Product aging device
By using automated electrical connections of automatic guide vehicles and electrical modules in high-temperature energized aging test, the problem of manual failure to exit the aging room immediately is solved, which improves testing efficiency and reduces labor costs.
Patent Information
- Application Number
- CN202421305268.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-07
- Publication Date
- 2025-06-24
- Estimated Expiration
- 2034-06-07
AI Technical Summary
During the high-temperature energized aging test stage, manual cannot immediately place the product on the rack and unleash it into the aging room, resulting in the product waiting time in the aging room for too long, reducing the testing efficiency.
A product aging device is designed, and the product placement rack is entered or exited from the aging room along the preset route using an automatic guide vehicle, and the first power-on module and the second power-on module are electrically connected and disconnected to realize automated high-temperature power-on aging test.
Through the use of automatic guide vehicles, the waiting time for products after power-on aging in high-temperature aging rooms is shortened, the efficiency of the high-temperature aging stage is improved, and labor costs are reduced.
Smart Images

Figure CN223022259U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of aging equipment, in particular to a product aging device. Background Art
[0002] To ensure the normal operation of electronic products during actual use, before the electronic products leave the factory, various tests need to be carried out on the assembled electronic products. For example: high-temperature power-on aging, that is, under high-temperature conditions, power-on aging tests are carried out on the internal programs and corresponding hardware of the electronic products. In the prior art, during the high-temperature power-on aging test stage of the product, first, the product to be tested is placed on the product placement rack, and the product to be tested is electrically connected to the product placement rack. Then, the product placement rack is manually pushed into the high-temperature aging chamber, and the product placement rack is manually electrically connected to the power supply in the aging chamber to carry out a certain period of high-temperature power-on aging test on the products on the product placement rack. After setting the aging time, due to the high temperature in the aging chamber, it is impossible for the operator to immediately push the product placement rack out of the aging chamber, which increases the waiting time of the products after the high-temperature power-on aging test in the aging chamber, resulting in low efficiency in the high-temperature power-on aging stage of the products.
[0003] Therefore, how to improve the efficiency of the high-temperature power-on aging stage of products has become a difficult problem that needs to be solved urgently by those skilled in the art. Summary of the Utility Model
[0004] The utility model provides a product aging device to improve the automation degree of the product aging device, thereby improving the efficiency of the high-temperature power-on aging stage of products.
[0005] The present utility model provides a product aging device for aging products in a high-temperature aging chamber. The product includes a power-on plug and an aging module, and the aging module is electrically connected to the power-on plug. The product aging device includes a product placement rack and an automatic guided vehicle. Among them, the product placement rack includes a power-on socket and a first power-on module, and the power-on socket is electrically connected to the first power-on module; the power-on plug is used to be electrically connected to the power-on socket; thereby realizing the electrical connection between the aging module of the product and the first power-on module of the product placement rack. In addition, a second power-on module is provided in the aging chamber, and the second power-on module is electrically connected to the power supply; the automatic guided vehicle drives the product placement rack to enter or exit the aging chamber along a preset route; and when the product placement rack enters the aging chamber with the automatic guided vehicle, the first power-on module is electrically connected to the second power-on module; when after the set aging time, the first power-on module is disconnected from the second power-on module, and the product placement rack exits the aging chamber with the automatic guided vehicle. The product aging device provided by the present utility model uses an automatic guided vehicle to transport the product placed on the product placement rack along a preset route into the aging chamber for aging tests, and after the set aging time, the automatic guided vehicle can immediately take the product placement rack out of the high-temperature aging chamber, so as to shorten the waiting time of the product after power-on aging in the high-temperature aging chamber, thereby effectively improving the efficiency of the product in the high-temperature power-on aging stage and reducing the labor cost.
[0006] In a possible implementation manner of the present utility model, when the product placement rack enters the aging chamber with the automatic guided vehicle, the automatic guided vehicle drives the first power-on module of the product placement rack to move towards the second power-on module to realize the electrical connection between the first power-on module and the second power-on module, which is beneficial to improving the automation degree of the electrical connection of the product aging device.
[0007] In a possible implementation manner of the present utility model, when after the set aging time, the automatic guided vehicle drives the first power-on module of the product placement rack to move in a direction away from the second power-on module to disconnect the first power-on module from the second power-on module, thereby improving the automation degree of power-off of the product aging device.
[0008] In a possible implementation manner of the present utility model, the first power-on module includes a conductive block, and the second power-on module includes a conductive structural member. When the conductive block abuts against the conductive structural member, the first power-on module is electrically connected to the second power-on module. The product aging device provided by the present utility model realizes the electrical connection between the first power-on module and the second power-on module by abutting the first power-on module against the second power-on module, so as to avoid the phenomenon that the two cannot be accurately docked due to the relative position deviation between the first power-on module and the second power-on module, and improve the reliability of the electrical connection between the first power-on module and the second power-on module.
[0009] In a possible implementation manner of the present utility model, the conductive structural member is a conductive probe. In this way, the production cost can be reduced while meeting the conductive requirements of the conductive structural member itself.
[0010] In a possible implementation manner of the present utility model, the first power-on module further includes a guiding hole, and the second power-on module further includes a guiding post. When the first power-on module is electrically connected to the second power-on module, the guiding post is inserted into the guiding hole. This setting method can utilize the insertion of the guiding post into the guiding hole to achieve the accurate docking of the first power-on module and the second power-on module, so as to avoid the phenomenon that the two cannot be accurately electrically connected due to the relative position deviation between the first power-on module and the second power-on module, thereby improving the electrical connection accuracy of the first power-on module and the second power-on module.
[0011] In a possible implementation manner of the present utility model, the first power-on module includes at least two guiding holes, the second power-on module includes at least two guiding posts, and the at least two guiding holes and the at least two guiding posts are arranged in one-to-one correspondence. This can further improve the electrical connection accuracy of the first power-on module and the second power-on module.
[0012] In a possible implementation manner of the present utility model, the second power-on module further includes a counterbore and an elastic structural member. The elastic structural member is located inside the counterbore. One end of the elastic structural member is connected to the conductive structural member, and the other end of the elastic structural member is connected to the bottom end of the counterbore. So that when the conductive structural member of the second power-on module is subjected to the extrusion force of the conductive block of the first power-on module, the elastic structural member can play a buffering role on the conductive structural member, thereby extending the service life of the conductive structural member.
[0013] In a possible implementation manner of the present utility model, the elastic structural member is a spring or a spring piece. In this way, the production cost can be reduced while meeting the functional requirements of the elastic structural member.
[0014] In a possible implementation manner of the present utility model, the surface of the conductive structural member is composed of a first surface and a second surface. The first surface is used to abut against the conductive block; the second power-on module further includes a first insulating layer, and the first insulating layer covers the second surface. This can avoid the electric shock phenomenon caused by misoperation, so as to improve the use safety of the product aging device.
[0015] In a possible implementation manner of the present utility model, the surface of the conductive block is composed of a third surface and a fourth surface. The third surface is used to abut against the conductive structural member; the first power-on module further includes a second insulating layer, and the second insulating layer covers the fourth surface. This can avoid the electric shock phenomenon caused by misoperation, so as to improve the use safety of the product aging device.
[0016] In a possible implementation manner of the present utility model, the product placement rack includes a plurality of power-on sockets, and the plurality of power-on sockets are electrically connected to the first power-on module. In this way, the requirement for simultaneous power-on aging of multiple products can be met, thereby improving the working efficiency of the product aging device. Description of the Drawings
[0017] Figure 1 FIG. 1 is a schematic structural diagram of a product placement rack and an automatic guided vehicle provided by the present utility model;
[0018] Figure 2 FIG. 2 is a schematic structural diagram of a first power-on module and a second power-on module provided by the present utility model;
[0019] Figure 3 FIG. 3 is a schematic structural diagram of a second power-on module provided by the present utility model;
[0020] Figure 4 is Figure 3 a schematic cross-sectional structural diagram of A-A shown in FIG. 4;
[0021] Figure 5 FIG. 4 is a schematic structural diagram of a first power-on module provided by the present utility model;
[0022] Figure 6 is Figure 5 a schematic cross-sectional structural diagram of B-B shown in FIG. 5.
[0023] Reference numerals: 1 - product placement rack; 11 - first power-on module; 111 - conductive block; 112 - guiding hole; 113 - second insulating layer; 12 - support leg; 2 - automatic guided vehicle; 21 - automatic lifting platform; 3 - second power-on module; 31 - conductive structural member; 32 - guiding column; 33 - counterbore; 34 - elastic structural member; 35 - first insulating layer; 36 - voltage conducting block; 37 - limiting block. Detailed Embodiments
[0024] In order to make the objectives, technical solutions, and advantages of the present utility model clearer, the present utility model will be further described in detail below with reference to the drawings. However, the exemplary embodiments can be implemented in various forms and should not be construed as limited to the embodiments described herein. The same reference numerals in the drawings represent the same or similar structures, and thus their repeated description will be omitted. The words expressing positions and directions in the embodiments of the present utility model are all described with reference to the drawings as examples, but can be changed according to needs, and all changes are included in the protection scope of the present utility model. The drawings in the embodiments of the present utility model are only used to illustrate the relative positional relationship, and they do not represent the actual proportion.
[0025] It should be noted that specific details are set forth in the following description to facilitate the understanding of the present utility model. However, the present utility model can be implemented in many other ways different from those described herein, and those skilled in the art can make similar extensions without departing from the connotation of the present utility model. Therefore, the present utility model is not limited by the specific embodiments disclosed below.
[0026] To ensure the normal operation of electronic products during actual use, before the electronic products leave the factory, various tests need to be carried out on the assembled electronic products. For example: high-temperature power-on aging, that is, under high-temperature conditions, power-on aging tests are carried out on the internal programs and corresponding hardware of the electronic products. In the prior art, during the high-temperature power-on aging test stage of the product, first, the product to be tested is placed on the product placement rack, and the product to be tested is electrically connected to the product placement rack. Then, the product placement rack is manually pushed into the aging chamber, and the product placement rack is manually electrically connected to the power supply in the aging chamber to carry out a certain period of high-temperature power-on aging test on the products on the product placement rack. After setting the aging time, due to the high temperature in the aging chamber, it is impossible for the operator to immediately push the product placement rack out of the aging chamber, which increases the waiting time of the products after the high-temperature power-on aging test in the aging chamber, thus resulting in low efficiency in the high-temperature power-on aging stage of the products.
[0027] In view of this, the product aging device provided by the present utility model improves the automation degree of the product aging device to improve the efficiency in the high-temperature power-on aging stage of the products. To make the purpose, technical solution and advantages of the present utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and specific embodiments.
[0028] In the embodiment provided by the present utility model, an Automated Guided Vehicle (AGV) adopts the method of automatically loading goods or manually loading goods. After the AGV loads the goods, the control system controls the AGV to automatically travel to the designated location according to the preset route and controls the AGV to perform subsequent actions.
[0029] Reference Figure 1 , Figure 1 is a schematic structural diagram of a product aging device provided by the present utility model. The product aging device is used to age products in a high-temperature aging chamber, and the product includes a power-on plug ( Figure 1 not shown in the figure) and an aging module ( Figure 1 not shown in the figure), and the aging module is electrically connected to the power-on plug. The product aging device includes a product placement rack 1 and an automated guided vehicle 2. Among them, the product placement rack 1 includes a power-on socket ( Figure 1not shown) and a first power-on module 11, the power-on socket is electrically connected to the first power-on module 11; the power-on plug is used to be electrically connected to the power-on socket, so as to realize the electrical connection between the aging module of the product and the first power-on module 11 of the product placement rack 1.
[0030] In addition, a second power-on module 3 is provided in the aging room, and the second power-on module 3 is electrically connected to the power supply; the automatic guided vehicle 2 drives the product placement rack 1 to enter or exit the aging room along a preset route; and when the product placement rack 1 enters the aging room with the automatic guided vehicle 2, the first power-on module 11 is electrically connected to the second power-on module 3; when after the set aging time, the first power-on module 11 is disconnected from the second power-on module 3, and the product placement rack 1 exits the aging room with the automatic guided vehicle 2. The product aging device provided by the present utility model uses the automatic guided vehicle 2 to transfer the product placed on the product placement rack 1 to the aging room along a preset route, and electrically connects the first power-on module 11 to the second power-on module 3 to perform an aging test on the product on the product placement rack 1, and after the set aging time, the automatic guided vehicle 2 can immediately take the product placement rack 1 out of the high-temperature aging room, so that the waiting time of the product after power-on aging in the high-temperature aging room can be shortened, thereby effectively improving the efficiency of the high-temperature power-on aging stage of the product and reducing the labor cost.
[0031] It is worth mentioning that when the product placement rack 1 enters the aging room with the automatic guided vehicle 2, the automatic guided vehicle 2 drives the first power-on module 11 of the product placement rack 1 to move towards the second power-on module 3 to realize the electrical connection between the first power-on module 11 and the second power-on module 3, which is beneficial to improving the degree of automation of the electrical connection of the product aging device.
[0032] In addition, when after the set aging time, the automatic guided vehicle 2 drives the first power-on module 11 of the product placement rack 1 to move in a direction away from the second power-on module 3, so that the first power-on module 11 is disconnected from the second power-on module 3, thereby improving the degree of automation of power-off of the product aging device.
[0033] In a specific embodiment, as Figure 1 shown, the product placement rack 1 can be a rectangular frame. The automatic guided vehicle 2 includes an automatic lifting platform 21, the product placement rack 1 is arranged on the automatic lifting platform 21, the first power-on module 11 is arranged on one side of the product placement rack 1 close to the automatic lifting platform 21, the first power-on module 11 is located outside the automatic lifting platform 21, and the second power-on module 3 is arranged opposite to the first power-on module 11. In addition, the product placement rack 1 further includes support legs 12, and the support legs 12 are located between the automatic lifting platform 21 and the ground.
[0034] When the product placement rack 1 enters the designated position in the aging room along the preset route with the automatic guided vehicle 2, the automatic lifting platform 21 drives the product placement rack 1 to descend, so that the first power-on module 11 moves towards the second power-on module 3, thereby realizing the electrical connection between the first power-on module 11 and the second power-on module 3. This is conducive to improving the convenience of the electrical connection between the first power-on module 11 and the second power-on module 3. It is worth mentioning that when the first power-on module 11 is electrically connected to the second power-on module 3, the support legs 12 contact the ground and play a supporting role for the product placement rack 1, thereby improving the stability of the product placement rack 1.
[0035] In addition, after the set aging time, the automatic lifting platform 21 drives the product placement rack 1 to rise, so that the first power-on module 11 moves in the direction away from the second power-on module 3, thereby disconnecting the electrical connection between the first power-on module 11 and the second power-on module 3. After the first power-on module 11 is disconnected from the second power-on module 3, the product placement rack 1 exits the aging room along the preset route with the automatic guided vehicle 2, so as to reduce the waiting time of the product after power-on aging in the high-temperature aging room, thereby effectively improving the efficiency of the high-temperature power-on aging stage of the product.
[0036] Reference Figure 2 , Figure 2 is a schematic structural diagram of the first power-on module and the second power-on module provided by the present utility model. The first power-on module 11 includes a conductive block 111, and the second power-on module 3 includes a conductive structural member 31. When the conductive block 111 abuts against the conductive structural member 31, the first power-on module 11 is electrically connected to the second power-on module 3. The product aging device provided by the present utility model realizes the electrical connection between the first power-on module 11 and the second power-on module 3 by abutting the first power-on module 11 against the second power-on module 3. In this way, the phenomenon that the two cannot be accurately docked due to the relative position deviation between the first power-on module 11 and the second power-on module 3 can be avoided, so as to improve the reliability of the electrical connection between the first power-on module 11 and the second power-on module 3.
[0037] Continue to refer to Figure 2, the first power-on module 11 further includes a guiding hole 112, and the second power-on module 3 further includes a guiding post 32. When the first power-on module 11 is electrically connected to the second power-on module 3, the guiding post 32 is inserted into the guiding hole 112. In the specific implementation process, when the product placement rack 1 arrives at the designated position in the aging room along the preset route with the automatic guided vehicle 2, during the movement of the first power-on module 11 towards the second power-on module 3, the first power-on module 11 drives the guiding hole 112 to move towards the guiding post 32, so that the guiding hole 112 and the guiding post 32 are first inserted, and then the first power-on module 11 and the second power-on module 3 are electrically connected. In this way, the guiding hole and the guiding post can play a guiding role in the electrical connection between the first power-on module 11 and the second power-on module 3, so as to avoid the phenomenon that the two cannot be accurately electrically connected due to the relative position deviation between the first power-on module 11 and the second power-on module 3, thereby improving the electrical connection accuracy between the first power-on module 11 and the second power-on module 3.
[0038] It is worth mentioning that the first power-on module 11 includes at least two guiding holes 112, and the second power-on module 3 includes at least two guiding posts 32. The at least two guiding holes 112 and the at least two guiding posts 32 are arranged in one-to-one correspondence. This can further improve the electrical connection accuracy between the first power-on module 11 and the second power-on module 3.
[0039] Reference Figure 3 and Figure 4 , Figure 3 is a schematic structural diagram of a second power-on module provided by the present utility model; Figure 4 is Figure 3 a schematic cross-sectional structural diagram of A-A shown in. The second power-on module 3 further includes a counterbore 33 and an elastic structural member 34. The elastic structural member 34 is located inside the counterbore 33. One end of the elastic structural member 34 is connected to the conductive structural member 31, and the other end of the elastic structural member 34 is connected to the bottom end of the counterbore 33. So that when the conductive structural member 31 of the second power-on module 3 is subjected to the extrusion force of the conductive block 111 of the first power-on module 11, the elastic structural member 34 can play a buffering role on the conductive structural member 31, thereby extending the service life of the conductive structural member 31.
[0040] It is worth mentioning that the present utility model does not limit the specific structure of the elastic structural member 34. Exemplarily, the elastic structural member 34 is a spring or a spring sheet, so as to reduce the production cost while meeting the functional requirements of the elastic structural member 34.
[0041] In the embodiment of the present utility model, as Figure 4As shown, the second power-on module 3 further includes a first insulating layer 35, and the surface of the conductive structure 31 is composed of a first surface and a second surface, and the first surface is used to abut against the conductive block 111 to achieve electrical connection between the conductive structure 31 and the conductive block 111. In addition, the first insulating layer 35 covers the second surface, which can avoid electric shock caused by misoperation, so as to improve the safety of the product aging device.
[0042] It is worth mentioning that, in the present invention, the specific structure of the conductive structure 31 is not limited. Exemplarily, it can be a conductive probe, which can reduce the production cost while meeting the conductive requirements of the conductive structure 31 itself.
[0043] In a specific embodiment, Figure 4 As shown, the second power-on module 3 further includes a conductive block 36, a counterbore 33 is disposed on the conductive block 36, an elastic structure 34 is located inside the counterbore 33, and one end of the elastic structure 34 is connected to the conductive structure 31, and the other end of the elastic structure 34 is connected to the bottom end of the counterbore 33, so that the conductive structure 31 can move along the axis of the counterbore 33 with the elastic structure 34. In addition, the first insulating layer 35 covers the outer surface of the conductive block 36 and the second surface of the conductive structure 31 to avoid electric shock caused by misoperation, thereby improving the safety of the second power-on module 3.
[0044] It is worth mentioning that one end of the conductive voltage block 36 away from the conductive structure 31 is electrically connected to the power supply through a wire. In the present invention, the wire and the conductive voltage block 36 are exemplarily connected by welding or bolts to achieve electrical connection between the two.
[0045] In addition, continue to refer to Figure 4 The second power-on module 3 also includes a limit block 37, which is connected to one end of the conductive voltage block 36 away from the bottom of the countersunk hole 33, and a limit boss is provided at one end of the conductive structure 31 close to the bottom of the countersunk hole 33, and during the telescopic movement of the conductive structure 31, the limit boss is always located inside the countersunk hole 33, and when the conductive structure 31 is electrically disconnected from the conductive block 111, the limit boss abuts against the limit block 37 to prevent the conductive structure 31 from completely separating from the countersunk hole 33 during the movement of the conductive structure 31, thereby improving the stability of the conductive structure 31.
[0046] refer to Figure 5 and Figure 6 , Figure 5 A structural schematic diagram of a first power-on module provided by the utility model; Figure 6 for Figure 5A schematic cross-sectional structure diagram of B-B as shown. The surface of the conductive block 111 consists of a third surface and a fourth surface. The third surface is used to abut against the conductive structure member 31 to achieve electrical connection between the conductive block 111 and the conductive structure member 31. In addition, the first power-on module 11 further includes a second insulating layer 113, and the second insulating layer 113 covers the fourth surface, which can avoid electric shock caused by misoperation and improve the safety of the product aging device.
[0047] It should be noted that in the present utility model, the materials of the first insulating layer 35 and the second insulating layer 113 are not specifically limited. Exemplarily, the materials of the first insulating layer 35 and the second insulating layer 113 are both non-conductive nylon.
[0048] In a specific embodiment, the conductive block 111 is a rectangular block, and the conductive structure member 31 is a conductive probe. Moreover, the area of the third surface of the rectangular block is larger than the area of the first surface of the conductive probe. This can avoid the phenomenon that the first surface of the conductive probe and the third surface of the rectangular block cannot be accurately electrically connected due to the relative position deviation between the first surface of the conductive probe and the third surface of the rectangular block, thereby improving the electrical connection reliability between the conductive block 111 and the conductive probe.
[0049] It is worth mentioning that the product placement rack 1 may include a plurality of power-on sockets, and the plurality of power-on sockets are electrically connected to the first power-on module 11. This can meet the requirement of simultaneous power-on aging of multiple products, thereby improving the working efficiency of the product aging device.
[0050] After a preliminary understanding of the specific structure of the product aging device provided by the present utility model, the power-on aging process of the product will be further described in combination with the actual use scenario.
[0051] First, place a plurality of products to be power-on aged on the product placement rack 1, and electrically connect the power-on plugs of each product to the power-on sockets of the product placement rack 1 in one-to-one correspondence.
[0052] Immediately afterwards, place the product placement rack 1 on the automatic lifting platform 21 of the automatic guided vehicle 2, and the control system sends a corresponding signal. The automatic guided vehicle 2 transports the product placement rack 1 to a preset location in the high-temperature aging chamber along a preset route.
[0053] Immediately afterwards, the control system sends a corresponding signal, and the automatic lifting platform 21 of the automatic guided vehicle 2 descends. The conductive block 111 of the first power-on module 11 abuts against the conductive probe of the second power-on module 3, and the product starts to perform high-temperature power-on aging testing.
[0054] Immediately afterwards, after setting the aging time, the control system sends a corresponding signal, and the automatic lifting platform 21 of the automatic guided vehicle 2 rises. The conductive block 111 of the first power-on module 11 disconnects from the conductive probe of the second power-on module 3.
[0055] Finally, the control system sends out corresponding signals, and the automatic guided vehicle 2 transports the product placement rack 1 to a preset location outside the high-temperature aging room along a preset route.
[0056] In summary, for the product aging device provided by the present utility model, the products placed on the product placement rack are transported into the aging room along a preset route by the automatic guided vehicle 2 for aging tests. After the set aging time, the automatic guided vehicle 2 can immediately take out the products after power-on aging from the high-temperature aging room, which can shorten the waiting time of the products after power-on aging in the high-temperature aging room, thereby effectively improving the efficiency of the high-temperature power-on aging stage of the products and reducing the labor cost.
[0057] Obviously, those skilled in the art can make various modifications and variations to the present utility model without departing from the spirit and scope of the present utility model. Thus, if these modifications and variations of the present utility model fall within the scope of the claims of the present utility model and their equivalent technologies, the present utility model also intends to include these modifications and variations.
Claims
1. A product aging device, used for aging products in a high-temperature aging room, wherein the product comprises a power-on plug and an aging module, wherein the aging module is electrically connected to the power-on plug, and wherein: The product aging device includes a product placement rack and an automatic guided vehicle, wherein: The product placement rack includes a power-on socket and a first power-on module, the power-on socket is electrically connected to the first power-on module; the power-on plug is used to be electrically connected to the power-on socket; a second power-on module is provided in the aging room, and the second power-on module is electrically connected to a power source; The automatic guided vehicle drives the product placement rack along a preset route to enter or exit the aging room; When the product placement rack enters the aging room along with the automatic guided vehicle, the first power-on module is electrically connected to the second power-on module; After the set aging time, the first power-on module is electrically disconnected from the second power-on module, and the product placement rack exits the aging room along with the automatic guided vehicle.
2. The product aging device according to claim 1, characterized in that: When the product placement rack enters the aging room along with the automatic guided vehicle, the automatic guided vehicle drives the first power-on module of the product placement rack to move toward the second power-on module.
3. The product aging device according to claim 1, characterized in that: After the set aging time, the automatic guided vehicle drives the first power-on module of the product placement rack to move in a direction away from the second power-on module.
4. The product aging device according to claim 1, characterized in that: The first power-on module includes a conductive block, and the second power-on module includes a conductive structure. When the conductive block abuts against the conductive structure, the first power-on module is electrically connected to the second power-on module.
5. The product aging device according to claim 4, characterized in that: The conductive structure is a conductive probe.
6. The product aging device according to claim 1, characterized in that: The first power-on module further includes a guide hole, and the second power-on module further includes a guide column. When the first power-on module is electrically connected to the second power-on module, the guide column is inserted into the guide hole.
7. The product aging device according to claim 6, characterized in that: The first power-on module includes at least two guide holes, and the second power-on module includes at least two guide pillars. The at least two guide holes are arranged in a one-to-one correspondence with the at least two guide pillars.
8. The product aging device according to claim 4, characterized in that: The second power-on module further includes a countersunk hole and an elastic structural member, wherein the elastic structural member is located inside the countersunk hole, one end of the elastic structural member is connected to the conductive structural member, and the other end of the elastic structural member is connected to the bottom end of the countersunk hole.
9. The product aging device according to claim 8, characterized in that: The elastic structural member is a spring or a spring sheet.
10. The product aging device according to claim 4, characterized in that: The surface of the conductive structure is composed of a first surface and a second surface, wherein the first surface is used to abut against the conductive block; the second power-on module further comprises a first insulating layer, and the first insulating layer covers the second surface.
11. The product aging device according to claim 4, characterized in that: The surface of the conductive block consists of a third surface and a fourth surface, and the third surface is used to abut against the conductive structure; the first power-on module also includes a second insulating layer, and the second insulating layer covers the fourth surface.
12. The product aging device according to claim 1, characterized in that: The product placement rack includes a plurality of power-on sockets, and the plurality of power-on sockets are electrically connected to the first power-on module.