SSD test fixture structure

By eliminating the handle bar design in the SSD test fixture structure, the operation process is simplified, the testing efficiency and quality are improved, the stability of the electrical connection is ensured, and the problems of low efficiency and poor connection caused by the complex operation of the handle bar in the existing technology are solved.

CN224582013UActive Publication Date: 2026-07-31SHENZHEN YILIAN INFORMATION SYST CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHENZHEN YILIAN INFORMATION SYST CO LTD
Filing Date
2025-06-30
Publication Date
2026-07-31

AI Technical Summary

Technical Problem

Existing SSD test fixtures require the addition of handles, which leads to complex operation, low efficiency, and affects the test cycle and quality. Furthermore, they are prone to poor connection due to human factors.

Method used

Design an SSD test fixture structure, including a frame, an upper clamping plate and a lower clamping plate. The front end of the frame has a notch area, and the handle bar design is eliminated. The SSD platters are directly clamped through the upper and lower mounting slots, and the electrical connection is achieved through the plug-in board.

Benefits of technology

It simplifies the operation process, improves testing efficiency, reduces labor costs, ensures the stability of electrical connections and the accuracy of test results, reduces the risk of operational errors, and improves test quality and equipment utilization.

✦ Generated by Eureka AI based on patent content.

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Abstract

This utility model discloses an SSD testing fixture structure. The SSD testing fixture structure includes: a frame body, an upper clamping plate connected to the upper end of the frame body, and a lower clamping plate connected to the lower end of the frame body. The upper clamping plate has an upper mounting groove, and the lower clamping plate has a lower mounting groove. The upper and lower mounting grooves cooperate to form an SSD clamping area. A notch area is also provided in the front end area of ​​the frame body located on the upper clamping plate. This utility model simplifies the operation process and reduces unnecessary steps by providing a notch area in the front end area of ​​the frame body located on the upper clamping plate. This allows operators to directly manipulate the SSD platters during loading and unloading operations, simplifying the process and reducing unnecessary steps. This enables operators to complete the loading and unloading of SSD platters more quickly and conveniently. This efficiency improvement is particularly significant in batch SSD testing scenarios, significantly shortening the testing cycle and reducing labor costs.
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Description

Technical Field

[0001] This utility model relates to the field of SSD test fixture technology, and in particular to an SSD test fixture structure. Background Technology

[0002] In today's rapidly evolving digital age, the demand for data storage is exploding. Solid-state drives (SSDs), with their high-speed read / write speeds, low power consumption, and shock resistance, have gradually become the mainstream device in the data storage field. Whether in personal computers, servers, or large data centers, SSDs are increasingly widely used, and their performance and reliability directly affect the operating efficiency and stability of the entire storage system. Therefore, comprehensive and accurate performance testing of SSDs is particularly important.

[0003] Currently, in existing SSD testing solutions, the design and connection method of the test fixture are among the key factors affecting testing efficiency and ease of operation. Most test fixtures suffer from a significant design flaw: the need for additional handles. These fixtures typically use a motherboard connected to the backplane via a cable to achieve connection and data exchange with the testing equipment.

[0004] In actual testing, due to the complex connection structure between the test fixture and the motherboard and backplate, installing the handle strip becomes an essential step. Operators must first accurately place the SSD platter in the corresponding position on the test fixture, and then carefully install the handle strip to ensure a stable and reliable electrical connection between the SSD platter and the test fixture. This installation process not only requires operators to possess certain professional skills and experience, but is also cumbersome and susceptible to human error.

[0005] The complexity of installing the mounting brackets directly reduces the efficiency of installing and removing SSD platters during the entire SSD testing process. In batch SSD testing scenarios, frequent installation and removal of the mounting brackets consumes significant time and manpower, extending the testing cycle and failing to meet the efficiency requirements of large-scale production. Furthermore, the complex operation increases the risk of operational errors. Improper installation of the mounting brackets can lead to poor connection between the SSD platter and the test fixture, affecting the accuracy and reliability of test results, and potentially even damaging the SSD platter itself.

[0006] In summary, the design of existing SSD testing solutions that require the addition of handles to the test fixtures leads to complex operation processes and affects the efficiency of loading and unloading SSD platters, which has become a bottleneck restricting the efficiency and quality of SSD testing. Utility Model Content

[0007] The purpose of this invention is to overcome the shortcomings of the prior art and provide an SSD test fixture structure.

[0008] To solve the above-mentioned technical problems, the present invention adopts the following technical solution:

[0009] This utility model embodiment provides an SSD test fixture structure, including: a frame body, an upper clamping plate connected to the upper end of the frame body and a lower clamping plate connected to the lower end of the frame body, the upper clamping plate having an upper mounting groove, the lower clamping plate having a lower mounting groove, the upper mounting groove and the lower mounting groove cooperating to form an SSD clamping area, and the frame body having a notch area at the front end of the upper clamping plate.

[0010] In one specific embodiment, a plug-in board is also connected to the rear end of the frame.

[0011] In one specific embodiment, the front end of the plug-in board is provided with an SSD test interface corresponding to the SSD clamping area.

[0012] In one specific embodiment, the upper mounting slot and the lower mounting slot have the same structure.

[0013] In one specific embodiment, the lower clamping plate is provided with a plurality of protruding strips, and adjacent protruding strips form the lower mounting groove.

[0014] In one specific embodiment, the height of the raised strip is 3-10mm.

[0015] In one specific embodiment, the front end of the protruding strip is further provided with a cone-shaped guide portion.

[0016] In one specific embodiment, a reinforcing member is also connected between the upper clamping plate and the lower clamping plate.

[0017] In one specific embodiment, both the upper clamping plate and the lower clamping plate are made of polyethylene.

[0018] In one specific embodiment, the frame is made of sheet metal.

[0019] Compared with the prior art, the beneficial effects of this SSD test fixture structure are as follows: By creating a notch area at the front end of the frame body located on the upper clamping plate, operators can directly manipulate the SSD platters from this notch area when loading and unloading them, eliminating the need for the cumbersome installation of handles as before. This design simplifies the operation process, reduces unnecessary steps, and allows operators to complete the loading and unloading of SSD platters more quickly and conveniently. This efficiency improvement is particularly significant in batch SSD testing scenarios, which can significantly shorten the testing cycle, reduce labor costs, and meet the stringent requirements for testing efficiency in large-scale production.

[0020] The present invention will be further described below with reference to the accompanying drawings and specific embodiments. Attached Figure Description

[0021] To more clearly illustrate the technical solutions in the embodiments of this utility model, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0022] Figure 1 A three-dimensional schematic diagram of the SSD test fixture structure provided by this utility model;

[0023] Figure 2 This is a top view schematic diagram of the SSD test fixture structure provided by this utility model;

[0024] Figure 3 This is a bottom view of the SSD test fixture structure provided by this utility model;

[0025] Figure 4 This is a rear view schematic diagram of the SSD test fixture structure provided by this utility model. Detailed Implementation

[0026] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and specific embodiments.

[0027] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of the present utility model.

[0028] In the description of this utility model, 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", "counterclockwise", etc., indicating the orientation or positional relationship are based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this utility model and simplifying the description, and are not intended to indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model.

[0029] 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 utility model, "a plurality of" means two or more, unless otherwise explicitly specified.

[0030] In this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," "joining," 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 utility model according to the specific circumstances.

[0031] 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.

[0032] 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 present 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.

[0033] See Figures 1 to 4The specific embodiment shown in this utility model discloses an SSD test fixture structure, including: a frame body 10, an upper clamping plate 20 connected to the upper end of the frame body 10 and a lower clamping plate 30 connected to the lower end, the upper clamping plate 20 having an upper mounting groove 21, the lower clamping plate 30 having a lower mounting groove 31, the upper mounting groove 21 and the lower mounting groove 31 cooperating to form an SSD clamping area, and the frame body 10 having a notch area 11 at the front end of the upper clamping plate 20.

[0034] Specifically, firstly, the upper clamping plate 20 is fixedly installed on the upper end of the frame 10 using a suitable connection method, such as bolt connection or snap-fit ​​connection. Similarly, the lower clamping plate 30 is installed on the lower end of the frame 10 in the same way. Ensure that the upper clamping plate 20 and the lower clamping plate 30 are firmly installed, forming a stable integral structure with the frame 10. During installation, pay attention to ensuring the parallelism of the upper clamping plate 20 and the lower clamping plate 30 to guarantee the subsequent clamping effect on the SSD platters. The upper clamping plate 20 has a pre-designed upper mounting groove 21, and the lower clamping plate 30 has a pre-designed lower mounting groove 31. After the upper clamping plate 20 and the lower clamping plate 30 are installed on the frame 10, the upper mounting groove 21 and the lower mounting groove 31 naturally fit together to form a complete SSD clamping area. The size and shape of this SSD clamping area should be designed according to the specifications of the SSD platters being tested to ensure tight and stable clamping of the SSD platters. Additionally, a notch area 11 is created in the front area of ​​the frame 10 located on the upper clamping plate 20 using processing techniques such as cutting and stamping. The shape and size of the notch area 11 should be designed according to the size of the SSD platter and the operator's operating habits. Generally, it should ensure that the operator can easily reach into the notch area 11 to perform loading and unloading operations on the SSD platter.

[0035] During SSD platter testing, the operator pushes the SSD platter to be tested backward, allowing it to enter the SSD clamping area formed by the upper mounting slot 21 and the lower mounting slot 31. Once the SSD platter is fully inside the clamping area, its design ensures stable holding without the need for a pull handle. After testing, the operator inserts a finger or uses a tool through the notch 11 to gently pull the SSD platter forward, detaching it from the clamping area, and then removes it. The entire removal process is simple and quick, requiring no complicated pull handle removal.

[0036] In other words, by creating a notch area 11 at the front end of the upper clamping plate 20 on the frame body 10, operators can directly manipulate the SSD platters through this notch area 11 when loading and unloading them, eliminating the need for the cumbersome installation of handles as before. This design simplifies the operation process, reduces unnecessary steps, and allows operators to complete the loading and unloading of SSD platters more quickly and conveniently. This efficiency improvement is particularly noticeable in batch testing of SSDs, significantly shortening the testing cycle, reducing labor costs, and meeting the stringent requirements for testing efficiency in large-scale production. Furthermore, in existing technologies, the installation of the handle strip is complex and susceptible to human error. Improper installation can lead to poor connection between the SSD platter and the test fixture, affecting the accuracy and reliability of test results and potentially damaging the SSD platter itself. This new test fixture structure eliminates the need for the handle strip installation step, thus preventing a series of problems caused by improper installation. Operators no longer need to worry about improper or incorrect handle strip installation, significantly reducing the risk of operational errors. This helps ensure a stable and reliable electrical connection between the SSD platter and the test fixture, thereby guaranteeing the accuracy and reliability of test results and improving test quality. Furthermore, this test fixture structure simplifies the loading and unloading operations and reduces the risk of operational errors, making the entire SSD testing process more efficient and smoother. During testing, operators can focus more on the testing itself without spending a lot of time and energy on complex loading and unloading operations. This not only improves testing efficiency but also allows for fuller utilization of the testing equipment, reducing idle time. From a business perspective, this means faster completion of SSD testing tasks, faster product launches, enhanced market competitiveness, and maximized production efficiency.

[0037] In one embodiment, a plug-in plate 40 is also connected to the rear end of the frame body 10.

[0038] Specifically, the rear end of the frame 10 has a pre-reserved installation position and connection structure. The plug-in plate 40 is designed according to this position and structure to ensure precise fit. The plug-in plate 40 is typically made of materials with certain strength and conductivity, such as metal alloys, to ensure stable connection and transmission of electrical signals. The plug-in plate 40 is placed at the installation position at the rear end of the frame 10 and fixed using various connection methods. Common connection methods include bolt connection, where holes are drilled at corresponding positions on the plug-in plate 40 and the frame 10, and bolts and nuts are used to secure them tightly; or snap-fit ​​connection, where a slot is designed at the rear end of the frame 10, and a corresponding snap-fit ​​structure is provided on the plug-in plate 40. The snap-fit ​​is engaged into the slot by pressing or rotating, achieving quick installation. After installation, it is essential to ensure that the plug-in plate 40 and the frame 10 are firmly connected without any looseness.

[0039] The plug-in board 40 is equipped with an electrical connection interface that matches the SSD platter interface. After the SSD platter is placed in the clamping area formed by the upper clamping plate 20 and the lower clamping plate 30, the operator aligns the interface end of the SSD platter with the interface on the plug-in board 40 and gently pushes the SSD platter so that its interface is fully inserted and tightly fitted with the interface of the plug-in board 40.

[0040] In other words, the connector board 40 directly connects to the SSD platter to form an electrical connection. This connection method reduces intermediate steps and minimizes interference and loss during signal transmission. Compared to some methods that use complex cables, this connection method ensures more stable and accurate transmission of electrical signals, providing a reliable data foundation for SSD performance testing and guaranteeing the accuracy of test results. Furthermore, the tight fit between the connector board 40 and the SSD platter interface ensures good electrical contact, avoiding problems such as test data fluctuations and misjudgments caused by poor contact, thus improving the stability and reliability of the test. In addition, operators only need to insert the SSD platter's interface into the connector board 40 to complete the electrical connection, making the operation simple and quick. Compared to traditional methods that require connecting multiple cables, this significantly saves connection time, allowing testers to start testing more quickly and improving overall testing efficiency.

[0041] In one embodiment, the front end of the plug-in board 40 is provided with an SSD test interface 41 corresponding to the SSD clamping area.

[0042] Specifically, the specifications of the front-end SSD test interface 41 of the connector board 40 are determined based on the common SSD platter interface types on the market (such as SATA, NVMe, M.2, etc.). For example, if the main test is of M.2 interface SSD platters, the front end of the connector board 40 is designed to match the M.2 interface.

[0043] In other words, the front end of the connector board 40 is equipped with an SSD test interface 41 corresponding to the SSD clamping area. This allows the SSD platter to precisely align with the interface after being placed in the clamping area, reducing contact problems caused by misalignment. This precise alignment ensures stable and accurate transmission of electrical signals, providing a reliable electrical connection foundation for SSD performance testing. Furthermore, directly connecting to the SSD platter via the SSD test interface 41 reduces the use of intermediate cables, minimizing interference and attenuation during signal transmission.

[0044] In one embodiment, the upper mounting slot 21 and the lower mounting slot 31 have the same structure.

[0045] Specifically, the dimensions of the upper mounting slot 21 and the lower mounting slot 31 need to be precisely designed according to the specifications of the target SSD platter. For example, if the test object is a standard-sized 2.5-inch SSD platter, the length, width, and depth of the mounting slot must strictly match the size of the platter to ensure that the platter can be smoothly inserted without excessive wobbling. Generally, a very small gap (such as 0.1-0.3 mm) is reserved to ensure that the platter can be easily inserted while being stably held. The outline shape of the mounting slot must match the shape of the SSD platter. For common rectangular SSD platters, the mounting slot is also designed to be rectangular.

[0046] In manufacturing the upper clamping plate 20 and lower clamping plate 30, an integral molding process is used, such as injection molding (for plastic clamping plates) or die casting (for metal clamping plates), directly integrating the upper mounting groove 21 and lower mounting groove 31 with the clamping plate as a single unit. This method ensures the connection strength and stability between the mounting groove and the clamping plate, preventing deformation or loosening of the mounting groove due to weak connection. If the clamping plate and mounting groove are manufactured by machining, the mounting groove can be fixed to the clamping plate by welding, bolting, or other methods. During welding, welding parameters must be carefully controlled to ensure welding quality and avoid welding deformation; for bolted connections, appropriate bolt specifications and tightening torque must be selected to ensure a tight and reliable connection between the mounting groove and the clamping plate.

[0047] In other words, since the upper mounting slot 21 and the lower mounting slot 31 have the same structure, the same set of molds and processing techniques can be used in the design and manufacturing process. For example, during injection molding, only one set of molds is needed to manufacture the upper clamping plate 20 and the lower clamping plate 30 with the upper mounting slot 21 and the lower mounting slot 31, greatly reducing the design and manufacturing costs of the molds. At the same time, the uniformity of the processing techniques also reduces the operational complexity and error probability in the production process, improving production efficiency. During the R&D stage, there is no need to design and optimize the upper mounting slot 21 and the lower mounting slot 31 separately, reducing the workload and R&D time of R&D personnel, thereby reducing R&D costs. In addition, the identical structure of the upper mounting slot 21 and the lower mounting slot 31 allows the SSD platter to receive uniform clamping force after insertion. When the platter is placed in the SSD clamping area, the upper mounting slot 21 and the lower mounting slot 31 apply the same force to the platter from both the top and bottom directions, avoiding the occurrence of platter tilting, shaking, or damage due to uneven clamping force, and improving the stability and reliability of clamping. In addition, the identical structure allows the upper mounting slot 21 and the lower mounting slot 31 to match each other in position and shape, enabling precise positioning of the SSD disk.

[0048] In one embodiment, the lower clamping plate 30 is provided with a plurality of protruding strips 32, and adjacent protruding strips 32 form the lower mounting groove 31.

[0049] Specifically, the height, width, and spacing of the raised strips 32 are determined based on the specifications of the target SSD platter. For example, for a common 2.5-inch SSD platter, the height of the raised strips 32 is generally designed to be between 2-5 mm to ensure stable support of the platter without affecting its normal installation and removal; the width is usually 3-8 mm to ensure sufficient strength and stability; the spacing between adjacent raised strips 32 is precisely calculated based on the platter's thickness and dimensions to ensure that the resulting mounting groove 31 fits tightly against the platter's edge. The cross-sectional shape of the raised strips 32 is usually designed to be rectangular or trapezoidal. Rectangular raised strips 32 have a simple structure and are easy to manufacture; trapezoidal raised strips 32 can reduce friction when in contact with the SSD platter to some extent while ensuring sufficient support strength.

[0050] In other words, the arrangement of several protruding strips 32 forms multiple lower mounting slots 31, which in turn form multiple SSD clamping areas, enabling simultaneous testing of multiple SSD platters and improving testing efficiency.

[0051] In one embodiment, the height of the raised strip 32 is 3-10 mm.

[0052] Specifically, when the height of the raised strip 32 is within the range of 3-10mm, it can provide sufficient support for the SSD platter. A higher raised strip 32 can better support heavier SSD platters, preventing the platter from loosening due to gravity or external forces during testing, ensuring that the platter remains horizontal and stable in the fixture, and improving the accuracy of the test.

[0053] In one embodiment, the front end of the protruding strip 32 is further provided with a tapered guide portion 321.

[0054] Specifically, the taper angle is one of the key factors affecting the guiding effect. Generally, a taper angle between 30 and 60 degrees is suitable for the guide section 321. A smaller taper angle (such as 30 degrees) makes the guiding process smoother, but the guiding range is relatively narrower; a larger taper angle (such as 60 degrees) provides a wider guiding range, but the smoothness of the guiding will be slightly worse. Designers can weigh and choose according to actual needs. The transition between the guide section 321 and the main body of the protrusion 32 should be smooth and natural, avoiding sharp edges or steps. A rounded transition can be used to make the guide section 321 and the main body of the protrusion 32 form a continuous curved surface. This not only reduces the friction and resistance experienced by the SSD platter during insertion, but also prevents the platter from being scratched.

[0055] In other words, the tapered guide section 321 provides a clear guiding direction for the insertion of the SSD platter. Even if the operator has a certain angular deviation during insertion, the guide section 321 can gradually guide the platter to the correct position, making the insertion process easier and smoother, and reducing the skill requirements for the operator. Due to the presence of the guide section 321, the SSD platter can find the insertion position more quickly, reducing the time spent on repeated attempts and adjustments, and improving work efficiency. Especially when batch testing SSD platters, this improved insertion convenience can significantly shorten the overall testing process time.

[0056] In one embodiment, a reinforcing member 50 is further connected between the upper clamping plate 20 and the lower clamping plate 30.

[0057] Specifically, the reinforcement member 50 needs to withstand certain external forces and stresses, so materials with high strength, such as steel and aluminum alloys, should be selected. Steel has high strength and hardness, making it suitable for applications with high strength requirements; aluminum alloys, on the other hand, have advantages such as light weight and corrosion resistance, making them more suitable for some scenarios where weight is a concern.

[0058] In other words, the reinforcement member 50 connects the upper clamping plate 20 and the lower clamping plate 30, forming a more stable structural system. When the fixture is subjected to external forces, the reinforcement member 50 can share some of the stress, reducing the deformation of the upper clamping plate 20 and the lower clamping plate 30, and improving the overall structural strength and stability of the fixture. Furthermore, the presence of the reinforcement member 50 increases the load-bearing capacity of the fixture, enabling it to withstand heavier SSD platters or larger test loads. This is crucial for scenarios requiring simultaneous testing of multiple SSD platters or high-intensity testing. Additionally, the reinforcement member 50 can separate multiple SSD clamping areas into groups, facilitating the management and operation of different groups. For example, each group of clamping areas can be independently tested, maintained, or replaced, improving work efficiency and operational flexibility. Moreover, the reinforcement member 50 can disperse stress concentration generated on the upper clamping plate 20 and the lower clamping plate 30 under stress, reducing material fatigue and damage caused by stress concentration. This helps extend the lifespan of the fixture and reduce maintenance costs.

[0059] In one embodiment, both the upper clamping plate 20 and the lower clamping plate 30 are made of high-density polyethylene.

[0060] Specifically, high-density polyethylene (e.g., HDPE material) has antistatic and smooth properties. The high-density polyethylene material is processed into upper plywood 20 and lower plywood 30 using injection molding.

[0061] In other words, due to the smooth surface of the high-density polyethylene material, the friction between the SSD platter and the upper clamping plate 20 and lower clamping plate 30 is small when the SSD platter is inserted into or removed from the clamp, effectively reducing wear on the platter's appearance. This is especially important for SSD platters where aesthetics are critical, maintaining a clean appearance and enhancing the product's market competitiveness. Furthermore, the anti-static high-density polyethylene material effectively eliminates static electricity buildup. During SSD platter testing, static electricity can damage the internal electronic components, leading to data loss or platter failure. Using anti-static clamps prevents the generation and accumulation of static electricity, protecting the SSD platter's electronic components and improving its reliability and stability.

[0062] In one embodiment, the frame 10 is made of sheet metal.

[0063] Specifically, the appropriate sheet metal material is selected based on the application scenario and performance requirements of the frame 10. Common materials include cold-rolled steel sheet (SPCC) and hot-rolled steel sheet (SPHC). Cold-rolled steel sheet has good surface quality, high dimensional accuracy, and good strength and toughness, making it suitable for frame 10 with high requirements for surface quality and accuracy. Hot-rolled steel sheet has higher strength and relatively lower cost, and is often used in applications where strength requirements are high but surface quality requirements are not strict.

[0064] In other words, the sheet metal frame 10 possesses high strength and rigidity, enabling it to withstand significant loads. In SSD testing or storage devices, the frame 10 supports components such as SSD platters and test circuit boards. The sheet metal frame 10 ensures the stable installation of these components, preventing equipment damage due to insufficient load-bearing capacity. Furthermore, after proper processing and connection, the sheet metal frame 10 exhibits excellent resistance to deformation. During use, even under external forces such as vibration or impact, the frame 10 maintains its shape and dimensional stability. Additionally, the sheet metal material has excellent thermal conductivity, quickly dissipating heat generated by the SSD platters and other electronic components. During SSD testing, a certain amount of heat is generated; if this heat cannot be dissipated promptly, it will affect the equipment's performance and lifespan. The sheet metal frame 10 serves a heat dissipation function, ensuring the equipment operates at a suitable temperature.

[0065] The above embodiments are preferred implementations of this utility model. In addition, this utility model can also be implemented in other ways. Any obvious substitutions without departing from the concept of this technical solution are within the protection scope of this utility model.

Claims

1. An SSD test fixture structure, characterized in that, include: The frame has an upper clamping plate connected to its upper end and a lower clamping plate connected to its lower end. The upper clamping plate has an upper mounting groove, and the lower clamping plate has a lower mounting groove. The upper mounting groove and the lower mounting groove cooperate to form an SSD clamping area. The frame also has a notch area at the front end of the upper clamping plate.

2. The SSD test fixture structure according to claim 1, characterized in that, The rear end of the frame is also connected to a plug-in board.

3. The SSD test fixture structure according to claim 2, characterized in that, The front end of the connector board is provided with an SSD test interface corresponding to the SSD clamping area.

4. The SSD test fixture structure according to claim 1, characterized in that, The upper mounting slot and the lower mounting slot have the same structure.

5. The SSD test fixture structure according to claim 4, characterized in that, The lower clamping plate is provided with a plurality of raised strips, and adjacent raised strips form the lower mounting groove.

6. The SSD test fixture structure according to claim 5, characterized in that, The height of the raised strip is 3-10mm.

7. The SSD test fixture structure according to claim 5, characterized in that, The front end of the protruding strip is also provided with a cone-shaped guide.

8. The SSD test fixture structure according to claim 1, characterized in that, A reinforcing member is also connected between the upper clamping plate and the lower clamping plate.

9. The SSD test fixture structure according to claim 1, characterized in that, Both the upper and lower clamping plates are made of polyethylene.

10. The SSD test fixture structure according to claim 1, characterized in that, The frame is made of sheet metal.