SSD (Solid State Disk) multi-block disk temperature synchronous testing device
By introducing push-stop and self-locking components into the SSD solid-state drive high and low temperature aging test cabinet, the problem of disk slippage and displacement was solved, the disk was stably positioned, and the stability of the test and the safety of the equipment were ensured.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- LUANQI TECH (SUZHOU) CO LTD
- Filing Date
- 2025-05-14
- Publication Date
- 2026-04-14
AI Technical Summary
The existing SSD solid-state drive high and low temperature aging test cabinets use a sliding pull-out design for the placement trays inside the cabinet, which makes the trays prone to sliding and shifting, affecting test stability and potentially damaging the equipment.
A multi-disk temperature synchronization testing device for SSDs was designed, comprising a push-block component, a fixing device, a self-locking component, and a control component. The push-block component and the fixing device work together to securely position the placed disks using baffles and self-locking components, preventing slippage.
This effectively prevents the placement tray from sliding or shifting during testing, ensuring testing stability and equipment safety, and preventing damage.
Smart Images

Figure CN224123130U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the technical field of temperature synchronization testing devices, and in particular relates to a temperature synchronization testing device for multiple SSD disks. Background Technology
[0002] SSD multi-disk temperature synchronization testing devices are professional testing equipment designed to ensure the stable operation of SSDs under various environmental temperatures. These devices typically integrate multiple functional modules such as temperature control, data monitoring, and hard drive testing, enabling simultaneous testing of the temperature performance of multiple SSDs. Common SSD multi-disk temperature synchronization testing devices include SSD hard drive testing units, testing modules, and SSD high and low temperature aging test chambers. Among these, the SSD high and low temperature aging test chamber is a high-precision testing device specifically designed for SSDs. It can perform long-term aging tests on SSDs under extreme temperature conditions to evaluate their performance and stability under different environmental temperatures. This test chamber is usually equipped with an advanced temperature control system and data acquisition system, which can precisely control the temperature inside the chamber and collect SSD performance data in real time during the test. By simulating high and low temperature environments, it can detect the operation of SSDs under extreme conditions, thereby screening out defective or unstable products and ensuring that the performance parameters of the SSDs leaving the factory meet industry requirements. The SSD high and low temperature aging test chamber also has advantages such as ease of operation, safety and reliability, and convenient maintenance, making it an indispensable tool in the field of SSD R&D and quality control.
[0003] The first quote states that the problem with existing technology is that the SSD high and low temperature aging test cabinets typically use a sliding pull-out design for the placement disks inside the cabinet. This makes it difficult to properly fix the placement disks during testing, leading to instability and potential damage to the testing equipment. Utility Model Content
[0004] To address the problems existing in the prior art, this utility model provides a multi-disk temperature synchronization testing device for SSDs. It has the advantage of stabilizing and positioning the disks inside the high and low temperature aging test cabinet for SSDs, preventing them from sliding and affecting the test. This solves the problem that in existing high and low temperature aging test cabinets for SSDs, the disks are usually sliding and pull-out inside the cabinet. This makes it difficult to fix the disks during testing, which can lead to the disks sliding and shifting, causing instability and damaging the test equipment.
[0005] This utility model is implemented as follows: an SSD multi-disk temperature synchronous testing device includes a cabinet, a cabinet door, and placement trays. The cabinet door is located at the front end of the cabinet and is rotatably connected to the cabinet. The number of placement trays is several, and they are evenly arranged inside the cabinet and are movably connected to the cabinet. Push-block components are provided on the left and right sides of the front end of the cabinet. Fixing devices are provided at the rear of the upper and lower ends of the two push-block components, and the fixing devices are fixedly connected to the cabinet.
[0006] The preferred push-block assembly of this utility model includes a rotating seat, a fixed rod, and a baffle. There are two rotating seats, which are respectively fixedly connected to the upper and lower ends of the right surface inside the cabinet. The fixed rod is disposed between the two rotating seats, and its upper and lower ends are respectively fixedly connected to the two rotating seats. The baffle is sleeved on the surface of the fixed rod and is rotatably connected to the fixed rod. By setting the push-block assembly, it is used to cooperate with the fixing device to position and stabilize the placement tray. It has the function of blocking the two sides of the front end of the placement tray to prevent the placement tray from sliding and to prevent the placement tray from accidentally sliding out of the cabinet.
[0007] The preferred fixing device of this utility model includes a box body, a self-locking component, and a control component. The box body is located behind the baffle and is fixedly connected to the left inner surface of the cabinet. The self-locking component is located at the front end inside the box body, and the control component is located behind the self-locking component. By setting the fixing device, the baffle is positioned and fixed. When the baffle rotates to block the placement tray, the baffle is fixed, thereby stabilizing the placement tray.
[0008] The preferred self-locking assembly of this utility model includes a positioning rod, a gear, a locking head, and a torsion spring. The positioning rod is located at the front end of the box body, and its left and right ends are fixedly connected to the left and right sides of the box body, respectively. The gear is sleeved on the surface of the positioning rod and rotatably connected to the positioning rod. The locking head is fixedly connected to the front side of the gear. There are two torsion springs, which are respectively sleeved on the left and right ends of the positioning rod. The ends of the two torsion springs that are close to each other are fixedly connected to the left and right sides of the gear, and the ends that are far apart from each other are fixedly connected to the left and right sides of the box body, respectively. By setting the self-locking assembly, it is used to lock the baffle with the connector fixedly connected to the rear surface of the baffle, so that when the baffle rotates backward to block the placement tray, the baffle is fixed by the connector.
[0009] As a preferred embodiment of this invention, a limiting block is provided directly below the card head. The limiting block is fixedly connected to the lower surface of the inner part of the box. By providing a limiting block directly below the card head, the rotation position of the card head is restricted, so that the initial position of the card head can cooperate with the connector.
[0010] The preferred control component of this utility model includes a slide bar, a rack, a spring, and a pull button. Two slide bars are respectively located on the left and right sides of the rear end of the box. The upper and lower ends of the two slide bars are fixedly connected to the upper and lower surfaces of the box interior, respectively. The rack is sleeved on the upper surface of the two slide bars and slidably connected to them. The rack meshes with a gear. The pull button is fixedly connected to the right surface of the rack, with its right end extending out of the box and slidably connected to it. Two springs are respectively sleeved on the lower surface of the two slide bars. The upper and lower ends of the two springs are fixedly connected to the lower surface of the rack and the lower surface of the box interior, respectively. This control component drives the self-locking component, enabling the control latch to rotate and release the locking mechanism of the connector when the placement tray is released, facilitating the subsequent removal of the placement tray from both ends.
[0011] As a preferred embodiment of this utility model, both the upper and lower ends of the rear surface of the baffle are fixedly connected with connectors. The positions of the two connectors correspond to the positions of the two fixing devices on one side. By providing connectors at both the upper and lower ends of the rear surface of the baffle to cooperate with the two self-locking components, the baffle can be fixed in place by cooperating with the self-locking components when the baffle rotates to block and position the placement plate.
[0012] 1. This utility model solves the problem of existing SSD solid-state drive high and low temperature aging test cabinets, where the placement tray is usually a sliding pull-out type inside the cabinet. This makes it difficult to fix the placement tray properly during testing, which can lead to slippage and instability, affecting the testing equipment. The cabinet body, cabinet door, placement tray, push-block assembly, rotating seat, fixing rod, baffle, fixing device, box body, self-locking assembly, positioning rod, gear, chuck, torsion spring, control assembly, slide rod, rack, spring, pull button, limit block and connector are used in combination.
[0013] 2. This utility model uses a push-block component to work with a fixing device to position and stabilize the placement tray. It has the function of blocking the two sides of the front end of the placement tray to prevent the placement tray from sliding and to prevent the placement tray from accidentally sliding out of the cabinet. Attached Figure Description
[0014] Figure 1 This is a three-dimensional structural diagram of the SSD solid-state drive high and low temperature aging test cabinet provided in this embodiment of the utility model;
[0015] Figure 2 This is a three-dimensional structural diagram of the connector in the high and low temperature aging test cabinet for SSD solid-state drives provided by this utility model embodiment;
[0016] Figure 3 This is a three-dimensional structural diagram of the push-block assembly in the high and low temperature aging test cabinet for SSD solid-state drives provided by this utility model embodiment;
[0017] Figure 4 This is a three-dimensional structural diagram of the self-locking component and control component in the high and low temperature aging test cabinet for SSD solid-state drives provided by this utility model embodiment.
[0018] In the diagram: 1. Cabinet body; 2. Cabinet door; 3. Placement tray; 4. Push-block assembly; 41. Rotating seat; 42. Fixing rod; 43. Baffle; 5. Fixing device; 51. Box body; 52. Self-locking assembly; 521. Positioning rod; 522. Gear; 523. Clip; 524. Torsion spring; 53. Control assembly; 531. Slide rod; 532. Rack; 533. Spring; 534. Pull button; 6. Limit block; 7. Connector. Detailed Implementation
[0019] To further understand the invention content, features and effects of this utility model, the following embodiments are provided, and detailed descriptions are given in conjunction with the accompanying drawings.
[0020] The structure of this utility model will now be described in detail with reference to the accompanying drawings.
[0021] like Figures 1 to 4 As shown in the figure, the SSD multi-disk temperature synchronous testing device provided by this utility model includes a cabinet 1, a cabinet door 2 and a placement tray 3. The cabinet door 2 is located at the front end of the cabinet 1 and is rotatably connected to the cabinet 1. The number of placement trays 3 is several, and they are evenly arranged inside the cabinet 1 and are movably connected to the cabinet 1. Push-block components 4 are provided on the left and right sides of the front end of the cabinet 1. Fixing devices 5 are provided at the rear of the upper and lower ends of the two push-block components 4. The fixing devices 5 are fixedly connected to the cabinet 1.
[0022] refer to Figure 1 , Figure 2 and Figure 3 The push-block assembly 4 includes a rotating seat 41, a fixed rod 42, and a baffle 43. There are two rotating seats 41, which are fixedly connected to the upper and lower ends of the right surface inside the cabinet 1, respectively. The fixed rod 42 is disposed between the two rotating seats 41, and its upper and lower ends are fixedly connected to the two rotating seats 41, respectively. The baffle 43 is sleeved on the surface of the fixed rod 42 and is rotatably connected to the fixed rod 42.
[0023] The above solution is adopted: by setting the push-block component 4, it is used to cooperate with the fixing device 5 to position and stabilize the placement tray 3. It has the function of blocking the two front sides of the placement tray 3 to prevent the placement tray 3 from sliding and prevent the placement tray 3 from accidentally sliding out of the cabinet 1.
[0024] refer to Figure 2 , Figure 3 and Figure 4 The fixing device 5 includes a box body 51, a self-locking component 52, and a control component 53. The box body 51 is located behind the baffle 43 and is fixedly connected to the left inner surface of the cabinet 1. The self-locking component 52 is located inside the front end of the box body 51, and the control component 53 is located behind the self-locking component 52.
[0025] The above solution is adopted: by setting a fixing device 5, the baffle 43 is positioned and fixed. When the baffle 43 rotates to block the placement plate 3, the baffle 43 is fixed, thereby fixing the placement plate 3.
[0026] refer to Figure 4 The self-locking assembly 52 includes a positioning rod 521, a gear 522, a locking head 523, and a torsion spring 524. The positioning rod 521 is located at the front end inside the box body 51, and its left and right ends are fixedly connected to the left and right sides of the inside of the box body 51, respectively. The gear 522 is sleeved on the surface of the positioning rod 521 and is rotatably connected to the positioning rod 521. The locking head 523 is fixedly connected to the front side of the gear 522. There are two torsion springs 524, which are respectively sleeved on the left and right ends of the positioning rod 521. The ends of the two torsion springs 524 that are close to each other are fixedly connected to the left and right sides of the gear 522, respectively, and the ends that are far apart from each other are fixedly connected to the left and right sides of the inside of the box body 51, respectively.
[0027] The above solution is adopted: by setting a self-locking component 52, it is used to lock the baffle 43 to the connector 7 fixedly connected to the rear surface of the baffle 43, so that the baffle 43 is fixed by the connector 7 when it rotates backward to block the placement plate 3.
[0028] refer to Figure 4 A limit block 6 is provided directly below the card head 523, and the limit block 6 is fixedly connected to the lower surface of the inner side of the box 51.
[0029] The above solution is adopted: by setting a limiting block 6 directly below the card head 523, the rotation position of the card head 523 is restricted, so that the initial position of the card head 523 can cooperate with the connector 7.
[0030] refer to Figure 4The control component 53 includes a slide bar 531, a rack 532, a spring 533, and a pull button 534. There are two slide bars 531, which are respectively located on the left and right sides of the rear end of the box body 51. The upper and lower ends of the two slide bars 531 are fixedly connected to the upper and lower surfaces of the box body 51, respectively. The rack 532 is sleeved on the upper surface of the two slide bars 531 and is slidably connected to the two slide bars 531. The rack 532 is meshed with the gear 522. The pull button 534 is fixedly connected to the right surface of the rack 532, and its right end extends out of the box body 51 and is slidably connected to the box body 51. There are two springs 533, which are respectively sleeved on the lower surface of the two slide bars 531. The upper and lower ends of the two springs 533 are fixedly connected to the lower surface of the rack 532 and the lower surface of the box body 51, respectively.
[0031] The above solution is adopted: by setting up a control component 53, which is used to drive and control the self-locking component 52, it has the function of driving the control head 523 to rotate and release the locking and fixing of the connector head 7 when the positioning of the placement plate 3 is released, and to facilitate the subsequent removal of the placement plate 3 from both ends.
[0032] refer to Figure 2 and Figure 3 Both ends of the rear surface of the baffle 43 are fixedly connected with connectors 7, and the positions of the two connectors 7 correspond to the positions of the two fixing devices 5 on one side.
[0033] The above solution is adopted: By setting connectors 7 at both the upper and lower ends of the rear surface of the baffle 43, which are used to cooperate with the two self-locking components 52, the baffle 43 can be fixed in place by cooperating with the self-locking components 52 when the baffle 43 rotates to block and position the placement plate 3.
[0034] When positioning and stabilizing the placement tray 3 pushed into the cabinet 1, the baffle 43 is rotated backward on the surface of the fixing rod 42 so that the rear surface of the baffle 43 abuts against the front surface of the placement tray 3. Simultaneously, as the baffle 43 rotates backward, it drives the connector 7 to insert into the box 51, pressing the locking head 523 inside the box 51. This causes the locking head 523 to rotate clockwise upward, simultaneously driving the gear 522 to rotate clockwise on the surface of the positioning rod 521, and torsion spring 524 to twist. After the baffle 43 completely abuts against the front surface of the placement tray 3 and positions it, the connector 7 moves to a position where it no longer presses against the locking head 523. At this point, the torsion spring 524 will rotate back, driving the gear... Wheel 522 drives the locking head 523 to rotate downwards, locking the connector 7 and fixing the baffle 43, thereby positioning the placement tray 3 and preventing it from sliding. To pull out the placement tray 3 later, the lever 534 is pulled downwards, causing the rack 532 to move downwards on the surface of the slide rod 531, while simultaneously compressing the spring 533. As the rack 532 moves downwards, it drives the gear 522, which meshes with it, to rotate on the surface of the positioning rod 521. The rotation of the gear 522 causes the locking head 523 to rotate upwards, releasing the locking of the connector 7. Then, the baffle 43 is rotated backwards to open, releasing the positioning of the placement tray 3, allowing it to be pulled out.
[0035] In summary, this SSD multi-disk temperature synchronization testing device, through the coordinated use of cabinet 1, cabinet door 2, placement tray 3, push-block assembly 4, rotating seat 41, fixing rod 42, baffle 43, fixing device 5, box 51, self-locking assembly 52, positioning rod 521, gear 522, clamp 523, torsion spring 524, control assembly 53, slide rod 531, rack 532, spring 533, pull button 534, limit block 6, and connector 7, solves the problem that existing SSD solid-state drive high and low temperature aging test cabinets typically have sliding and pull-out placement trays inside the cabinet. This makes it difficult to properly fix the placement trays during testing, leading to instability and damage to the testing equipment.
[0036] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.
[0037] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A multi-disk temperature synchronization testing device for SSDs, comprising a cabinet (1), a cabinet door (2), and placement trays (3), wherein the cabinet door (2) is disposed at the front end of the cabinet (1) and is rotatably connected to the cabinet (1), and the number of placement trays (3) is several, and they are evenly disposed inside the cabinet (1) and are movably connected to the cabinet (1), characterized in that: Push-block components (4) are provided on the left and right sides of the front end of the cabinet (1). Fixing devices (5) are provided at the rear of the upper and lower ends of the two push-block components (4). The fixing devices (5) are fixedly connected to the cabinet (1).
2. The SSD multi-disk temperature synchronization testing device as described in claim 1, characterized in that: The push-block assembly (4) includes a rotating seat (41), a fixed rod (42), and a baffle (43). There are two rotating seats (41), which are fixedly connected to the upper and lower ends of the right surface inside the cabinet (1). The fixed rod (42) is arranged between the two rotating seats (41), and its upper and lower ends are fixedly connected to the two rotating seats (41) respectively. The baffle (43) is sleeved on the surface of the fixed rod (42) and is rotatably connected to the fixed rod (42).
3. The SSD multi-disk temperature synchronization testing device as described in claim 2, characterized in that: The fixing device (5) includes a box body (51), a self-locking component (52) and a control component (53). The box body (51) is located behind the baffle (43) and is fixedly connected to the left inner surface of the cabinet (1). The self-locking component (52) is located at the front end inside the box body (51), and the control component (53) is located behind the self-locking component (52).
4. The SSD multi-disk temperature synchronization testing device as described in claim 3, characterized in that: The self-locking assembly (52) includes a positioning rod (521), a gear (522), a locking head (523), and a torsion spring (524). The positioning rod (521) is located at the front end inside the box body (51), and its left and right ends are fixedly connected to the left and right sides of the inside of the box body (51), respectively. The gear (522) is sleeved on the surface of the positioning rod (521) and is rotatably connected to the positioning rod (521). The locking head (523) is fixedly connected to the front side of the gear (522). There are two torsion springs (524), which are respectively sleeved on the left and right ends of the positioning rod (521). The ends of the two torsion springs (524) that are close to each other are fixedly connected to the left and right sides of the gear (522), and the ends that are far apart from each other are fixedly connected to the left and right sides of the inside of the box body (51).
5. The SSD multi-disk temperature synchronization testing device as described in claim 4, characterized in that: A limiting block (6) is provided directly below the card head (523), and the limiting block (6) is fixedly connected to the lower inner surface of the box body (51).
6. The SSD multi-disk temperature synchronization testing device as described in claim 4, characterized in that: The control component (53) includes a slide bar (531), a rack (532), a spring (533), and a pull button (534). There are two slide bars (531), each located on the left and right sides of the rear end of the box (51). The upper and lower ends of the two slide bars (531) are fixedly connected to the upper and lower surfaces of the box (51) respectively. The rack (532) is sleeved on the upper surface of the two slide bars (531) and slidably connected to them. The rack (532) meshes with the gear (522), the pull button (534) is fixedly connected to the right surface of the rack (532), and the right end extends out of the box (51) and is slidably connected to the box (51). There are two springs (533), which are respectively sleeved on the lower surface of the two slide rods (531). The upper and lower ends of the two springs (533) are respectively fixedly connected to the lower surface of the rack (532) and the lower surface inside the box (51).
7. The SSD multi-disk temperature synchronization testing device as described in claim 2, characterized in that: Both ends of the rear surface of the baffle (43) are fixedly connected to connectors (7), and the positions of the two connectors (7) correspond to the positions of the two fixing devices (5) on one side.