Adjustable test support for solid state drives

By designing an adjustable test bracket fixing and guiding mechanism, the problem of cumbersome operation of traditional clamping mechanisms is solved, enabling rapid clamping and disassembly of solid-state drives and improving testing efficiency.

CN224295804UActive Publication Date: 2026-05-29ANHUI LIANKANG INTELLIGENT MFG CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
ANHUI LIANKANG INTELLIGENT MFG CO LTD
Filing Date
2025-06-25
Publication Date
2026-05-29

AI Technical Summary

Technical Problem

Traditional solid-state drive clamping mechanisms are cumbersome to operate, resulting in low detection efficiency and difficulty in achieving rapid clamping and disassembly.

Method used

An adjustable test bracket including a fixing mechanism and a guiding mechanism was designed. The I-shaped slider and rollers are moved in the inclined groove by a toggle block to realize the quick clamping and release of solid-state drives. The limit mechanism and the weighing block are combined to improve stability and operating efficiency.

Benefits of technology

It enables quick clamping and disassembly of solid-state drives, simplifies the operation process, and significantly improves testing efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a kind of solid state disk belongs to solid state disk production technical field, it solves the technical problem of quick clamping and releasing to solid state disk. A kind of adjustable test support for solid state disk, including detection table, fixed mechanism includes the fixed shell being fixed in the both ends of detection table top, the two sides of fixed shell are all set with the inclined slot being communicated with its inside, and the inner wall of inclined slot is equipped with the compatible gyro wheel and rolls, the side of two gyro wheels mutually close is fixed with the two sides of same fixed block, the end of fixed shell is set with the through slot mouth being communicated, the end of fixed block is fixed with clamping block passing through through slot mouth, the other end of fixed block is fixed with sleeve, the inner wall of sleeve is inserted with inserting rod, the other end of inserting rod is fixed with i-shaped sliding block. In the utility model, it is realized to the solid state disk body to be clamped and fixed and detected quickly, and after detection is completed, the solid state disk body can be quickly released from the location, improve work efficiency.
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Description

Technical Field

[0001] This utility model belongs to the field of solid-state drive (SSD) manufacturing technology, and relates to an SSD, particularly an adjustable test bracket for SSDs. Background Technology

[0002] Solid-state drives (SSDs) are storage devices that store data in flash memory. They are hard drives made using solid-state electronic storage chip arrays and consist of a control unit and storage units. SSDs are completely identical to regular hard drives in terms of interface specifications and definitions, functions, and usage. During the production of SSDs, they need to be tested to ensure that the production quality meets the standards.

[0003] When testing solid-state drives (SSDs), it is usually necessary to insert the connector into a test board and perform a series of testing operations. However, traditional clamping mechanisms are often cumbersome in the process of clamping SSDs. Frequent disassembly and re-clamping not only increase the complexity of the operation but also significantly reduce the testing efficiency. Therefore, there is an urgent need for an adjustable test bracket for SSDs to solve these problems. Utility Model Content

[0004] The purpose of this invention is to address the aforementioned problems in existing technologies by proposing an adjustable test bracket for solid-state drives. The technical problem this invention aims to solve is: how to achieve rapid clamping and disassembly of solid-state drives.

[0005] The objective of this utility model can be achieved through the following technical solutions:

[0006] An adjustable test stand for solid-state drives includes a test platform, a solid-state drive body is provided on the top of the test platform, a fixing mechanism for quickly clamping and fixing the solid-state drive body is provided at both ends of the top of the test platform, and a guide mechanism for guiding the solid-state drive body is provided on both sides of the top of the test platform.

[0007] The fixing mechanism includes a fixing shell fixed to both ends of the top of the testing platform. Each fixing shell has an inclined groove on both sides that communicates with its interior. Adaptive rollers are rolled along the inner walls of the inclined grooves. The sides of the two rollers that are close to each other are fixed to both sides of the same fixing block. One end of the fixing shell has a communicating through slot. One end of the fixing block passes through the through slot and is fixed with a clamping block. The other end of the fixing block is fixed with a sleeve. A rod is inserted into the inner wall of the sleeve. The other end of the rod is fixed with an I-shaped slider. The end of the fixing shell away from the fixing block has a communicating sliding groove. The I-shaped slider slides inside the sliding groove. The other end of the I-shaped slider is fixed with a toggle block.

[0008] The working principle of this utility model is as follows: the toggle block drives the I-shaped slider to move, and the sleeve and the plug rod drive the fixing block to move. The fixing block drives the roller to move in the inclined groove and drives the clamping block to approach one end of the solid-state drive body. The two clamping blocks clamp and fix both ends of the solid-state drive body, improving the stability during testing.

[0009] The two clamping blocks are each fixed with anti-slip pads on the side that is close to each other, and a limiting mechanism is provided on one outer wall of the fixed shell to limit the movement of the actuating block.

[0010] With the above structure, the anti-slip pad can play a role in preventing slippage when clamping and fixing the solid-state drive.

[0011] The limiting mechanism includes a mounting plate fixed to one end of the sides of two fixed shells. The mounting plate has sliding holes on both sides, and a sliding rod is slidably installed inside the sliding holes. A limiting block is fixed to the side of the sliding rod near the actuating block, and the bottom of the limiting block is arc-shaped.

[0012] One end of a spring is fixed to the side of the limiting block away from the actuating block, and the other end of the spring is fixedly connected to one side of the mounting plate.

[0013] With the above structure, the limiting block can quickly limit the toggle block, and pulling the slide bar can quickly release the toggle block from the limit, saving the fixing time during the detection of the solid-state drive itself.

[0014] The guiding mechanism includes mounting brackets fixed on both sides of the top of the testing table. The inner walls of the two mounting brackets are rotatably connected to the same rotating rod at both ends, and the outer walls of the two rotating rods are fixed with multiple guide wheels.

[0015] A test plate is installed on the top of the testing station, and the inner wall of the test plate is provided with contact pieces.

[0016] The bottom of the testing platform is bolted to a weighing block.

[0017] With the above structure, the weighing block can counterweight the testing platform, and the weight of the weighing block can be adjusted by bolts, thereby improving the stability of the testing platform during testing.

[0018] Compared with existing technologies, the adjustable test bracket for solid-state drives of this invention has the following advantages:

[0019] 1. In this utility model, due to the adoption of a fixing mechanism, pulling up the actuating block will drive the I-shaped slider, insert rod, sleeve, and fixing block to move upward. Then, the roller will roll in the inclined groove and drive the clamping block to approach one end of the solid-state drive body. Then, the top of the actuating block will contact the bottom of the limiting block, and the limiting block will limit the actuating block. Pulling the sliding rod can quickly release the fixing clamp on the solid-state drive body, thereby realizing the effect of quickly clamping and fixing the solid-state drive body and testing. After the test, the solid-state drive body can be quickly released from the limit. The operation is simple and convenient, which can significantly shorten the installation and testing time and improve work efficiency. Attached Figure Description

[0020] Figure 1 This is a three-dimensional structural schematic diagram of the present invention;

[0021] Figure 2 This is the utility model Figure 1 Enlarged structural diagram at point A in the middle;

[0022] Figure 3 This is a partial structural diagram of the fixing mechanism in this utility model;

[0023] Figure 4 This is a schematic diagram of the cross-sectional structure of the fixed shell in this utility model;

[0024] Figure 5 This is a partial structural diagram of the guide mechanism in this utility model.

[0025] In the diagram, 1 is the testing platform; 101 is the weighing block; 2 is the solid-state drive body; 3 is the mounting shell; 301 is the sliding groove; 302 is the through slot; 303 is the fixing block; 304 is the clamping block; 305 is the anti-slip pad; 306 is the inclined groove; 307 is the roller; 308 is the sleeve; 309 is the insertion rod; 310 is the I-beam slider; 311 is the actuating block; 4 is the mounting bracket; 401 is the test plate; 402 is the guide wheel; 403 is the rotating rod; 5 is the mounting plate; 501 is the sliding rod; 502 is the limit block; and 503 is the spring. Detailed Implementation

[0026] The following are specific embodiments of the present invention, which are described in conjunction with the accompanying drawings. However, the present invention is not limited to these embodiments.

[0027] like Figures 1-5 As shown, an adjustable test stand for solid-state drives includes a test platform 1, a solid-state drive body 2 is provided on the top of the test platform 1, a fixing mechanism for quickly clamping and fixing the solid-state drive body 2 is provided at both ends of the top of the test platform 1, and a guide mechanism for guiding the solid-state drive body 2 is provided on both sides of the top of the test platform 1.

[0028] The fixing mechanism includes a fixing shell 3 fixed to both ends of the top of the testing table 1. Both sides of the fixing shell 3 are provided with inclined grooves 306 that communicate with its interior. The inner wall of the inclined groove 306 is provided with a matching roller 307. The two sides of the same fixing block 303 are fixed on the side of the two rollers 307 that are close to each other. One end of the fixing shell 3 is provided with a through slot 302. One end of the fixing block 303 passes through the through slot 302 and is fixed with a clamping block 304. The other end of the fixing block 303 is fixed with a sleeve 308. A plug rod 309 is inserted into the inner wall of the sleeve 308. The other end of the plug rod 309 is fixed with an I-shaped slider 310. The end of the fixing shell 3 away from the fixing block 303 is provided with a through groove 301 that communicates with it. The I-shaped slider 310 is slidably disposed inside the through groove 301. The other end of the I-shaped slider 310 is fixed with a toggle block 311. Two clamping blocks 304 are each fixed with anti-slip pads 305 on their sides that are close to each other. A limiting mechanism for limiting the movement of the actuating block 311 is provided on one outer wall of one side of the fixed housing 3. The limiting mechanism includes a mounting plate 5 fixed to one end of the side of the two fixed housings 3. Sliding holes are provided on both sides of the mounting plate 5, and a sliding rod 501 is slidably mounted inside the sliding holes. A limiting block 502 is fixed to the side of the sliding rod 501 closest to the actuating block 311, and the bottom of the limiting block 502 is arc-shaped. One end of a spring 503 is fixed to the side of the limiting block 502 away from the actuating block 311, and the other end of the spring 503 is fixedly connected to one side of the mounting plate 5. The guiding mechanism includes mounting brackets 4 fixed to both sides of the top of the testing table 1. The same rotating rod 403 is rotatably connected to both ends of the inner walls of the two mounting brackets 4, and multiple guide wheels 402 are fixed to the outer walls of the two rotating rods 403. A test plate 401 is mounted on the top of the testing table 1, and contact pieces are provided on the inner wall of the test plate 401. A weighing block 101 is bolted to the bottom of the testing platform 1.

[0029] The working principle of this utility model is as follows: In use, first, align the input end of the solid-state drive (SSD) body 2 to be tested with the test board 401. Then, guide the SSD body 2 using the guide wheel 402, inserting it into the test board 401. At this time, the guide wheel 402 will pre-position the SSD body 2, facilitating subsequent clamping. Then, move the actuating block 311, which will cause the I-beam slider 310 to slide inside the groove 301. The insertion rod 309 moves upward, which in turn moves the sleeve 308 and simultaneously moves the fixing block 303 upward. The fixing block 303 causes the roller 307 to roll inside the inclined groove 306. Guided by the inclined groove 306, the fixing block 303 gradually approaches one end of the solid-state drive body 2. As the fixing block 303 moves, it moves the sleeve 308 and extends and retracts it. Then, the fixing block 303 moves the clamping block 304 closer to the solid-state drive body 2 and connects it to one end of the solid-state drive body 2. When the two clamping blocks 304 contact the two ends of the solid-state drive body 2, they clamp and fix it in place. The anti-slip pad 305 provides anti-slip protection. When the actuating block 311 moves upward, it contacts the bottom arc surface of the limiting block 502 and presses against it. The limiting block 502 then moves the sliding rod 501, pressing against the spring 503. When the actuating block 311 is at the top of the limiting block 502, the spring 503 resets the limiting block 502. The bottom of the actuating block 311 is locked in place. At this time, due to the weight of the actuating block 311 and the fixing block 303, they will always be in contact with the top of the limiting block 502 and keep the clamping block 304 stable. By pulling the slide bar 501, the limiting block 502 can be moved away from the actuating block 311. At this time, the actuating block 311 will drive the fixing block 303 and the clamping block 304 to move down automatically and quickly release the solid-state drive body 2, thereby achieving the effect of quickly clamping and positioning the solid-state drive body 2 and releasing it.

[0030] In summary, in this utility model, by moving the toggle block 311 upward, the toggle block 311 will drive the I-shaped slider 310 to move, and drive the fixing block 303 to move upward. The fixing block 303 will drive the roller 307 to roll inside the inclined groove 306, and drive the fixing block 303 and the clamping block 304 to gradually approach one end of the solid-state drive body 2. Then the limiting block 502 will limit the toggle block 311, thereby achieving the effect of quickly fixing and quickly disassembling both ends of the solid-state drive body 2.

[0031] The specific embodiments described herein are merely illustrative examples illustrating the spirit of this utility model. Those skilled in the art to which this utility model pertains may make various modifications or additions to the described specific embodiments or use similar methods to substitute them, without departing from the spirit of this utility model or exceeding the scope defined by the appended claims.

Claims

1. An adjustable test stand for solid-state drives, comprising a test stage (1), characterized in that, The solid-state drive body (2) is provided above the testing platform (1). The top two ends of the testing platform (1) are provided with a fixing mechanism for quickly clamping and fixing the solid-state drive body (2). The top two sides of the testing platform (1) are provided with a guiding mechanism for guiding the solid-state drive body (2). The fixing mechanism includes a fixing shell (3) fixed at both ends of the top of the testing table (1). Each fixing shell (3) has an inclined groove (306) communicating with its interior on both sides. Adapted rollers (307) are rolled on the inner wall of the inclined groove (306). The two rollers (307) are fixed to the sides of the same fixing block (303) on their adjacent sides. One end of the fixing shell (3) has a communicating through slot (302). One end of the fixing block (303) passes through the through slot (302) and is fixed... A clamping block (304) is fixed, and a sleeve (308) is fixed at the other end of the fixing block (303). A rod (309) is inserted into the inner wall of the sleeve (308). An I-shaped slider (310) is fixed at the other end of the rod (309). A groove (301) is provided at the end of the fixing shell (3) away from the fixing block (303). The I-shaped slider (310) is slidably disposed inside the groove (301). A toggle block (311) is fixed at the other end of the I-shaped slider (310).

2. The adjustable test bracket for solid-state drives according to claim 1, characterized in that, The two clamping blocks (304) are fixed with anti-slip pads (305) on the side that is close to each other, and the outer wall of one side of the fixed shell (3) is provided with a limiting mechanism to limit the movement of the actuating block (311).

3. The adjustable test bracket for solid-state drives according to claim 2, characterized in that, The limiting mechanism includes a mounting plate (5) fixed to one side of two fixed shells (3). The mounting plate (5) has sliding holes on both sides, and a sliding rod (501) is slidably provided inside the sliding holes. A limiting block (502) is fixed on the side of the sliding rod (501) near the actuating block (311). The bottom of the limiting block (502) is arc-shaped.

4. The adjustable test bracket for solid-state drives according to claim 3, characterized in that, One end of a spring (503) is fixed to the side of the limiting block (502) away from the actuating block (311), and the other end of the spring (503) is fixedly connected to one side of the mounting plate (5).

5. The adjustable test bracket for solid-state drives according to claim 1, characterized in that, The guiding mechanism includes mounting brackets (4) fixed on both sides of the top of the testing table (1). The inner walls of the two mounting brackets (4) are rotatably connected to the same rotating rod (403), and the outer walls of the two rotating rods (403) are fixed with multiple guide wheels (402).

6. The adjustable test bracket for solid-state drives according to claim 5, characterized in that, The test plate (401) is installed on the top of the test station (1), and the inner wall of the test plate (401) is provided with contact pieces.

7. The adjustable test bracket for solid-state drives according to claim 1, characterized in that, The bottom of the testing platform (1) is connected to a weighing block (101) by bolts.