Aging device
By setting up independent fan mechanisms and storage compartments in the aging device, simultaneous aging tests of multiple products can be achieved, solving the problem of long testing times in traditional aging cabinets and improving testing efficiency.
Patent Information
- Application Number
- CN202511375493.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-25
- Publication Date
- 2025-12-09
AI Technical Summary
Traditional aging chambers only have one temperature control unit and one storage compartment, which increases the operation time and the overall time of aging tests.
Design an aging device comprising a storage chamber, a first fan mechanism, and a second fan mechanism, which are respectively used in the first and second storage chambers to achieve independent gas circulation and temperature control, and support multiple products to undergo aging tests simultaneously.
With independent gas circulation and temperature control, aging tests can be performed simultaneously on the same number of products, reducing testing time and increasing testing speed.
Smart Images

Figure CN121090959A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of aging cabinet technology, and more particularly to an aging device. Background Technology
[0002] With the rapid development of new energy vehicles and the iterative upgrades of in-vehicle systems, the Zone Control Unit (ZCU) is a core component of the automotive electronic and electrical architecture. The ZCU not only serves as a regional data center, I / O center, and power distribution center, playing a crucial role in vehicle power, sensor management, and infotainment, but also provides strong support for the stable operation and efficient collaboration of intelligent connected vehicles through efficient data processing, signal control, and power distribution.
[0003] Traditional aging chambers have only one temperature control and one storage compartment, which increases the operation time and the overall time of aging tests. Summary of the Invention
[0004] The technical problem this application aims to solve is that traditional aging cabinets, which have only one temperature control and one storage compartment, result in increased operation time and increase the overall time of aging tests.
[0005] In order to solve the above problems, or at least partially solve the above technical problems, this application provides an aging device.
[0006] This invention discloses an aging device, which includes a storage chamber, a first fan mechanism, a second fan mechanism, a first storage mechanism, and a second storage mechanism;
[0007] The storage compartment includes a partition plate, a first storage compartment and a second storage compartment, the first storage compartment and the second storage compartment are integrally formed, and the partition plate is installed between the first storage compartment and the second storage compartment;
[0008] The first fan mechanism is connected to the first storage compartment, and the second fan mechanism is connected to the second storage compartment;
[0009] The first storage unit is installed in the first storage compartment, and the second storage unit is installed in the second storage compartment.
[0010] Preferably, the first storage compartment includes a first storage area and a first air supply duct area, wherein the first storage area is connected to the first air supply duct area;
[0011] The second storage compartment includes a second storage area and a second air supply duct area, and the second storage area is connected to the second air supply duct area.
[0012] Preferably, the first storage area includes a first air inlet pipe, a first aging chamber, and a first return air pipe. The first air inlet pipe and the first return air pipe are respectively provided on both sides of the first aging chamber, and the first aging chamber is connected to the first air inlet pipe and the first return air pipe.
[0013] The second storage area includes a second air inlet duct, a second aging chamber, and a second return air duct. The second air inlet duct and the second return air duct are respectively provided on both sides of the second aging chamber. The second aging chamber is connected to the second air inlet duct and the second return air duct.
[0014] Preferably, the first aging chamber and the second aging chamber are provided with wiring ports;
[0015] Within the first aging chamber, the wiring port connects the first aging chamber to the first air supply duct area;
[0016] Inside the second aging chamber, the wiring port connects the second aging chamber to the second air supply duct area.
[0017] Preferably, the first fan mechanism includes a first fan base, a first main fan, a first heating wire, and a first exhaust pipe. The first fan base includes a first air inlet and a first fan section. The first air inlet and the first fan section are integrally formed. The first main fan, the first heating wire, and the first exhaust pipe are mounted on the first fan section.
[0018] The second fan mechanism includes a second fan base, a second main fan, a second heating wire, and a second exhaust pipe. The second fan base includes a second air inlet and a second fan section. The second air inlet and the second fan section are integrally formed. The second main fan, the second heating wire, and the second exhaust pipe are installed on the second fan section.
[0019] Preferably, within the first fan section, gas passes sequentially through the first main fan, the first exhaust pipe, and the first heating wire;
[0020] Inside the second fan section, gas passes sequentially through the second main fan, the second exhaust duct, and the second heating wire.
[0021] Preferably, the first fan mechanism includes a first circulating fan, which is disposed in the first air inlet and is connected to the first air supply duct area;
[0022] The second fan mechanism includes a second circulating fan, which is disposed in the second air inlet and is connected to the second air supply duct area.
[0023] Preferably, the first fan unit is provided with a first hot air supply outlet and a first return air outlet, the first hot air supply outlet being connected to the first air inlet pipe and the first return air outlet being connected to the first return air pipe;
[0024] The second fan unit is provided with a second hot air supply outlet and a second return air outlet. The second hot air supply outlet is connected to the second air inlet pipe, and the second return air outlet is connected to the second return air pipe.
[0025] Preferably, the first fan base includes a first heating element, the first heating element is disposed in the first fan part, and the first heating wire is installed in the first heating element;
[0026] The second fan base includes a second heating element, which is disposed in the second fan unit, and the second heating wire is installed inside the second heating element.
[0027] Preferably, the first fan base includes a first isolation air valve and a first exhaust air valve. The first isolation air valve is installed between the first exhaust duct and the first main fan, and the first exhaust air valve is installed in the first exhaust duct.
[0028] The second fan base includes a second isolation air valve and a second exhaust air valve. The second isolation air valve is installed between the second exhaust air pipe and the second main fan, and the second exhaust air valve is installed in the second exhaust air pipe.
[0029] The technical solution provided in this application has the following advantages compared with the prior art:
[0030] This application provides an aging device, in which a first storage mechanism and a second storage mechanism are provided in the storage chamber for placing products to be aged and tested. A first fan mechanism and a second fan mechanism can deliver hot air to the first storage chamber and the second storage chamber respectively, thereby creating a high-temperature environment for the products in the first storage chamber and the second storage chamber to carry out aging tests. Compared with traditional aging cabinets, more products can be placed for aging tests, allowing more products to be aged and tested simultaneously. By aging tests on the same number of products, the testing time is reduced and the testing speed is accelerated. Attached Figure Description
[0031] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with the invention and, together with the description, serve to explain the principles of the invention.
[0032] 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, for those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0033] Figure 1 A schematic diagram of an aging device provided in this application;
[0034] Figure 2 A schematic diagram of the structure of an aging device provided in this application Figure 2 ;
[0035] Figure 3 A schematic diagram of the structure of an aging device provided in this application Figure 3 ;
[0036] Figure 4 This application provides an exploded structural diagram of an aging device.
[0037] Figure 5 A schematic diagram of the connection structure of the first fan mechanism and the second fan mechanism of an aging device provided in this application;
[0038] Figure 6 A schematic diagram of the structure of the first circulating fan of an aging device provided in this application;
[0039] Figure 7 This is a cross-sectional structural diagram of an aging device provided in this application;
[0040] Figure 8 A cross-sectional structural diagram of the internal circulation state of an aging device provided in this application;
[0041] Figure 9 A schematic diagram of the external circulation state of an aging device provided in this application;
[0042] Figure 10 A cross-sectional structural diagram of the external circulation state of an aging device provided in this application;
[0043] Figure 11 A schematic diagram of the connection structure between the fixture and the support for an aging device provided in this application, which includes the product;
[0044] Figure 12 for Figure 11 Enlarged schematic diagram of point Q.
[0045] Explanation of reference numerals in the attached figures:
[0046] 100. Aging device; 200. Fixture; 201. Fixture; 300. Product;
[0047] 1. Storage compartment; 11. Isolation panel;
[0048] 12a, First storage compartment; 121a, First storage area; 1211a, First air inlet duct; 1212a, First aging compartment; 1213a, First return air duct; 122a, First air supply duct area; 123, Wiring port; 124, Smoke detector;
[0049] 12b, Second storage compartment; 121b, Second storage area; 1211b, Second air inlet duct; 1212b, Second aging compartment; 1213b, Second return air duct; 122b, Second air supply duct area;
[0050] 2a. First fan mechanism; 21a. First fan base; 211a. First air inlet; 212a. First fan section; 2121a. First hot air outlet; 2122a. First return air outlet; 213a. First heating element; 214a. First isolation damper; 215a. First exhaust damper; 22a. First main fan; 23a. First heating wire; 24a. First exhaust duct; 25a. First circulating fan; 251. One-way air inlet component;
[0051] 2b. Second fan mechanism; 21b. Second fan base; 211b. Second air inlet; 212b. Second fan section; 2121b. Second hot air outlet; 2122b. Second return air outlet; 213b. Second heating element; 214b. Second isolation damper; 215b. Second exhaust damper; 22b. Second main fan; 23b. Second heating wire; 24b. Second exhaust duct; 25b. Second circulating fan;
[0052] 3a. First storage mechanism; 31. Support assembly; 311. Wrench; 3111. First lever; 3112. Second lever; 312. Rotating rod; 313. Interface back plate; 32. Slide rail; 33. Ventilation plate; 331. Air distribution plate; 34. Temperature probe;
[0053] 3b. Second storage mechanism;
[0054] 4. Controller;
[0055] 5. Power supply mechanism. Detailed Implementation
[0056] To make the objectives, technical solutions, and advantages of this application clearer, the technical solutions of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of this application. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.
[0057] See Figures 1-12 This invention discloses an aging device 100 for aging tests on a product 300, which is a vehicle zone control unit (ZCCU). The device includes a storage compartment 1, a first fan mechanism 2a, a second fan mechanism 2b, a first storage mechanism 3a, and a second storage mechanism 3b. The first storage mechanism 3a and the second storage mechanism 3b are installed inside the storage compartment 1, and the first fan mechanism 2a and the second fan mechanism 2b are located on top of the storage compartment 1. The product 300 to be aged is placed inside the first storage mechanism 3a and the second storage mechanism 3b. The first fan mechanism 2a and the second fan mechanism 2b are used to heat the air entering the storage compartment 1, thereby raising the temperature inside the storage compartment 1.
[0058] The storage compartment 1 includes a partition plate 11, a first storage compartment 12a, and a second storage compartment 12b. The first storage compartment 12a and the second storage compartment 12b are integrally formed. The partition plate 11 is installed between the first storage compartment 12a and the second storage compartment 12b. The partition plate 11 can prevent the environment inside the first storage compartment 12a from mixing with the environment inside the second storage compartment 12b, and prevent the temperature inside the first storage compartment 12a from affecting each other. The first fan mechanism 2a is connected to the first storage compartment 12a, and the second fan mechanism 2b is connected to the second storage compartment 12b. The first storage mechanism 3a is installed inside the first storage compartment 12a, and the second storage mechanism 3b is installed inside the second storage compartment 12b. Specifically, the first fan mechanism 2a can input heated air into the environment inside the first storage chamber 12a. Under the action of air pressure, the gas inside the first storage chamber 12a is input into the first fan mechanism 2a, thereby forming an air circulation between the first storage chamber 12a and the first fan mechanism 2a. The second fan mechanism 2b can input heated air into the environment inside the second storage chamber 12b. Under the action of air pressure, the gas inside the second storage chamber 12b is input into the second fan mechanism 2b, thereby forming an air circulation between the second storage chamber 12b and the second fan mechanism 2b. This creates two aging spaces with gas circulation inside the storage chamber 1. Through gas circulation, the temperature inside the storage chamber 1 can be regulated, including heating and cooling, so that the aging environment reaches the required temperature value.
[0059] It is understood that the storage chamber 1 is equipped with a first storage mechanism 3a and a second storage mechanism 3b for placing the products 300 to be tested for aging. The first fan mechanism 2a and the second fan mechanism 2b can separate hot air into the first storage chamber 12a and the second storage chamber 12b respectively, thereby creating a high-temperature environment for the products 300 on the first storage mechanism 3a and the second storage mechanism 3b to carry out aging tests. Compared with traditional aging chambers, more products 300 can be placed for aging tests, allowing more products 300 to be tested for aging at the same time. With the same number of products 300 being tested for aging, the testing time is reduced and the testing speed is accelerated.
[0060] As one embodiment, internal circulation can be implemented simultaneously in the first storage compartment 12a and the second storage compartment 12b, and more products 300 can be subjected to aging tests at the same time between the first storage compartment 12a and the second storage compartment 12b, thereby accelerating the testing rate.
[0061] As one embodiment, different cycles can be implemented in the first storage compartment 12a and the second storage compartment 12b, such as an inner cycle in the first storage compartment 12a and an outer cycle in the second storage compartment 12b. Correspondingly, the first fan mechanism 2a and the second fan mechanism 2b execute the start-up mode according to the cycle mode. By implementing different cycles in the first storage compartment 12a and the second storage compartment 12b, aging tests of different batches of products 300 can be realized. The two storage compartments 1 execute different aging test processes, making the test more convenient and more practical.
[0062] The first storage chamber 12a includes a first storage area 121a and a first air supply duct area 122a. The first storage area 121a and the first air supply duct area 122a are connected. A fixture 200 is placed in the first storage area 121a, and air circulation occurs within the first storage area 121a. When the first storage chamber 12a is in external circulation, the first air supply duct area 122a connects the first storage area 121a to the outside, allowing air to enter the first storage area 121a from the first air supply duct area 122a. Air is supplied from the first air supply duct area 122a to the first storage area 121a, and the device is in external circulation mode. Compared to the traditional aging device 100, where the air outlet is typically located in the first storage area 121a, increasing the overall length of the device, the first air supply duct area 122a, installed behind the first storage area 121a, shortens the overall length of the device and makes external air extraction more convenient and provides more space.
[0063] The first storage area 121a includes a first air inlet duct 1211a, a first aging chamber 1212a, and a first return air duct 1213a. The first air inlet duct 1211a and the first return air duct 1213a are respectively arranged on both sides of the first aging chamber 1212a. The first aging chamber 1212a is connected to the first air inlet duct 1211a and the first return air duct 1213a. A first storage mechanism 3a is installed inside the first aging chamber 1212a, and the first air inlet duct 1211a and the first return air duct 1213a are installed inside the first aging chamber 1212a. On both sides of chamber 1212a, the first air inlet duct 1211a is connected to the first fan mechanism 2a, and the first return air duct 1213a is also connected to the first fan mechanism 2a. Air is blown from the first fan mechanism 2a into the first air inlet duct 1211a, and then into the first aging chamber 1212a. Due to pressure changes, the air flows from the first aging chamber 1212a into the first return air duct 1213a, returning to the first fan mechanism 2a along the first return air duct 1213a, thus forming an air circulation within the first storage area 121a. The first fan mechanism 2a continuously blows hot air into the first storage area 121a, and under the action of air circulation, the first storage area 121a continuously heats up, reaching the temperature value preset by the operator.
[0064] The first fan mechanism 2a includes a first fan base 21a, a first main fan 22a, a first heating wire 23a, a first exhaust pipe 24a, and a first circulating fan 25a. The first fan base 21a includes a first air inlet 211a and a first fan section 212a. The first air inlet 211a and the first fan section 212a are integrally formed. The first main fan 22a, the first heating wire 23a, and the first exhaust pipe 24a are installed on the first fan section 212a. In the first fan section 212a, gas passes through the first main fan 22a, the first exhaust pipe 24a, and the first heating wire 23a in sequence. The first fan section 212a is provided with a first hot air supply port 2121a and a first return air port 2122a. The first hot air supply port 2121a is connected to the first air inlet pipe 1211a, and the first return air port 2122a is connected to the first return air pipe 1213a. The first fan base 21a includes a first heating element 213a, which is disposed in the first fan part 212a, and the first heating wire 23a is installed in the first heating element 213a; the first fan base 21a includes a first isolation air valve 214a and a first exhaust air valve 215a, the first isolation air valve 214a is installed between the first exhaust pipe 24a and the first main fan 22a, and the first exhaust air valve 215a is installed in the first exhaust pipe 24a.
[0065] Specifically, the first fan base 21a is installed on top of the first storage chamber 12a, the first main fan 22a is a centrifugal fan, and the first circulating fan 25a is located in the first air inlet 211a. The first circulating fan 25a is connected to the first air supply duct area 122a. The first main fan 22a can draw gas from the first return air duct 1213a and blow it into the first exhaust duct 24a. The first heating wire 23a can heat the passing air. The first heating wire 23a is installed at the air inlet of the first air inlet duct 1211a to facilitate the entry of the hot air heated by the first heating wire 23a into the first air inlet duct 1211a. The gas in the first storage chamber 12a is discharged from the first exhaust duct 24a. When external circulation is achieved, the first exhaust valve 215a is opened, and the internal gas is discharged outward from the first exhaust duct 24a.
[0066] When the first exhaust valve 215a is open, the first isolation valve 214a is closed, the first circulating fan 25a is open, the first main fan 22a is open, and the first heating wire 23a is closed, external circulation is achieved in the first storage chamber 12a. By drawing in external cold air, the temperature inside the first storage chamber 12a can be gradually reduced. When the first exhaust valve 215a is closed, the first isolation valve 214a is open, the first circulating fan 25a is closed, the first main fan 22a is open, and the first heating wire 23a is open, internal circulation is achieved in the first storage chamber 12a. The gas inside the first storage chamber 12a circulates internally, which can gradually increase the temperature inside the first storage chamber 12a.
[0067] A one-way air inlet 251 is installed at the outlet of the first circulating fan 25a, allowing gas to enter only from the first air supply duct zone 122a towards the first heating element 213a. Cold air is drawn in through the external circulation to cool the first heating wire 23a. The one-way air inlet 251 prevents reverse gas flow. The cold air first passes through the first heating element 213a, preventing excessively cold gas from entering and causing damage to the internal structure.
[0068] The second storage chamber 12b includes a second storage area 121b and a second air supply duct area 122b. The second storage area 121b and the second air supply duct area 122b are connected. A fixture 200 is placed in the second storage area 121b, and air circulation occurs within it. When the second storage chamber 12b is in external circulation, the second air supply duct area 122b connects the second storage area 121b to the outside, allowing air to enter the second storage area 121b from the second air supply duct area 122b. Air is supplied from the second air supply duct area 122b to the second storage area 121b, putting the device in external circulation mode. Compared to the traditional aging device 100, where the air outlet is typically located in the second storage area 121b, increasing the overall length of the device, the second air supply duct area 122b, installed behind the second storage area 121b, shortens the overall length of the device and makes external air extraction more convenient and provides more space.
[0069] The second storage area 121b includes a second air inlet duct 1211b, a second aging chamber 1212b, and a second return air duct 1213b. The second air inlet duct 1211b and the second return air duct 1213b are respectively arranged on both sides of the second aging chamber 1212b. The second aging chamber 1212b is connected to the second air inlet duct 1211b and the second return air duct 1213b. The second storage mechanism 3b is installed inside the second aging chamber 1212b, and the second air inlet duct 1211b and the second return air duct 1213b are installed inside the second aging chamber 1212b. On both sides of chamber 1212b, the second air inlet duct 1211b is connected to the second fan mechanism 2b, and the second return air duct 1213b is also connected to the second fan mechanism 2b. Air is blown from the second fan mechanism 2b into the second air inlet duct 1211b, and then into the second aging chamber 1212b. Due to pressure changes, the air flows from the second aging chamber 1212b into the second return air duct 1213b, returning to the second fan mechanism 2b along the second return air duct 1213b, thus creating two air circulations within the second storage area 121b. The second fan mechanism 2b continuously blows hot air into the second storage area 121b, and under the action of air circulation, the second storage area 121b continuously heats up, reaching the temperature value preset by the operator.
[0070] The second fan mechanism 2b includes a second fan base 21b, a second main fan 22b, a second heating wire 23b, a second exhaust pipe 24b, and a second circulating fan 25b. The second fan base 21b includes a second air inlet 211b and a second fan section 212b, which are integrally formed. The second main fan 22b, the second heating wire 23b, and the second exhaust pipe 24b are mounted on the second fan section 212b. In the second fan section 212b, gas passes sequentially from the second main fan 22b, the second exhaust pipe 24b, and the second heating wire 23b. The second fan section 212b is provided with a second hot air inlet 2121b and a second return air inlet 2122b. The second hot air inlet 2121b is connected to the second air inlet 1211b, and the second return air inlet 2122b is connected to the second return air pipe 1213b. The second fan base 21b includes a second heating element 213b, which is disposed in the second fan part 212b, and the second heating wire 23b is installed in the second heating element 213b; the second fan base 21b includes a second isolation air valve 214b and a second exhaust air valve 215b, the second isolation air valve 214b is installed between the second exhaust pipe 24b and the second main fan 22b, and the second exhaust air valve 215b is installed in the second exhaust pipe 24b.
[0071] Specifically, the second fan base 21b is installed on top of the second storage chamber 12b, the second main fan 22b is a centrifugal fan, and the second circulating fan 25b is located in the second air inlet 211b. The second circulating fan 25b is connected to the second air supply duct area 122b. The second main fan 22b can draw gas from the second return air duct 1213b and blow it into the second exhaust duct 24b. The second heating wire 23b can heat the passing air. The second heating wire 23b is installed at the air inlet of the second air inlet duct 1211b to facilitate the entry of the hot air heated by the second heating wire 23b into the second air inlet duct 1211b. The gas in the second storage chamber 12b is discharged from the second exhaust duct 24b. When external circulation is achieved, the second exhaust valve 215b is opened, and the internal gas is discharged outward from the second exhaust duct 24b.
[0072] When the second exhaust valve 215b is open, the second isolation valve 214b is closed, the second circulating fan 25b is open, the second main fan 22b is open, and the second heating wire 23b is closed, external circulation is achieved in the second storage chamber 12b. By drawing in external cold air, the temperature inside the second storage chamber 12b can be gradually reduced. When the second exhaust valve 215b is closed, the second isolation valve 214b is open, the second circulating fan 25b is closed, the second main fan 22b is open, and the second heating wire 23b is open, internal circulation is achieved in the second storage chamber 12b. The gas inside the second storage chamber 12b circulates internally, which can gradually increase the temperature inside the second storage chamber 12b.
[0073] A one-way air inlet 251 is installed at the outlet of the second circulating fan 25b, allowing gas to enter only from the second air supply duct zone 122b towards the second heating element 213b. Cold air is drawn in through the external circulation to cool the second heating wire 23b. The one-way air inlet 251 prevents reverse gas flow. The cold air first passes through the second heating element 213b, preventing excessively cold gas from entering and causing damage to the internal structure.
[0074] The device includes a controller 4 and a power supply mechanism 5. The controller 4 is electrically connected to the first fan mechanism 2a and the second fan mechanism 2b, respectively. The power supply mechanism 5 is electrically connected to the controller 4 and can supply power to the product 300 loaded on the fixture 200. The controller 4 is installed outside the storage compartment 1 and transmits electrical signals to the internal mechanism via a wired connection. The storage compartment 1 is provided with a wire hole to facilitate the entry of the connecting wire into the storage compartment 1. In addition, the connecting wire of the power supply mechanism 5 supplies power to the product 300 on the fixture 200 through the wire hole and the wiring port 123 in the storage compartment 1. Furthermore, the power supply mechanism 5 is provided with an interface that connects to an external power source to obtain power.
[0075] As one embodiment, the first aging chamber 1212a and the second aging chamber 1212b are provided with cable routing ports 123. In the first aging chamber 1212a, the cable routing port 123 connects the first aging chamber 1212a with the first air supply duct area 122a. In the second aging chamber 1212b, the cable routing port 123 connects the second aging chamber 1212b with the second air supply duct area 122b. Multiple cable routing ports 123 are provided, with each fixture 200 corresponding to one cable routing port 123, allowing connecting cables to enter the first aging chamber 1212a or the second aging chamber 1212b and communicate with the internal fixture 200.
[0076] In addition, a fiberglass sealing plate is installed at the cable outlet 123 to block the cable outlet 123. Whether there is a connecting wire or not, the cross-sectional area of the cable outlet 123 can be reduced by the fiberglass sealing plate to prevent heat loss and achieve heat shielding in the aging chamber. In addition, small gaps after the cable are sealed with sealing mud to ensure no heat leakage.
[0077] As one embodiment, smoke sensors 124 are installed in the first return air duct 1213a and the second return air duct 1213b. The smoke sensors 124 can detect whether there is smoke in the storage area. When smoke is detected, an electrical signal is sent to the controller 4 to stop the operation.
[0078] In one embodiment, both the first storage mechanism 3a and the second storage mechanism 3b are provided with a support assembly 31 and a slide rail 32, the slide rail 32 being connected to the support assembly 31. The support assembly 31 is used to mount the fixture 200 and the product 300. An interface backplate 313 is provided on the support assembly 31, the interface backplate 313 matching the interface on the fixture 200, and the interface being plugged into the interface on the interface backplate 313. The slide rail 32 is used for mounting the fixture 200, and the fixture 200 is provided with a corresponding mechanism corresponding to the slide rail 32 to facilitate the movement of the fixture 200 on the slide rail 32. The operator can pull out the fixture 200.
[0079] The support assembly 31 includes multiple layers of supports, each layer of which can hold at least two fixtures 200. Correspondingly, each layer of supports can hold at least two sets of slide rails 32, and each set of slide rails 32 can hold one fixture 200. In addition, storage location QR codes are set on the supports, corresponding to the location of each set of slide rails 32. That is, each set of slide rails 32 has a storage location QR code. The storage location QR code is used to scan and bind with the product 300 and fixture 200, so as to match the test results with the corresponding product 300. The test results are sent to the backend server via the controller 4. The operator can intuitively obtain the test data of the corresponding product 300 through the server or controller 4 without having to obtain the test data one by one.
[0080] A wrench 311 and a rotating rod 312 are mounted on the support assembly 31. The wrench 311 is fixedly connected to the rotating rod 312, and the rotating rod 312 is rotatably connected to the support assembly. The wrench 311 allows the rotating rod 312 to rotate. A first lever 3111 and a second lever 3112 are mounted on the wrench 3111. A fixing member 201 is mounted on the edge of the fixture 200. When the fixture 200 is fully inserted into the slide rail 32, the fixing member 201 is positioned between the first lever 3111 and the second lever 3112. When the operator pulls the wrench 311, the wrench 311 and the rotating rod 312 rotate. The second lever 3112 pries the fixing member 201, causing the fixture 200 to be lifted. As the wrench 311 continues to rotate, the second lever 3112 pushes the fixture 200 from the rear, causing the fixture 200 to be pushed out of the slide rail 32 by the second lever 3112. The distance allows the operator to easily pull out the fixture 200. When the fixture 200 is pushed in along the slide rail 32, after the fixing member 201 contacts the second lever member 3112, the fixture 200 is pushed by the fixing member 201, causing the wrench 311 to rotate. After the fixture 200 is fully inserted, the fixture 200 is restricted by the first lever member 3111 and the second lever member 3112. The fixture 200 is in a preset position. The docking panel on the other side of the fixture 200 contacts the interface back plate 313 on the bracket assembly 31. The docking interface on the fixture 200 is inserted into the interface on the interface back plate 313.
[0081] The first storage mechanism 3a and the second storage mechanism 3b include ventilation plates 33. The ventilation plates 33 are installed on both sides of the support assembly 31 and between the support assembly 31 and the first air inlet pipe 1211a and the first air return pipe 1213a, so that air can pass through the ventilation plates 33, enter the support assembly 31 from the first air inlet pipe 1211a, and then enter the first air return pipe 1213a from the support assembly 31. Similarly, the ventilation plates 33 are installed between the support assembly 31 and the second air inlet pipe 1211b and the second air return pipe 1213b, so that air can pass through the ventilation plates 33, enter the support assembly 31 from the second air inlet pipe 1211b, and then enter the second air return pipe 1213b from the support assembly 31.
[0082] Optionally, a distribution plate 331 is provided on the ventilation plate 33. The distribution plate 331 is installed on the ventilation plate 33. The ventilation plate 33 is provided with a first ventilation hole, and the distribution plate 331 is provided with a second ventilation hole. By changing the position between the first ventilation hole and the second ventilation hole, the air inlet hole is changed, thereby adjusting the air inlet volume and regulating the heating rate in the first storage chamber 12a and the second storage chamber 12b.
[0083] In one embodiment, a temperature probe 34 is installed on each layer of the support to detect the temperature value of each layer. The temperature probe 34 is electrically connected to the controller 4, meaning that the controller 4 can acquire all the temperature probes 34. Through the temperature probes 34, the temperature of each storage compartment 1 and the temperature of the product 300 on each layer of the support can be directly determined, facilitating subsequent adjustments to the support, such as adjusting the air distribution plate 331, increasing the air intake of the air inlet pipe, and adjusting the heating temperature of the heating wire. When the temperature probe 34 detects that the internal temperature has reached the preset temperature value, the device can adjust the internal circulation to external circulation to prevent the temperature from exceeding the preset temperature value. The temperature probe 34 senses the current temperature value. If the temperature is lower than the preset temperature threshold, the internal circulation is activated to raise the temperature to the preset temperature threshold. If the temperature reaches or exceeds the preset temperature threshold, the external circulation is activated to lower the temperature and return it to the preset temperature threshold.
[0084] Specifically, during aging tests in storage compartment 1, the temperature is maintained between 80℃ and 100℃, and the temperature threshold can be set within this range.
[0085] In the above embodiments, the descriptions of each embodiment have different focuses. For parts that are not described in detail in a certain embodiment, please refer to the relevant descriptions in other embodiments.
[0086] In the description of this invention, it should be understood that the terms "center," "longitudinal," "lateral," "length," "width," "thickness," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "outer," "clockwise," and "counterclockwise," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this invention.
[0087] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this invention, "a plurality of" means two or more, unless otherwise explicitly specified.
[0088] In this invention, unless otherwise explicitly specified and limited, the terms "installation," "connection," "linking," and "fixing," etc., should be interpreted broadly. For example, they can refer to a connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this invention according to the specific circumstances.
[0089] In this invention, unless otherwise explicitly specified and limited, "above" or "below" the second feature can include direct contact between the first and second features, or contact between the first and second features through another feature between them. Furthermore, "above," "over," and "on top" of the second feature includes the first feature directly above or diagonally above the second feature, or simply indicates that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature includes the first feature directly below or diagonally below the second feature, or simply indicates that the first feature is at a lower horizontal level than the second feature.
[0090] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the invention. The illustrative expressions of the above terms in this specification should not be construed as necessarily referring to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. In addition, those skilled in the art can combine and integrate the different embodiments or examples described in this specification.
[0091] Obviously, those skilled in the art can make various modifications and variations to this invention without departing from its spirit and scope. Since these modifications and variations fall within the scope of the claims and their equivalents, this invention also intends to include these modifications and variations.
[0092] The above description describes specific embodiments of the present invention, but the scope of protection of the present invention is not limited thereto. Any person skilled in the art can easily conceive of various equivalent modifications or substitutions within the technical scope disclosed in the present invention, and these modifications or substitutions should all be covered within the scope of protection of the present invention. Therefore, the scope of protection of the present invention should be determined by the scope of the claims.
Claims
1. An aging device, characterized in that, It includes a storage compartment, a first fan mechanism, a second fan mechanism, a first storage mechanism, and a second storage mechanism; The storage compartment includes a partition plate, a first storage compartment and a second storage compartment, the first storage compartment and the second storage compartment are integrally formed, and the partition plate is installed between the first storage compartment and the second storage compartment; The first fan mechanism is connected to the first storage compartment, and the second fan mechanism is connected to the second storage compartment; The first storage unit is installed in the first storage compartment, and the second storage unit is installed in the second storage compartment.
2. The aging device according to claim 1, characterized in that, The first storage compartment includes a first storage area and a first air supply duct area, wherein the first storage area is connected to the first air supply duct area; The second storage compartment includes a second storage area and a second air supply duct area, and the second storage area is connected to the second air supply duct area.
3. The aging device according to claim 2, characterized in that, The first storage area includes a first air inlet pipe, a first aging chamber, and a first return air pipe. The first air inlet pipe and the first return air pipe are respectively provided on both sides of the first aging chamber. The first aging chamber is connected to the first air inlet pipe and the first return air pipe. The second storage area includes a second air inlet duct, a second aging chamber, and a second return air duct. The second air inlet duct and the second return air duct are respectively provided on both sides of the second aging chamber. The second aging chamber is connected to the second air inlet duct and the second return air duct.
4. The aging apparatus according to claim 3, characterized in that, The first aging chamber and the second aging chamber are provided with wiring ports; Within the first aging chamber, the wiring port connects the first aging chamber to the first air supply duct area; Inside the second aging chamber, the wiring port connects the second aging chamber to the second air supply duct area.
5. The aging device according to claim 2, characterized in that, The first fan mechanism includes a first fan base, a first main fan, a first heating wire, and a first exhaust pipe. The first fan base includes a first air inlet and a first fan section. The first air inlet and the first fan section are integrally formed. The first main fan, the first heating wire, and the first exhaust pipe are installed on the first fan section. The second fan mechanism includes a second fan base, a second main fan, a second heating wire, and a second exhaust pipe. The second fan base includes a second air inlet and a second fan section. The second air inlet and the second fan section are integrally formed. The second main fan, the second heating wire, and the second exhaust pipe are installed on the second fan section.
6. The aging apparatus according to claim 5, characterized in that, Inside the first fan section, gas passes sequentially through the first main fan, the first exhaust pipe, and the first heating wire. Inside the second fan section, gas passes sequentially through the second main fan, the second exhaust duct, and the second heating wire.
7. The aging apparatus according to claim 5, characterized in that, The first fan mechanism includes a first circulating fan, which is disposed in the first air inlet and is connected to the first air supply duct area; The second fan mechanism includes a second circulating fan, which is disposed in the second air inlet and is connected to the second air supply duct area.
8. The aging apparatus according to claim 6, characterized in that, The first fan unit is provided with a first hot air supply outlet and a first return air outlet. The first hot air supply outlet is connected to the first air inlet pipe, and the first return air outlet is connected to the first return air pipe. The second fan unit is provided with a second hot air supply outlet and a second return air outlet. The second hot air supply outlet is connected to the second air inlet pipe, and the second return air outlet is connected to the second return air pipe.
9. The aging apparatus according to claim 6, characterized in that, The first fan base includes a first heating element, which is disposed in the first fan unit, and the first heating wire is installed in the first heating element; The second fan base includes a second heating element, which is disposed in the second fan unit, and the second heating wire is installed inside the second heating element.
10. The aging apparatus according to claim 6, characterized in that, The first fan base includes a first isolation air valve and a first exhaust air valve. The first isolation air valve is installed between the first exhaust air pipe and the first main fan, and the first exhaust air valve is installed in the first exhaust air pipe. The second fan base includes a second isolation air valve and a second exhaust air valve. The second isolation air valve is installed between the second exhaust air pipe and the second main fan, and the second exhaust air valve is installed in the second exhaust air pipe.