects:
[0020] 1. The entire process from product loading, charging, testing to data reading and unloading is automated, improving testing efficiency. The charging tray in the loading and charging mechanism is designed with multiple charging chambers, enabling simultaneous charging of multiple products. The spare tray allows multiple products to quickly enter the testing phase after charging, enabling the aging test device to complete aging tests on a large number of products in a small space. Each charging chamber is independently designed to ensure that products do not interfere with each other during charging. The data reading mechanism can read the internal data of the products during testing. Through remote MES terminal analysis and processing of data, the yield of the products can be quickly determined, ensuring the accuracy of test results.
[0021] 2. The X-axis transfer assembly moves the material tray between the feeding and charging mechanism and the unloading mechanism. The Z-axis transfer assembly moves the material tray vertically. The Y-axis transfer assembly moves the material tray between the test components on both sides. The clamping parts can achieve double the stroke movement on the Y-axis by moving the first moving plate and the second moving plate. Attached Figure Description
[0022] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other embodiments can be obtained based on these drawings without creative effort.
[0023] In the diagram:
[0024] Figure 1 This is a schematic diagram of the aging test device according to an embodiment of this application without the cover.
[0025] Figure 2 This is a schematic diagram of the feeding and charging mechanism in the aging test apparatus of this application embodiment;
[0026] Figure 3 This is a schematic diagram of the transfer component in the aging test apparatus of this application embodiment;
[0027] Figure 4 This is a schematic diagram of the feeding component in the aging test apparatus of this application embodiment;
[0028] Figure 5 This is one of the structural schematic diagrams of the charging component in the aging test device of this application embodiment;
[0029] Figure 6 This is a second schematic diagram of the charging component in the aging test device according to an embodiment of this application;
[0030] Figure 7 This is a schematic diagram of the structure of the test components in the aging test apparatus of this application embodiment;
[0031] Figure 8 This is a schematic diagram of the test components in the aging test apparatus of this application from another perspective;
[0032] Figure 9 This is a schematic diagram of the installation structure of the test rod in the aging test device according to an embodiment of this application;
[0033] Figure 10 This is a schematic diagram of the aging test device according to an embodiment of this application;
[0034] Figure 11 This is a schematic diagram of the transfer mechanism and data reading mechanism in the aging test device of this application embodiment;
[0035] Figure 12 This is a schematic diagram of the transfer mechanism in the aging test apparatus of this application embodiment;
[0036] Figure 13This is a schematic diagram of the Y-axis transfer assembly in the aging test device according to an embodiment of this application;
[0037] Figure 14 This is a schematic diagram of the data reading mechanism and the feeding mechanism in the aging test device of this application embodiment;
[0038] Figure 15 This is a schematic diagram of the material feeding gripper in the aging test device of this application embodiment;
[0039] Figure 16 This is a schematic diagram of the installation structure of the feeding conveyor belt and feeding hopper in the aging test device of this application embodiment.
[0040] Reference numerals: 1. Feeding and charging mechanism; 11. Feeding assembly; 111. Feeding gripper; 112. First pressure sensor; 113. Elastic element; 12. Charging assembly; 121. Charging tray; 122. Material preparation tray; 123. Support element; 124. Inspection and testing position; 125. Charging NG tray; 126. Barcode scanner; 13. Transfer assembly; 131. Transfer cylinder; 132. Transfer plate; 2. Transfer mechanism; 21. Clamping element; 22. X-axis transfer assembly; 23. Y-axis transfer assembly; 231. First pressure sensor; 24. First pressure sensor; 15. Elastic element; 16. Second pressure sensor; 17. Third pressure sensor; 18. Fourth pressure sensor; 19. Fifth pressure sensor; 20. Sixth pressure sensor; 10. Sixth pressure sensor; 11. Elastic element; 12. Sixth pressure sensor; 121. Second pressure sensor; 122. Third pressure sensor; 123. Sixth pressure sensor; 124. Sixth pressure sensor; 125. Sixth pressure sensor; 126. Sixth pressure sensor; 127. Sixth pressure sensor; 128. Sixth pressure sensor; 129. Sixth pressure sensor; 120. Sixth pressure sensor; 121. Sixth pressure sensor; 122. Sixth ... 1. Moving plate; 232. Second moving plate; 233. Linear module; 234. Synchronous belt; 24. Z-axis transfer assembly; 3. Automatic testing mechanism; 31. Rotating plate; 32. Pressing plate; 33. Clamping plate; 34. Reciprocating drive component; 35. Test rod; 36. Test drive component; 37. Steel ball; 4. Data reading mechanism; 41. Conveyor chain; 5. Unloading mechanism; 51. Unloading gripper; 52. Unloading bin; 53. Unloading conveyor belt; 6. Cooling mechanism; 61. Fan; 62. Air conditioner; 7. Machine cover. Detailed Implementation
[0041] The following is in conjunction with the appendix Figure 1-16 This application will be described in further detail.
[0042] This application discloses an aging test apparatus. (Refer to...) Figure 1 The aging test device includes a feeding and charging mechanism 1, a transfer mechanism 2, an automatic testing mechanism 3, a data reading mechanism 4, and a discharging mechanism 5. The feeding and charging mechanism 1 includes a feeding component 11 and at least two sets of charging components 12. In this embodiment, two sets of charging components 12 are provided, which can charge simultaneously and improve the charging test efficiency.
[0043] Reference Figure 2 and Figure 3The charging assembly 12 includes a charging tray 121 and a preparation tray 122. The charging tray 121 has several charging compartments. The feeding assembly 11 sequentially clamps products into each charging compartment. After charging, the products are then sequentially clamped into the preparation tray 122. A support member 123 is provided on one side of the charging tray 121, and the preparation tray 122 is placed on the support member 123. In this embodiment, one charging tray 121 has 88 charging compartments. Each charging compartment has a set charging time. The feeding assembly 11 places products into the charging compartments one by one. When a product is placed into a certain charging compartment, the product in the first charging compartment has been fully charged. Then, the feeding assembly 11 clamps the product in the charging compartment into the preparation tray 122. A point inspection test station 124 is also provided. Qualified or unqualified products are placed in the point inspection test station 124 to determine whether the products in the charging compartment are qualified. A charging NG tray 125 is provided on one side of the preparation tray 122. If the products in the charging compartment fail to charge, they will be placed in the charging NG tray 125. Qualified products that have completed charging are placed in the preparation tray 122 in sequence. At the same time, products are added to the charging compartment in sequence for charging, and this cycle is repeated.
[0044] Reference Figure 4 In some embodiments, the feeding assembly 11 includes a feeding gripper 111 and a first pressure sensor 112. The first pressure sensor 112 is used to detect whether the pressure applied by the feeding gripper 111 to the product is too strong and whether the product is properly gripped. If the product is gripped too crookedly, an alarm will sound and the machine will stop. The feeding gripper 111 moves between the charging tray 121 and the preparation tray 122 along the width or length direction via a chain, motor, or other mechanism, placing the product into each charging compartment and the preparation tray 122.
[0045] In some embodiments, the upper end of the loading gripper 111 has a second pressure sensor and an elastic element 113. The elastic element 113 is a spring. The second pressure sensor is used to detect the pressure when the loading gripper 111 inserts the product into the charging compartment. When the loading gripper 111 inserts the product into the charging compartment, the loading gripper 111 will compress the upper elastic element 113 to determine the pressure of the product being inserted into the charging compartment and confirm that the product is inserted into the charging compartment for charging.
[0046] Reference Figure 5 and Figure 6In some embodiments, the charging assembly 12 further includes a barcode scanner 126, a rotary cylinder, and a push cylinder. The barcode scanner 126 is used to scan product information. In this embodiment, the barcode scanner 126 is positioned between two charging trays 121. The rotary cylinder drives the barcode scanner 126 to rotate 180° and alternately face the products on one side. The push cylinder drives the rotary cylinder to move the barcode scanner 126 along the length of the charging tray 121 to scan the products one by one, binding the product information to the remote MES terminal. The product information includes current, voltage, internal product serial number, etc., making the device structure more compact, making better use of space, and ensuring the accuracy of the product information.
[0047] Refer again Figure 3 When the material preparation tray 122 is full, it is moved to the front end of the automatic testing mechanism 3. In this embodiment, the feeding and charging mechanism 1 also includes a transfer component 13, which includes a transfer motor, a transfer cylinder 131, and a transfer plate 132. The transfer motor drives the transfer cylinder 131 to move between the charging tray 121 and the automatic testing mechanism 3. The transfer cylinder 131 drives the transfer plate 132 to move vertically. When it is necessary to move the material preparation tray 122, the transfer motor drives the transfer cylinder 131 to enter between the support members 123 and to be located at the bottom of the material preparation tray 122. The transfer plate 132 is provided with a positioning pin. The transfer cylinder 131 drives the transfer plate 132 to move upward and insert the positioning pin into the material preparation tray 122. Then, the material preparation tray 122 is moved to one side of the automatic testing mechanism 3 by the transfer motor. Then, a new material preparation tray 122 is placed on the support member 123 for material preparation.
[0048] Participation Figure 8 The automatic testing mechanism 3 includes several testing components, which are distributed on both sides of the transplanting mechanism 2 and correspond to the charging component 12. The testing components are used for swing testing and combustion testing.
[0049] In some embodiments, the test assembly includes a rotation drive and a rotation component. The rotation component includes a rotating plate 31, a pressing drive, a pressing plate 32, a clamping drive, and a clamping plate 33. A material tray 122 is mounted on the rotating plate 31, and a positioning pin is provided on the rotating plate 31, which is inserted into the material tray 122 for positioning and fixation. The pressing drive drives the pressing plate 32 to press against the material tray 122, the clamping drive drives the clamping plate 33 to clamp both sides of the material tray 122, and the rotation drive drives the rotation component to reciprocate along the rotating plate 31 to achieve the swing test.
[0050] Reference Figures 8-10In some embodiments, the test assembly further includes a test drive component 36, a reciprocating drive component 34, and several sets of test rods 35. The clamping plate 32 is provided with several elongated slots for the test rods 35 to pass through. It also includes a test plate. The test rods 35 are detachably connected to the test plate. The test rods 35 are inserted into the test plate via elastic rings and steel balls 37. The elastic rings wrap around the outside of the steel balls 37. The force of the elastic rings applies pressure to the periphery of the test rods 35, clamping them in place. The test rods 35 can be pulled out or inserted simply by applying force through the deformation of the elastic rings. The test plate is also detachable, allowing for individual replacement of the test rods 35 or replacement of the entire plate with the test rods 35. The number of test rods 35 corresponds to the number of products in the preparation tray 122. Each set of test rods 35 includes two test rods 35. The test drive unit 36 drives one of the test rods 35 in each set to be inserted into the product. After the test time is reached, the reciprocating drive unit 34 drives the test rod 35 to move and insert the other test rod 35 in each set into the product. The test is repeated several times. In this embodiment, the two test rods 35 in each set are tested in turn for a total of eight times.
[0051] Each test rod 35 has a QR code, and all test rods 35 on the same test component also have a test board QR code. Information is first bound by the two QR codes. Each test component also has a master switch and a master QR code. After turning on the master switch, the master QR code and the test board QR code are scanned to bind the information.
[0052] Reference Figure 11 In some embodiments, a cooling mechanism 6 is also included. The cooling mechanism 6 includes a temperature sensor, a fan 61, and an air conditioner 62. The temperature sensor is disposed on each group of test components. When the temperature monitored by the temperature sensor reaches the set temperature, the fan 61 and / or the air conditioner 62 are turned on to cool down. The fan 61 and the air conditioner 62 are preset with corresponding temperatures. When the first temperature is reached, the fan 61 is turned on. When the temperature continues to rise to the second temperature, the air conditioner 62 is turned on. The air conditioner 62 is connected to each group of test components by a pipe, and cold air is delivered to the test components for cooling through the pipe. The mechanism also includes a cover 7, which covers each mechanism. The air conditioner 62 is disposed above the cover 7 at intervals, and the fan 61 is disposed on both sides of the cover 7 at intervals.
[0053] Reference Figure 12 The transplanting mechanism 2 feeds the material preparation trays 122 into the test components one by one. After the test is completed, the material is sent to the data reading mechanism 4 through the transplanting mechanism 2 to read the corresponding data and transmit it to the remote MES terminal. After reading, the material is unloaded through the unloading mechanism 5.
[0054] Reference Figure 13In some embodiments, the transplanting mechanism 2 includes a clamping member 21, an X-axis transplanting assembly 22, a Y-axis transplanting assembly 23, and a Z-axis transplanting assembly 24. The X-axis transplanting assembly 22 moves the Z-axis transplanting assembly 24 via a guide rail and chain. The Z-axis transplanting assembly 24 moves the Y-axis transplanting assembly 23 via a guide rail and chain. The clamping member 21 is mounted on the Y-axis transplanting mechanism 2. The clamping member 21 is used to clamp the material tray 122. A positioning pin is provided on the inner side of the clamping member 21 for inserting into the material tray 122 to further fix the material tray 122. The clamping member 21 clamps the material tray 122 via a clamping cylinder and is provided with two sets of test components facing opposite sides.
[0055] Reference Figure 14 The Y-axis transfer assembly 23 includes a first movable plate 231 and a second movable plate 232. The clamping member 21 is slidably connected to the first movable plate 231. The clamping member 21 is slidably connected to the first movable plate 231 by a linear module 233. The first movable plate 231 and the second movable plate 232 are slidably connected. A synchronous belt 234 is provided on the second movable plate 232. The first movable plate 231 is connected to one side of the synchronous belt 234. The rotation of the synchronous belt 234 causes the first movable plate 231 to slide on the second movable plate 232.
[0056] Reference Figure 15 The Y-axis transfer component 23 can be used to place the preparation tray 122 into the test component. After the test is completed, the X-axis transfer component 22 and the Y-axis transfer component 23 work together to place the preparation tray 122 on the data reading mechanism 4. The data reading mechanism 4 works with the test components on both sides, and two sets are also set up. After data reading, the preparation tray 122 is conveyed to the bottom of the unloading mechanism 5 through the conveyor chain 41 and unloaded through the unloading mechanism 5.
[0057] Reference Figures 15-16 In some embodiments, the feeding mechanism 5 includes feeding grippers 51, feeding bins 52, and feeding conveyor belt 53. The feeding grippers 51 can move between two sets of preparation trays 122 via a chain and guide rail. Two feeding grippers 51 are provided, which can hold two products at the same time. One feeding bin 52 can also hold two products at the same time. The feeding grippers 51 take turns feeding the products in the preparation trays 122 on both sides into the feeding bin 52. The feeding conveyor belt 53 is connected to the feeding bins 52 on both sides at opposite ends. The feeding grippers 51 hold the products and take turns feeding them into the feeding bins 52 on both sides. When the feeding conveyor belt 53 rotates, after feeding one feeding bin 52 approaches the feeding grippers 51 to feed, the feeding conveyor belt 53 continues to rotate and feeds the other feeding bin 52 to feed. After the feeding bin 52 is filled with products, it moves forward to perform feeding and packaging processes. The feeding mechanism 5 is also equipped with an NG disk. When the data reading mechanism 4 reads data indicating that the product is unqualified, the feeding mechanism 5 will put the product into the NG disk.
[0058] The implementation principle of the aging test device in this application embodiment is as follows: it realizes full-process automation from product loading, charging, testing to data reading and unloading, thereby improving testing efficiency; the charging plate 121 in the loading and charging mechanism 1 is designed with multiple charging chambers, which can charge multiple products simultaneously; the preparation plate 122 allows multiple products to quickly enter the testing stage after charging, enabling the aging test device to complete the aging test of a large number of products in a small space; each charging chamber is independently designed to ensure that the products do not affect each other during the charging process; the data reading mechanism 4 can read the internal data of the product during the testing process, and through the analysis and processing of the data at the remote MES terminal, it can quickly determine the yield of the product and ensure the accuracy of the test results.
[0059] The above are exemplary embodiments disclosed in this invention. However, it should be noted that various changes and modifications can be made without departing from the scope of the embodiments of this invention as defined by the claims. The functions, steps, and / or actions of the methods according to the disclosed embodiments described herein do not need to be performed in any particular order. Furthermore, although the elements disclosed in the embodiments of this invention may be described or claimed individually, they may be understood as multiple unless explicitly limited to a singular number.
[0060] It should be understood that, as used herein, the singular form "a" is intended to include the plural form as well, unless the context clearly supports an exception. It should also be understood that, as used herein, "and / or" refers to any and all possible combinations of one or more of the associatedly listed items. The embodiment numbers disclosed above are for descriptive purposes only and do not represent the superiority or inferiority of the embodiments.
[0061] Those skilled in the art should understand that the discussion of any of the above embodiments is merely exemplary and is not intended to imply that the scope of the invention (including the claims) is limited to these examples. Within the framework of the invention, technical features of the above embodiments or different embodiments can be combined, and many other variations of different aspects of the invention exist, which are not provided in the details for the sake of brevity. Therefore, any omissions, modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the invention should be included within the protection scope of the invention.
Claims
1. An aging test apparatus characterized by: The device comprises a feeding and charging mechanism, a transplanting mechanism, an automatic testing mechanism, a data reading mechanism and a discharging mechanism. The feeding and charging mechanism comprises a feeding assembly and at least two charging assemblies. The charging assembly comprises a charging disc and a standby disc. The charging disc has a plurality of charging compartments. The feeding assembly clamps the product to each charging compartment in sequence. The product after charging is clamped to the standby disc in sequence and then is moved to the front end of the automatic testing mechanism.
2. An aging test apparatus according to claim 1, wherein: The feeding assembly comprises a feeding clamp and a first pressure sensor. The first pressure sensor is used to detect the pressure of the product clamped by the feeding clamp and whether the product is clamped in place.
3. An aging test apparatus according to claim 2, wherein: The upper end of the feeding clamp is provided with a second pressure sensor and an elastic member. The second pressure sensor is used to detect the pressure when the product is inserted into the charging compartment by the feeding clamp.
4. The aging test apparatus of claim 1, wherein: The charging assembly further comprises a code scanning gun. The standby disc is provided with a two-dimensional code. The code scanning gun is used to scan the information of the product.
5. The aging test apparatus of claim 1, wherein: The transplanting mechanism comprises a clamping member, an X-axis transplanting assembly, a Y-axis transplanting assembly and a Z-axis transplanting assembly. The clamping member is used to clamp the standby disc. The Y-axis transplanting assembly comprises a first moving plate and a second moving plate. The clamping member is in sliding connection with the first moving plate. The first moving plate is in sliding connection with the second moving plate.
6. The aging test apparatus of claim 1, wherein: The testing assembly comprises a rotating drive member and a rotating assembly. The rotating assembly comprises a rotating plate, a pressing drive member, a pressing plate, a clamping drive member and a clamping plate. The standby disc is on the rotating plate. The pressing drive member drives the pressing plate to press against the standby disc. The clamping drive member drives the clamping plate to clamp both sides of the standby disc. The rotating drive member drives the rotating assembly to reciprocating rotate along the rotating plate to realize swing test.
7. An aging test apparatus according to claim 1 or 6, characterized by: The testing assembly further comprises a testing drive member, a reciprocating drive member and a plurality of testing rods. The number of the testing rods corresponds to the number of the products in the standby disc. Each testing rod in a group of testing rods comprises two testing rods. The testing drive member drives one of the testing rods in each group to insert into the product. After the testing time is reached, the reciprocating drive member drives the testing rod to move to insert the other testing rod in each group into the product. The testing is repeated for several times.
8. The aging test apparatus of claim 1, wherein: The device further comprises a cooling mechanism. The cooling mechanism comprises a temperature sensor, a fan and an air conditioner. When the temperature sensor monitors that the temperature reaches the set temperature, the fan or / and the air conditioner is turned on to cool down.
9. The aging test apparatus of claim 1, wherein: The discharging mechanism comprises a discharging clamp, a discharging bin and a discharging conveyor belt. The two sides of the discharging conveyor belt are connected to the discharging bin away from each other. The discharging clamp clamps the product to the discharging bin on the two sides in turn.