Component aging test storage equipment

By designing the tilt structure of the placement frame and the placement plate with breathable and water permeability, the problem of insufficient stability and water permeability in the aging test of components is solved, and the surface drying and stable storage of components in the alternating experiment of high and low temperatures is achieved.

CN120440439APending Publication Date: 2025-08-08NUCLEAR POWER INSTITUTE OF CHINA
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Patent Information

Application Number
CN202510825953.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-19
Publication Date
2025-08-08

AI Technical Summary

Technical Problem

In the prior art, the components lack stability and water permeability during aging tests, resulting in components being prone to rust and damage during alternating high and low temperature experiments.

Method used

A component aging test storage device is designed, using a placement frame with breathable holes and water seepage holes, combined with the inclined design of the placement plate, to ensure the timely discharge of moisture and water vapor, and to use an open and closed placement space for enclosure and storage.

Benefits of technology

The surface drying of components in alternating aging experiments at high and low temperatures is achieved, avoiding rust and damage, and improving the stability of placement and operating comfort.

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Abstract

The invention discloses a component aging test storage device, and relates to the technical field of electronic equipment storage, the component aging test storage device comprises a main frame, the main frame is provided with a cavity with one side open, the cavity is used for placing a placing disc, and the placing disc can enter or exit towards the open side of the cavity; the placement assembly comprises at least one placement frame, the placement frame is used for being placed on the placement surface of the placement disc, and a placement space capable of being opened and closed is formed in the placement frame; air holes communicated with the placing space are formed in the peripheral side of the placing frame; a water seepage hole communicated with the placement space is formed in the bottom surface of the placement frame, and an outlet of the water seepage hole is suspended. A plurality of air holes are evenly distributed in the top face of the containing frame, and a plurality of water seepage holes are evenly distributed in the bottom face of the containing frame. By the adoption of the scheme, when components are stored in a closed mode, the stability and water permeability of placement of the components are guaranteed, and the components are prevented from rusting and even being damaged due to falling.
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Description

Technical Field

[0001] The present invention relates to the technical field of electronic equipment storage, and in particular to a component aging test storage device. Background Art

[0002] During the component aging test, there is currently no complete storage equipment to support the storage of electronic components for aging testing. Currently, there are two ways to store components. First, the aging test chamber does not have a placement device for tiny components. Aging tests can be performed by wrapping electronic components with A4 paper. During the aging test, water vapor is generated. Because paper is not waterproof and easily damaged, components leak out and fall into the bottom of the high and low temperature test chamber, causing damage after falling. Second, using medical trays to store components can prevent them from falling, but medical trays have no water leakage function. After high and low temperature or temperature cycling for too long, components are prone to rust and damage. Summary of the Invention

[0003] The present invention aims to solve the deficiencies of the prior art and to provide a component aging test storage device. By adopting this solution, the components can be stored in a sealed manner while ensuring the stability and water permeability of the component placement, thereby preventing the components from rusting or even being damaged due to falling.

[0004] The present invention is achieved through the following technical solutions: A component aging test storage device, comprising: A main frame, wherein the main frame has a chamber with an open side, wherein the chamber is used to place a placement tray, and the placement tray can enter or exit toward the open side of the chamber; A placement component, the placement component comprising at least one placement frame, the placement frame being used to be placed on the placement surface of the placement tray, and the placement frame having an openable and closable placement space therein; The placement frame is provided with air holes on its periphery and communicated with the placement space; the placement frame is provided with water seepage holes on its bottom surface and communicated with the placement space, and the outlets of the water seepage holes are suspended in the air.

[0005] Compared with the existing technology, in which water vapor is generated during the aging test, which easily causes components to rust and cause damage, the present invention provides a component aging test storage device. By adopting this solution, while the components are sealed and stored, the stability and water permeability of the component placement are guaranteed, and the components are prevented from rusting or even being damaged due to falling. In the specific solution, it includes a main frame, which is formed by bending sheet metal and is used as the main load-bearing component for placing a number of components; a chamber is provided at the placement station of the main frame, and a placement tray can be placed from the chamber; the placement tray has a placement surface, and a placement component can be placed on the placement surface. The placement component includes at least one placement frame, and the placement frame has an openable and closable placement space, so that the components can be placed in the placement space, and then the placement space can be closed to seal and store the components, avoid contact with external factors, and improve the stability of component placement; when the components are undergoing aging experiments, the components will be placed in the placement space of the placement frame Because the bottom surface of the placement frame has a seepage hole connected to the placement space, and the outlet is suspended and unobstructed, when conducting high-low temperature alternating aging tests, if condensation occurs, the water will be promptly discharged from the seepage hole. The placement frame also has ventilation holes on the sides connected to the placement space. In this way, when conducting high-low temperature alternating aging tests, the water vapor generated can also be promptly discharged from the ventilation holes. Therefore, the timely drainage of the seepage holes and the timely exhaust of the ventilation holes can be used together to ensure that the moisture in the placement frame is quickly removed, ensuring that the surface of the components is dry during the high-low temperature alternating aging test and preventing rusting of the components. The aperture of the seepage hole can be adjusted as needed, and the aperture is always smaller than the minimum external dimension of the test device.

[0006] The above scheme is intended to achieve: the component aging test storage equipment provided by the present invention is mainly used in aging test equipment. When conducting high and low temperature alternating aging tests, water will be promptly discharged from the water seepage holes, and the generated water vapor can also be promptly discharged from the air vents, ensuring that the surface of the components is dry during the high and low temperature alternating aging tests and preventing the components from rusting. Secondly, the placement frame is provided with an openable and closable placement space, so that the components can be placed in the placement space and then the placement space can be closed to store the components in a sealed manner, avoiding contact with external factors and improving the stability of the component placement.

[0007] As a further optimization, to improve water seepage and ventilation efficiency, the top surface of the placement frame is evenly distributed with a plurality of ventilation holes, and the bottom surface of the placement frame is evenly distributed with a plurality of water seepage holes. In this solution, to improve ventilation efficiency, it is preferred that the plurality of ventilation holes are evenly distributed on the top surface of the placement frame and arranged in an array; similarly, the plurality of water seepage holes are evenly distributed on the bottom surface of the placement frame to fully drain the internal condensation.

[0008] A further optimization is to elevate the placement frame to expose the drainage holes on its bottom surface. Each of the four corners of the placement frame has foot supports. In this solution, the foot supports at the four corners can elevate the entire bottom of the placement frame, allowing water that leaks through the drainage holes to fall onto the placement tray and drain from it.

[0009] Further optimization, in order to realize the opening and closing of the placement space inside the placement frame, the top surface of the placement frame is a cover plate, one end of the cover plate is hinged to the placement frame, and the cover plate is hingedly rotated to open or close the placement space.

[0010] Further optimization is carried out. In order to meet the requirement of simultaneous aging tests for components from different batches, the placement assembly is composed of several placement frames, and the several placement frames include at least one large frame, at least one medium frame, and at least one small frame. The circumferential size of the placement assembly is adapted to the size of the placement tray. In this solution, the placement assembly includes several placement frames, and the side walls of the placement frames are provided with snap fasteners for splicing to achieve seamless splicing. Since the sizes of components from different batches are different, in order to make the storage of components more stable, the placement assembly includes several placement frames including at least one large frame, at least one medium frame, and at least one small frame, which are spliced together. In this way, components of different sizes can be stored. This solution also precisely designs the size of the placement frame. The shape of the spliced placement assembly is a rectangle, and the placement surface of the placement tray is also a rectangle of the same size to avoid wasting space. Therefore, the requirement of simultaneous aging tests for components from different batches can be met, and the efficiency of component aging tests is improved. Furthermore, the depth of the large frame in the placement assembly, facing the interior of the chamber, is the same as the depth of the placement surface on the placement tray. The depth of all placement frame models is double the width. The depth of a large frame is twice its width, while the width of a medium frame is the same as the width of the large frame and half its depth. Therefore, two medium frames stacked front to back have the same dimensions as a large frame. The depth of a small frame is the same as the depth of a medium frame and half its width. Therefore, two small frames stacked side by side have the same dimensions as a medium frame, and four small frames stacked side by side have the same dimensions as a large frame. Therefore, the three placement frame models can be freely combined.

[0011] A further optimization involves draining condensate from the placement tray, which is tilted downward toward the chamber interior. In this embodiment, when the placement tray is located within the main frame's internal chamber, it is tilted downward toward the chamber interior, preferably at a 5° downward angle. This allows condensate from the seepage holes to fall onto the placement tray and flow from the tilted placement tray to the rear for drainage. Furthermore, when the placement frame is placed on the tilted placement tray, its own gravity prevents it from falling outward, improving its storage stability.

[0012] A further optimization involves a retaining device on the side of the placement tray facing the interior of the chamber to support the placement frame. This retaining device is used to block the placement assembly. In this solution, the placement tray is generally plate-shaped and can be formed from a single bent steel plate, ensuring that water does not leak out of the placement tray during use. The retaining device can be a baffle that extends upward and perpendicular to the placement surface of the placement tray. This allows the placement frame to rest against the retaining device under its own weight, ensuring stable storage while leaving space for drainage at the rear.

[0013] As a further optimization, to drain moisture from the main frame, the placement tray is equipped with a water channel on the side facing the chamber. In this solution, the placement tray is generally plate-shaped, and the water channel is located at the rear of the placement tray and extends along its length. This allows moisture on the placement tray to flow into the water channel due to its own gravity at a certain tilt angle, eventually flowing out of the water channel at both ends and draining to the exterior of the entire aging test rack, ensuring the surface of the components is dry and preventing condensation from falling onto the placement tray below, thereby affecting the storage of components below.

[0014] Further optimization is needed to facilitate the placement and removal of trays. Guide rails are provided on both sides of the chamber, each with a guide groove. Sliders are provided on either side of the tray, slidably connected to the guide grooves. In this solution, the guide rails are welded to both sides of the chamber within the main frame and are tilted downward. The guide rails have guide grooves along their length, while slides or rollers are provided on either side of the tray. This allows the tray to slide along the guide grooves, improving stability during placement and removal.

[0015] As a further optimization, to improve the efficiency of component aging testing, the main frame is provided with a plurality of chambers on one side, each of which can accommodate the placement tray. The chambers are preferably arranged in sequence from top to bottom to facilitate the classified storage of components from different batches.

[0016] As a further optimization, in order to improve the convenience of disassembling and assembling the placement tray, the placement tray is provided with a handle on the side facing the interior of the chamber.

[0017] As a further optimization, to reduce the handle temperature when removing the tray, the handle is made of wood. In this solution, the handle (made of wood) is connected to the placement surface of the tray with self-tapping screws. Because wood has low thermal conductivity and a higher specific heat capacity than metal, it has a lower temperature rise when absorbing the same amount of heat. Therefore, when removing the device, pulling the handle will reduce the heat sensation, thereby improving operating comfort.

[0018] Compared with the prior art, the present invention has the following advantages and beneficial effects: 1. The present invention provides a component aging test storage device, which is mainly used in aging test equipment. When conducting high-low temperature alternating aging tests, water will be promptly discharged from the water seepage holes, and the generated water vapor can also be promptly discharged from the air vents, ensuring that the surface of the components is dry during the high-low temperature alternating aging test and preventing the components from rusting. Secondly, the placement frame has an openable and closable placement space, so that the components can be placed in the placement space and then the placement space can be closed to store the components in a sealed manner, avoiding contact with external factors and improving the stability of the component placement. 2. The present invention provides a component aging test storage device that ensures the feasibility and safety of component storage: It features three sizes of storage frames: large, medium, and small, enabling storage of components of varying sizes. Furthermore, it features frame covers that fit these sizes, further ensuring safety during component handling. 3. The present invention provides a component aging test storage device that ensures component dryness: Each layer of the component placement tray is installed at a certain angle. The tray is also equipped with a water channel that, in conjunction with the water seepage holes in the placement frame, ensures water permeability and keeps the components dry. 4. The present invention provides a component aging test storage device that improves operator comfort: The placement plate is equipped with handles made of non-thermal conductive material, which prevents burns caused by operators handling the device after high-temperature component testing, ensuring comfortable operation. 5. The present invention provides a component aging test storage device, which is processed by sheet metal welding, and the size of the water seepage holes in the placement frame is rigorously designed; 6. The present invention provides a component aging test storage device, which improves the efficiency of component aging test: the present invention accurately designs the size of the placement frame, which can meet the needs of simultaneous aging tests of components in different batches, thereby improving the efficiency of component aging test. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] In order to more clearly illustrate the technical solutions of the exemplary embodiments of the present invention, the following briefly introduces the drawings required for use in the examples. It should be understood that the following drawings only illustrate certain embodiments of the present invention and should not be considered as limiting the scope. A person of ordinary skill in the art can also derive other relevant drawings based on these drawings without inventive effort. In the drawings: Figure 1 This is a schematic diagram of the overall structure of the component aging test storage equipment provided by the present invention; Figure 2 A schematic diagram of the front side cooperation between the placement tray and the placement frame provided by the present invention; Figure 3 A schematic diagram of the rear side cooperation between the placement tray and the placement frame provided by the present invention; Figure 4 A schematic diagram of the cooperation between the placement tray and the main frame provided by the present invention; Figure 5 This is a structural diagram of the placement frame provided by the present invention.

[0020] Markings and corresponding parts names in the accompanying drawings: 1-main frame, 101-guide rail, 2-placement frame, 2L-large frame, 2M-medium frame, 2S-small frame, 201-foot support, 202-cover, 203-air vent, 204-water seepage hole, 205-placement space, 3-placement tray, 301-water trough, 302-handle, 303-placement surface, 304-retraction device, 4-guide groove. DETAILED DESCRIPTION

[0021] In the following description, numerous specific details are set forth to provide a thorough understanding of the present invention. However, it will be apparent to one skilled in the art that these specific details are not necessarily required to practice the present invention. In other embodiments, well-known structures, circuits, materials, or methods are not described in detail to avoid obscuring the present invention.

[0022] Throughout this specification, references to "one embodiment," "an embodiment," "an example," or "an example" mean that a particular feature, structure, or characteristic described in connection with the embodiment or example is included in at least one embodiment of the present invention. Therefore, appearances of the phrases "one embodiment," "an embodiment," "an example," or "an example" in various places throughout this specification are not necessarily all referring to the same embodiment or example. Furthermore, the particular features, structures, or characteristics may be combined in one or more embodiments or examples in any suitable combinations and / or subcombinations. Furthermore, it will be understood by those of ordinary skill in the art that the figures provided herein are for illustrative purposes only and are not necessarily drawn to scale. As used herein, the term "and / or" includes any and all combinations of one or more of the associated listed items.

[0023] In the description of the present invention, the terms "front", "rear", "left", "right", "up", "down", "vertical", "horizontal", "high", "low", "inside", "outside" and the like indicate directions or positional relationships based on the directions or positional relationships shown in the accompanying drawings. They are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific direction, be constructed and operated in a specific direction. Therefore, they should not be understood as limiting the scope of protection of the present invention.

[0024] In order to make the objectives, technical solutions and advantages of the present invention more clearly understood, the present invention is further described in detail below in conjunction with examples and drawings. The exemplary embodiments of the present invention and their descriptions are only used to explain the present invention and are not intended to limit the present invention.

[0025] Example 1: This example 1 provides a component aging test storage device, such as Figure 1 and Figure 5 Shown, including: A main frame 1, wherein the main frame 1 has a chamber with an open side, wherein the chamber is used to place a placement tray 3, and the placement tray 3 can enter or exit the chamber toward the open side; A placement component, comprising at least one placement frame 2, the placement frame 2 being used to be placed on the placement surface 303 of the placement tray 3, and having an openable and closable placement space 205 therein; The placement frame 2 has ventilation holes 203 on its periphery that are connected to the placement space 205 ; the placement frame 2 has water seepage holes 204 on its bottom surface that are connected to the placement space 205 , and the outlet of the water seepage hole 204 is suspended in the air.

[0026] Compared with the existing technology, in which water vapor is generated during the aging test, which easily causes components to rust and cause damage, the present invention provides a component aging test storage device. By adopting this solution, while the components are sealed and stored, the stability and water permeability of the component placement are guaranteed, and the components are prevented from rusting or even being damaged due to falling. In the specific solution, it includes a main frame 1, which is formed by sheet metal bending and is used as the main load-bearing component for placing a number of components; a chamber is provided at the placement station of the main frame 1, and a placement tray 3 can be placed from the chamber; the placement tray 3 has a placement surface 303, and a placement component can be placed on the placement surface 303. The placement component includes at least one placement frame 2, and the placement frame 2 has an openable and closable placement space 205. In this way, the components can be placed in the placement space 205, and then the placement space 205 can be closed to seal the components for storage, avoid contact with external factors, and improve the stability of component placement; when the components undergo aging tests, the components will be placed in the placement space 205 of the placement frame 2. Because the bottom surface of the placement frame 2 is provided with a seepage hole 204 connected to the placement space 205, and the outlet is suspended and unobstructed, when conducting a high-low temperature alternating aging test, if condensation occurs, the water will be promptly discharged from the seepage hole 204. The surrounding side of the placement frame 2 is also provided with a ventilation hole 203 connected to the placement space 205. In this way, when conducting a high-low temperature alternating aging test, the generated water vapor can also be promptly discharged from the ventilation hole 203. Therefore, the timely drainage of the seepage hole 204 and the timely exhaust of the ventilation hole 203, combined with the timely use of the two, can ensure that the moisture in the placement frame 2 is quickly removed, ensuring that the surface of the components is dry during the high-low temperature alternating aging test, and preventing the components from rusting. The aperture of the seepage hole 204 can be adjusted as needed, and the aperture is always smaller than the minimum outer dimension of the test device.

[0027] The above scheme is intended to achieve: the component aging test storage equipment provided by the present invention is mainly used in aging test equipment. When conducting high and low temperature alternating aging tests, water will be promptly discharged from the water seepage hole 204, and the generated water vapor can also be promptly discharged from the air vent 203, ensuring that the surface of the components is dry during the high and low temperature alternating aging test and preventing the components from rusting. Secondly, the placement frame 2 is provided with an openable and closable placement space 205. In this way, the components can be placed in the placement space 205 and then closed to seal the components for storage, avoid contact with external factors, and improve the stability of the component placement.

[0028] In this embodiment, to improve water seepage and ventilation efficiency, the top surface of the placement frame 2 is evenly distributed with a plurality of ventilation holes 203, and the bottom surface of the placement frame 2 is evenly distributed with a plurality of water seepage holes 204. In this embodiment, to improve ventilation efficiency, the plurality of ventilation holes 203 are preferably evenly distributed on the top surface of the placement frame 2 in an array arrangement; similarly, the plurality of water seepage holes 204 are evenly distributed on the bottom surface of the placement frame 2 to fully drain the internal condensed water.

[0029] In this embodiment, to elevate the placement frame 2 and expose the drainage holes 204 on its bottom surface, the placement frame 2 is provided with foot supports 201 at each of its four corners. In this embodiment, the foot supports 201 at the four corners elevate the entire bottom surface of the placement frame 2, allowing water that leaks through the drainage holes 204 to fall onto the placement tray 3 and drain from it.

[0030] In this embodiment, in order to realize the opening and closing of the placement space 205 inside the placement frame 2, the top surface of the placement frame 2 is a cover plate 202, one end of the cover plate 202 is hinged to the placement frame 2, and the cover plate 202 is hingedly rotated to open or close the placement space 205.

[0031] Example 2: This example 2 is further optimized based on example 1. Figure 3 As shown, a storage method for components of different sizes in different batches is provided.

[0032] In this embodiment, in order to meet the requirement of simultaneously conducting aging experiments on components from different batches, the placement assembly is composed of several placement frames 2, and the several placement frames 2 include at least one large frame 2L, at least one medium frame 2M and at least one small frame 2S; the circumferential size of the placement assembly is adapted to the size of the placement tray 3. In this solution, the placement assembly includes several placement frames 2, the side walls of which are equipped with snap-fitting fasteners for seamless splicing. Because components from different batches vary in size, to ensure more stable storage, the placement assembly includes several placement frames 2, including at least one large frame 2L, at least one medium frame 2M, and at least one small frame 2S, which can be spliced together to accommodate components of varying sizes. This solution also precisely designs the dimensions of the placement frames 2. The assembled placement assembly forms a rectangular shape, and the placement surface 303 of the placement tray 3 is also a rectangular shape of matching dimensions, eliminating wasted space. This allows for simultaneous aging testing of components from different batches, improving the efficiency of component aging testing. Furthermore, the depth of the large frame 2L in the placement assembly, facing the chamber interior, is the same as the depth of the placement surface 303 on the placement tray 3. All placement frames 2 have a depth twice their width. The depth of the large 2L frame is twice its width. The width of the medium 2M frame is the same as the width of the large 2L frame, and the depth is half that of the large 2L frame. Therefore, two medium 2M frames stacked front to back have the same size as a large 2L frame. The depth of the small 2S frame is the same as the depth of the medium 2M frame, and the width is half that of the medium 2M frame. Therefore, two small 2S frames stacked side by side have the same size as a medium 2M frame. Four small 2S frames stacked side by side have the same size as a large 2M frame. Therefore, the three sizes of placement frames 2 can be freely combined.

[0033] Example 3: This example 3 is further optimized based on example 1 or example 2. Figure 2 As shown, a drainage implementation is provided.

[0034] In this embodiment, to drain condensate from the placement tray 3, the placement tray 3 is tilted downward toward the interior of the chamber. When the placement tray 3 is located within the interior chamber of the main frame 1, it is tilted downward toward the interior of the chamber, preferably at a 5° downward angle. This allows condensate from the seepage holes 204 to fall onto the placement tray 3 and flow from the tilted placement tray 3 to the rear, where it can be drained. Furthermore, when the placement frame 2 is placed on the tilted placement tray 3, its own gravity prevents it from falling outward, thereby improving its storage stability.

[0035] In this embodiment, to support the placement frame 2, the placement tray 3 has a retaining device 304 on the side facing the interior of the chamber. This retaining device 304 is used to block the placement assembly. In this solution, the placement tray 3 is generally plate-shaped and can be formed from a single steel plate by bending. This ensures that water does not leak out of the placement tray 3 during use. The retaining device 304 can be a baffle that is perpendicular to the placement surface 303 of the placement tray 3 and extends upward. In this way, the placement frame 2 rests against the retaining device 304 under the action of its own weight, ensuring stable storage of the placement frame 2 while leaving space for drainage at the rear.

[0036] In this embodiment, to drain moisture from the main frame 1, the placement tray 3 is further provided with a water trough 301 on the side facing the interior of the chamber. In this solution, the placement tray 3 is generally plate-shaped, and the water trough 301 is located at the rear of the placement tray 3 and extends along its length. This allows moisture on the placement tray 3 to flow into the water trough 301 due to its own gravity, ultimately flowing out from both ends of the water trough 301 and out of the entire aging test rack, ensuring that the surface of the components is dry and preventing condensation from falling onto the placement tray 3 below, thereby affecting the storage of components below.

[0037] Example 4: This example 4 is further optimized based on the above example. Figure 4 As shown, a matching method of the placement tray 3 and the main frame 1 and a setting method of the handle 302 are provided.

[0038] In this embodiment, to facilitate the placement and removal of the placement tray 3, guide rails 101 are provided on both sides of the chamber. These guide rails 101 have guide grooves 4, and slide bars are provided on both sides of the placement tray 3, which are slidably connected to the guide grooves 4. In this embodiment, the guide rails 101 are welded to both sides of the chamber within the main frame 1 and have a downwardly inclined angle. The guide rails 101 have guide grooves 4 along their length, while slide bars or rollers are provided on both sides of the placement tray 3. This allows the placement tray 3 to slide along the guide grooves 4, improving stability during placement and removal.

[0039] In this embodiment, in order to improve the efficiency of the component aging test, a plurality of chambers are arranged on one side of the main frame 1, each of which can accommodate the placement tray 3. Among them, the plurality of chambers are preferably arranged in sequence from top to bottom to facilitate the classified storage of components of different batches.

[0040] In this embodiment, in order to improve the convenience of disassembling and assembling the placement tray 3, the placement tray 3 has a handle 302 on the side facing the interior of the chamber.

[0041] In this embodiment, to reduce the temperature of the handle 302 when removing the placement tray 3, the handle 302 is made of wood. In this solution, the handle 302 (made of wood) is connected to the placement surface 303 of the placement tray 3 using self-tapping screws. Because wood has low thermal conductivity and a higher specific heat capacity than metal, it experiences a lower temperature rise when absorbing the same amount of heat. Therefore, when removing a device, pulling the handle 302 reduces the heat sensation, thereby improving operating comfort.

[0042] In summary, the component aging test storage equipment provided by the above scheme is mainly used in aging test equipment. When conducting high and low temperature alternating aging tests, water will be discharged in time from the water seepage hole 204, and the generated water vapor can also be discharged in time from the air vent 203, ensuring that the surface of the components is dry during the high and low temperature alternating aging tests, and preventing the components from rusting. Secondly, the placement frame 2 is provided with an openable and closable placement space 205, so that the components can be placed in the placement space 205, and then the placement space 205 can be closed to seal the components for storage, avoid contact with external factors, and improve the stability of component placement. And because the placement tray 3 has a certain inclination angle, the placement frame 2 is provided with a foot support 201, and water will flow into the placement tray 3 water trough 301 at the rear end of the placement tray 3 due to gravity, and then be discharged from the outside of the entire aging test frame through both ends to ensure that the surface of the device is dry.

[0043] The specific implementation methods described above further illustrate the objectives, technical solutions and beneficial effects of the present invention in detail. It should be understood that the above description is only a specific implementation method of the present invention and is not intended to limit the scope of protection of the present invention. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.

Claims

1. A component aging test storage device, characterized in that: include: A main frame (1), wherein the main frame (1) is provided with a chamber with one side open, wherein the chamber is used to accommodate a placement tray (3), and the placement tray (3) can enter or exit toward the open side of the chamber; A placement component, the placement component comprising at least one placement frame (2), the placement frame (2) being used for being placed on the placement surface (303) of the placement tray (3), and the placement frame (2) having an openable and closable placement space (205); The placement frame (2) has ventilation holes (203) on its periphery, which are in communication with the placement space. The bottom surface of the placement frame (2) has water seepage holes (204) in communication with the placement space, and the outlet of the water seepage hole (204) is suspended in the air.

2. The component aging test storage equipment according to claim 1, characterized in that: The top surface of the placement frame (2) is evenly distributed with a plurality of air holes (203), and the bottom surface of the placement frame (2) is evenly distributed with a plurality of water seepage holes (204).

3. The component aging test storage equipment according to claim 1, characterized in that: The four corners of the bottom surface of the placement frame (2) are all provided with foot supports (201).

4. The component aging test storage equipment according to claim 1, characterized in that: The top surface of the placement frame (2) is a cover plate (202), one end of the cover plate (202) is hinged to the placement frame (2), and the cover plate (202) is hingedly rotated to open or close the placement space.

5. A component aging test storage device according to any one of claims 1 to 4, characterized in that: The placement assembly is formed by splicing together a plurality of the placement frames (2), and the plurality of the placement frames (2) include at least one large frame (2L), at least one medium frame (2M) and at least one small frame (2S); the circumferential size of the placement assembly is adapted to the size of the placement tray (3).

6. A component aging test storage device according to any one of claims 1 to 4, characterized in that: The placement plate (3) is tilted downwardly toward one side of the interior of the chamber.

7. The component aging test storage equipment according to claim 6, characterized in that: The side of the placement plate (3) facing the interior of the chamber is provided with a stop device (304), and the stop device (304) is used to block the placement component.

8. The component aging test storage equipment according to claim 6, characterized in that: The side of the placement tray (3) facing the interior of the chamber is also provided with a water trough (301).

9. The component aging test storage equipment according to any one of claims 1 to 4, characterized in that: Both sides of the chamber are provided with guide rails (101), the guide rails (101) are provided with guide grooves (4), and both sides of the placement plate (3) are provided with slide bars slidably connected to the guide grooves (4).

10. The component aging test storage equipment according to any one of claims 1 to 4, characterized in that: A plurality of chambers are distributed on one side of the main frame (1), and each chamber can accommodate the placement tray (3).

11. The component aging test storage equipment according to any one of claims 1 to 4, characterized in that: The placement tray (3) has a handle (302) on one side facing the interior of the chamber.

12. The component aging test storage equipment according to claim 11, characterized in that: The handle (302) is made of wood.

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