Auxiliary detection device for solid state disk production
By introducing heat dissipation components and limiting components into the solid-state drive detection device, the looseness and heating problems of the solid-state drive during detection are solved, and the stability and accuracy of the detection are improved.
Patent Information
- Application Number
- CN202510132039.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-06
- Publication Date
- 2025-05-30
AI Technical Summary
During the production process of solid-state drives, the solid-state drive is prone to loosening during the detection process, resulting in inaccurate detection, and it is easy to generate heat during detection to affect the accuracy of the data.
An auxiliary detection device is designed, including a heat dissipation assembly and a limit assembly. The heat dissipation component dissipates heat through a small fan, and the limiting component maintains the stability of the solid-state drive through a detector and limiting block.
It effectively avoids the looseness of the solid-state drive during detection, improves the stability and accuracy of the detection, and improves the reliability of the detection data through heat dissipation.
Smart Images

Figure CN120072019A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of solid - state drive auxiliary detection, and particularly to an auxiliary detection device for solid - state drive production. Background Art
[0002] With the rapid development of information technology, solid - state drives (SSDs) have gradually become the mainstream choice for storage devices due to their advantages such as high - speed read - write, low power consumption, high reliability, and being thin and light. They are widely used in multiple fields such as military, vehicle - mounted, industrial control, and video surveillance. In the production process of solid - state drives, the detection link is crucial, which not only relates to the product quality but also directly affects the production efficiency and the economic benefits of enterprises.
[0003] For example, the patent with publication number CN119142804A discloses a solid - state drive detection device and a detection method, including a feeding mechanism, a detection mechanism, and a discharging mechanism. The feeding mechanism includes a transmission component and a transfer component; the detection mechanism includes a detection rack, and the detection rack includes multiple rows of detection components, and each row of detection components is respectively used to detect a type of solid - state drive; the detection component includes multiple detection boxes, and the detection boxes are provided with slots for plugging in the solid - state drive and indicator lights; the discharging mechanism includes a first conveyor belt and a second conveyor belt; the transfer component includes multiple transfer pieces; after the solid - state drive detection is completed, the transfer pieces move the solid - state drives to the first conveyor belt and the second conveyor belt respectively according to the indication of the indicator lights. This application can detect multiple different types of solid - state drives simultaneously, and has the functions of improving the automation degree and working efficiency. However, when the solid - state drive is detected, it is mostly plugged and unplugged unilaterally, which makes the solid - state drive easy to loosen during detection, resulting in inaccurate detection. At the same time, the solid - state drive is prone to heat during detection, which affects the accuracy of detection data. Summary of the Invention
[0004] The purpose of the present invention is to provide an auxiliary detection device for solid - state drive production to solve the problems existing in the above - mentioned background art.
[0005] The purpose of the present invention can be achieved through the following technical solutions:
[0006] An auxiliary detection device for solid - state drive production includes a heat - dissipation component. The heat - dissipation component is arranged on a fixing plate. The heat - dissipation component is used to dissipate heat during the detection of the solid - state drive body to ensure the stability of detection. The heat - dissipation component includes multiple groups of small fans. The small fans are arranged in a circular arrangement inside a connecting ring. The small fans are used to dissipate heat from the solid - state drive body.
[0007] The limiting component is arranged on the heat dissipation component and is used to limit the solid-state drive body to maintain stability. The limiting component includes a detector fixedly installed on a fixing plate, and the detector is used to detect the solid-state drive body.
[0008] As a further solution of the present invention: The heat dissipation component further includes a bottom plate, one end of the bottom plate is fixedly connected with a first connecting block, and the other end of the bottom plate is fixedly connected with a second connecting block;
[0009] A second motor is fixedly connected to the top of the first connecting block. The output end of the second motor is fixedly connected with a reciprocating lead screw, and a first sliding block is threadedly connected to the surface of the reciprocating lead screw;
[0010] A positioning post is installed in a sliding groove opened in the second connecting block, and a second sliding block is slidably connected to the surface of the positioning post;
[0011] A connecting ring has its two ends respectively fixed to the inner sides of the second sliding block and the first sliding block.
[0012] As a further solution of the present invention: The reciprocating lead screw is movably installed in the middle of the first connecting block, the first sliding block slides in a sliding groove opened in the first connecting block, and the second sliding block slides in a sliding groove opened in the second connecting block.
[0013] As a further solution of the present invention: The limiting component further includes a connecting frame fixedly connected to the detector;
[0014] A telescopic column has one end fixedly connected to the inside of the connecting frame and the other end fixedly connected with a limiting block; a first spring is sleeved on the telescopic column;
[0015] There are two groups of limiting columns, both of which are fixedly installed in sliding grooves opened on both sides of the connecting frame. A sliding plate is slidably connected to the surface of the limiting column, and the inner sides of the sliding plates are fixedly connected to both ends of the limiting block.
[0016] As a further solution of the present invention: It further includes a workbench. A limiting rod is slidably connected in a connecting groove opened on one side of the workbench, and a placing plate is fixedly connected to the top of the limiting rod. At the same time, pull handles are fixedly connected to both sides of the placing plate. A plurality of storage blocks are fixedly connected to the top of the placing plate, and solid-state drive bodies are placed in the storage blocks. The fixing plate is fixedly installed on the workbench, and moving components are fixedly installed on both sides of the workbench.
[0017] As a further solution of the present invention: The moving component includes positioning blocks fixed on both sides of the workbench, and racks are fixedly installed in the positioning blocks;
[0018] A moving block that slides in a chute formed in a positioning block and also slides on a rack.
[0019] A first motor fixed to one side of the outer surface of the moving block. The output end of the first motor is fixedly connected to a transmission shaft, and a first gear is fixedly connected to the middle of the transmission shaft. At the same time, the first gear is meshed and connected to the rack.
[0020] As a further solution of the present invention: A two-way cylinder is fixedly connected in a chute formed on one side of the fixed plate, and limiting plates are fixedly connected to both ends of the two-way cylinder. At the same time, the limiting plates slide in the chute formed in the fixed plate, and the limiting plates penetrate and slide in the positioning block.
[0021] As a further solution of the present invention: A connecting frame is fixedly connected to the top of the moving block, and two hydraulic cylinders are fixedly connected to the top of the connecting frame. At the same time, the output ends of the hydraulic cylinders are fixedly connected to a connecting plate, and buffer components are installed on both lateral sides of the bottom of the connecting plate. And clamping components are installed on the sides of the buffer components away from the connecting plate.
[0022] As a further solution of the present invention: The buffer component includes a first fixed block fixedly connected to the bottom of the connecting plate. A second spring is fixedly installed in the first fixed block, and an extension block is fixedly connected to the side of the second spring away from the first fixed block. The extension block slides in the middle of one side of the first fixed block.
[0023] Moving plates, two groups of which are provided and are both arranged in chutes formed on both sides of the first fixed block. Guide columns are slidably connected to the surfaces of the moving plates, and the inner sides of the guide columns are fixedly connected to the extension block.
[0024] As a further solution of the present invention: The clamping component includes a second fixed block fixedly connected to the end of the extension block away from the second spring.
[0025] A third motor fixedly connected inside the second fixed block. The output end of the third motor is fixedly connected to a connecting shaft, and a second gear is fixedly connected to the middle of the connecting shaft. At the same time, the second gear is meshed and connected to a third gear, and a connecting column is fixedly connected to the middle of the third gear.
[0026] A bidirectional lead screw fixedly connected to the middle of the connecting column and movably installed in a chute formed in the second fixed block.
[0027] Clamping blocks, two groups of which are provided and are respectively threadedly connected to two opposite threads of the bidirectional lead screw.
[0028] The beneficial effects of the present invention:
[0029] (1) In the present invention, through the cooperation between the limiting component and the heat dissipation component, the connection of the solid-state drive body during testing is more stable, effectively avoiding loosening of the solid-state drive body during detection and affecting the detection effect. At the same time, when the solid-state drive body is being detected, it can dissipate heat reciprocally, effectively improving the temperature stability during the detection of the solid-state drive body and thus enhancing the stability during detection.
[0030] (2) In the present invention, through the mutual cooperation of the clamping component and the buffer component, the solid-state drive body can be automatically clamped and loaded, thereby improving the efficiency of loading and detecting the solid-state drive body. Moreover, when the solid-state drive body is inserted into the detector, it can be buffered, effectively avoiding damage during the insertion and removal of the solid-state drive body, and thus enhancing the protection effect on the solid-state drive body during the insertion and removal process.
[0031] (3) In the present invention, through the mutual cooperation of the moving component with the double-acting cylinder and the limiting plate, during the detection and installation process of the solid-state drive body, it can be positioned and limited more precisely, reducing the inaccuracy during the detection and installation of the solid-state drive body, effectively ensuring the accuracy of the position of the solid-state drive body during detection, avoiding secondary insertion and removal, and thereby improving the detection efficiency of the solid-state drive body. BRIEF DESCRIPTION OF THE DRAWINGS
[0032] The present invention will be further described below with reference to the accompanying drawings.
[0033] Figure 1 is a schematic three-dimensional structure of the present invention Figure 1 ;
[0034] Figure 2 is a schematic three-dimensional structure of the present invention Figure 2 ;
[0035] Figure 3 is a schematic partial sectional structure diagram of the present invention;
[0036] Figure 4 is a schematic diagram of the partial component disassembly of the moving component of the present invention;
[0037] Figure 5 is a schematic diagram of the bottom structure of the fixing plate of the present invention;
[0038] Figure 6 is a schematic sectional structure diagram of the heat dissipation component of the present invention;
[0039] Figure 7 is a schematic diagram of the component disassembly of the limiting component of the present invention
[0040] Figure 8 is a schematic diagram of the partial structure combination of the present invention;
[0041] Figure 9It is a schematic cross-sectional structure diagram of the buffer component of the present invention;
[0042] Figure 10 It is a schematic cross-sectional structure diagram of the clamping component of the present invention;
[0043] Figure 11 It is a three-dimensional structure diagram of the detector and the solid-state drive body of the present invention.
[0044] In the figure: 1, workbench; 2, moving component; 200, positioning block; 201, rack; 202, moving block; 203, motor 1; 204, transmission shaft; 205, gear 1; 3, heat dissipation component; 300, bottom plate; 301, connecting block 1; 302, motor 2; 303, reciprocating screw rod; 304, sliding block 1; 305, connecting ring; 306, small fan; 307, connecting block 2; 308, sliding block 2; 309, positioning column; 4, limiting component; 400, connecting frame; 401, detector; 402, limiting block; 403, telescopic column; 404, spring 1; 405, limiting column; 406, sliding plate; 5, connecting frame; 6, hydraulic cylinder; 7, connecting plate; 8, buffer component; 800, fixing block 1; 801, extension block; 802, spring 2; 803, guiding column; 804, moving plate; 9, clamping component; 900, fixing 2; 901, motor 3; 902, connecting shaft; 903, gear 2; 904, gear 3; 905, connecting column; 906, bidirectional screw rod; 907, clamping block; 10, fixing plate; 11, bidirectional cylinder; 12, limiting plate; 13, placing plate; 14, pull handle; 15, storage block; 16, solid-state drive body; 17, limiting rod. Detailed implementation manners
[0045] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present invention.
[0046] Embodiment 1
[0047] Please refer to Figures 1-11 As shown, the present invention is an auxiliary detection device for solid-state drive production, including a heat dissipation component 3. The heat dissipation component 3 is arranged on the fixing plate 10. The heat dissipation component 3 is used to dissipate heat during the detection of the solid-state drive body 16 to ensure the stability of the detection. The heat dissipation component 3 includes multiple groups of small fans 306. The small fans 306 are arranged in a circular pattern inside the connecting ring 305. The small fans 306 are used to dissipate heat from the solid-state drive body 16;
[0048] The limiting component 4 is arranged on the heat dissipation component 3. The limiting component 4 is used to limit the solid-state drive body 16 to maintain stability. The limiting component 4 includes a detector 401. The detector 401 is fixedly installed on the fixing plate 10, and the detector 401 is used to detect the solid-state drive body 16.
[0049] It should be noted that the detector 401 is a prior art. The detector 401 can detect the data of the solid-state drive body 16 to ensure its quality.
[0050] In the present invention, preferably, the heat dissipation component 3 further includes a bottom plate 300. One end of the bottom plate 300 is fixedly connected with a first connecting block 301, and the other end of the bottom plate 300 is fixedly connected with a second connecting block 307.
[0051] A second motor 302 is fixedly connected to the top of the first connecting block 301. The output end of the second motor 302 is fixedly connected with a reciprocating lead screw 303, and a first sliding block 304 is threadedly connected to the surface of the reciprocating lead screw 303.
[0052] A positioning column 309 is installed in the sliding groove opened in the second connecting block 307. A second sliding block 308 is slidably connected to the surface of the positioning column 309.
[0053] A connecting ring 305 has its two ends respectively fixed to the inner sides of the second sliding block 308 and the first sliding block 304.
[0054] It should be noted that the inside of the connecting ring 305 is hollow to facilitate the placement of a small blower 306. The small blower 306 and the second motor 302 are both coordinately controlled by wireless signal transmission through a controller (not shown).
[0055] In the present invention, preferably, the reciprocating lead screw 303 is movably installed in the middle of the first connecting block 301. The first sliding block 304 slides in the sliding groove opened in the first connecting block 301, and the second sliding block 308 slides in the sliding groove opened in the second connecting block 307.
[0056] In the present invention, preferably, the limiting component 4 further includes a connecting frame 400. The connecting frame 400 is fixedly connected to the detector 401.
[0057] A telescopic column 403 has one end fixedly connected to the inside of the connecting frame 400, and the other end of the telescopic column 403 is fixedly connected with a limiting block 402. A first spring 404 is sleeved on the telescopic column 403.
[0058] There are two groups of limiting columns 405, and they are both fixedly installed in the sliding grooves opened on both sides of the connecting frame 400. A sliding plate 406 is slidably connected to the surface of the limiting column 405, and the inner sides of the sliding plates 406 are fixedly connected to both ends of the limiting block 402.
[0059] It should be noted that the limiting block 402 is double-arc-shaped and made of rubber material, so that the limiting block 402 can be closer and softer when limiting the solid-state drive body 16 to reduce damage.
[0060] During the implementation process, the solid-state drive body 16 is pushed downward through the inner arc surfaces of the two groups of limiting blocks 402 and then docked with the detector 401. Both groups of limiting blocks 402 move outward along the sliding plates 406 on both sides along the limiting columns 405 and the sliding grooves opened by the connecting frame 400. The two groups of limiting blocks 402 move outward and then squeeze the telescopic column 403 and the first spring 404. When the detector 401 is docked with the solid-state drive body 16, the two groups of limiting blocks 402 both drive the sliding plates 406 on both sides to move inward along the limiting columns 405 and then clamp and limit the middle solid-state drive body 16, making the connection of the solid-state drive body 16 more stable during testing and effectively avoiding loosening of the solid-state drive body 16 during detection and affecting the detection effect;
[0061] A small fan 306 is provided. The small fan 306 rotates to blow the detected solid-state drive body 16 to dissipate heat from the solid-state drive body 16. A second motor 302 is provided. The output end of the second motor 302 drives the reciprocating screw rod 303 to rotate along the middle of the connecting block 301. The rotation of the reciprocating screw rod 303 makes the sliding block 304 reciprocate along the sliding groove of the connecting block 301 and the reciprocating screw rod 303. The sliding block 304 drives the connecting ring 305 and the small fan 306 to reciprocate along the positioning column 309 through the sliding block 308, so that the solid-state drive body 16 can be reciprocally cooled during detection, effectively improving the stability of the data during the detection of the solid-state drive body 16.
[0062] Embodiment 2
[0063] In the present invention, preferably, it further includes a workbench 1. A limiting rod 17 is slidably connected in a connecting groove opened on one side of the workbench 1, and a placing plate 13 is fixedly connected to the top of the limiting rod 17. At the same time, pulling handles 14 are fixedly connected to both sides of the placing plate 13. A plurality of storage blocks 15 are fixedly connected to the top of the placing plate 13, and solid-state drive bodies 16 are placed in the storage blocks 15. A fixing plate 10 is fixedly installed on the workbench 1, and moving components 2 are fixedly installed on both sides of the workbench 1.
[0064] In the present invention, preferably, the moving component 2 includes positioning blocks 200, and the positioning blocks 200 are fixed to both sides of the workbench 1, and racks 201 are fixedly installed in the positioning blocks 200;
[0065] Moving blocks 202, the moving blocks 202 slide in the sliding grooves opened in the positioning blocks 200, and the moving blocks 202 slide on the racks 201;
[0066] The first motor 203 is fixed to one side of the outer surface of the moving block 202. A transmission shaft 204 is fixedly connected to the output end of the first motor 203, and a first gear 205 is fixedly connected to the middle of the transmission shaft 204. At the same time, the first gear 205 is meshed and connected with the rack 201.
[0067] It should be noted that a sliding groove is formed on the outer side of the positioning block 200, and the first motor 203 slides in the sliding groove. The first gear 205 is arranged inside the moving block 202, and the rack 201 penetrates the moving block 202.
[0068] In the present invention, preferably, a double-acting cylinder 11 is fixedly connected in a sliding groove formed on one side of the fixing plate 10, and limiting plates 12 are fixedly connected to both ends of the double-acting cylinder 11. At the same time, the limiting plates 12 slide in the sliding groove formed on the fixing plate 10, and the limiting plates 12 penetrate and slide in the positioning block 200.
[0069] It should be noted that the limiting plates 12 penetrate and slide on the moving block 202. The number of groups of the limiting plates 12 provided by the double-acting cylinder 11 is the same as the horizontal arrangement number of the heat dissipation components 3 and the limiting components 4. In this article, it is three groups, and it can be increased or decreased according to the situation. The double-acting cylinder 11 and the first motor 203 are both controlled by wireless signal transmission from a controller (not shown).
[0070] During the implementation process, first, the solid-state drive body 16 is respectively placed in the storage block 15. Pull the pull handle 14, and the pull handle 14 drives the storage block 15 and the solid-state drive body 16 to be placed in the connection groove formed on the workbench 1 through the limiting rod 17.
[0071] Set the first motor 203. The output end of the first motor 203 drives the transmission shaft 204 and the first gear 205 to rotate along the moving block 202. The first gear 205 rotates and then moves along the rack 201. The moving block 202 drives the solid-state drive body 16 clamped by the connecting frame 5, the hydraulic cylinder 6, the connecting plate 7, the buffer assembly 8 and the clamping assembly 9 to move along the sliding groove formed on the positioning block 200. When moving and touching the limiting plate 12, at this time, the solid-state drive body 16 is located above the detector 401 in the front row. Pass the solid-state drive body 16 through the two limiting blocks 402 and connect it to the detector 401. After placing the solid-state drive body 16 completely on the detectors 401 in the first row, set the double-acting cylinder 11. The double-acting cylinder 11 drives the limiting plates 12 to retract inward, so that the moving block 202 can move to the next row along the rack 201 through the first gear 205, enabling the solid-state drive body 16 to be accurately positioned during detection and installation, effectively ensuring the accuracy of the position of the solid-state drive body 16 during detection, so as to improve the efficiency of the solid-state drive body 16 during detection. Moreover, the placing plate 13 is connected to the workbench 1 through the limiting rod 17, making the placing plate 13 more convenient to disassemble.
[0072] Embodiment III
[0073] In the present invention, preferably, a connecting frame 5 is fixedly connected to the top of the moving block 202, and two hydraulic cylinders 6 are fixedly connected to the top of the connecting frame 5. At the same time, the output end of the hydraulic cylinder 6 is fixedly connected to a connecting plate 7, and buffer assemblies 8 are installed on both lateral sides of the bottom of the connecting plate 7. Moreover, a clamping assembly 9 is installed on the side of the buffer assembly 8 away from the connecting plate 7.
[0074] It should be noted that the output end of the hydraulic cylinder 6 is movably installed on the connecting frame 5 to facilitate telescopic movement.
[0075] In the present invention, preferably, the buffer assembly 8 includes a first fixing block 800, the first fixing block 800 is fixedly connected to the bottom of the connecting plate 7, a second spring 802 is fixedly installed in the first fixing block 800, and an extension block 801 is fixedly connected to the side of the second spring 802 away from the first fixing block 800. The extension block 801 slides in the middle of one side of the first fixing block 800;
[0076] Moving plates 804, two groups of moving plates 804 are provided and are both arranged in the sliding grooves opened on both sides of the first fixing block 800. Guide columns 803 are slidably connected to the surfaces of the moving plates 804, and the inner sides of the guide columns 803 are fixedly connected to the extension block 801.
[0077] In the present invention, preferably, the clamping assembly 9 includes a second fixing block 900, the second fixing block 900 is fixedly connected to one end of the extension block 801 away from the second spring 802;
[0078] A third motor 901, the third motor 901 is fixedly connected in the second fixing block 900, the output end of the third motor 901 is fixedly connected to a connecting shaft 902, and a second gear 903 is fixedly connected to the middle of the connecting shaft 902. At the same time, the second gear 903 is meshed with a third gear 904, and a connecting column 905 is fixedly connected to the middle of the third gear 904;
[0079] A bidirectional lead screw 906, the bidirectional lead screw 906 is fixedly connected to the middle of the connecting column 905, and the bidirectional lead screw 906 is movably installed in the sliding groove opened in the second fixing block 900;
[0080] Clamping blocks 907, two groups of clamping blocks 907 are provided and are respectively threadedly connected to two groups of opposite threads of the bidirectional lead screw 906.
[0081] It should be noted that both the third motor 901 and the hydraulic cylinder 6 are controlled by wireless signal transmission through a controller (not shown). The side of the clamping block 907 away from the bidirectional lead screw 906 is made of rubber material. The connecting shaft 902 moves in the second fixing block 900, and the second gear 903 moves in the groove opened in the second fixing block 900.
[0082] During the implementation process, first, a hydraulic cylinder 6 is set. The output end of the hydraulic cylinder 6 drives the connecting plate 7, the buffer assembly 8, and the clamping assembly 9 to move downward to above the storage block 15 where the solid-state drive body 16 is placed. A motor three 901 is set. The output end of the motor three 901 drives the connecting shaft 902 and the gear two 903 to rotate along the fixture two 900. The gear two 903 drives the gear three 904 to rotate. The gear three 904 drives the connecting column 905 and the bidirectional lead screw 906 to rotate. The rotation of the bidirectional lead screw 906 causes the two clamping blocks 907 to move inward along the bidirectional lead screw 906 and the chute opened in the fixture two 900 to clamp both ends of the solid-state drive body 16. A hydraulic cylinder 6 is set. The output end of the hydraulic cylinder 6 drives the connecting plate 7, the buffer assembly 8, and the two clamping blocks 907 to clamp the solid-state drive body 16 and move upward. A motor one 203 is set. The motor one 203 drives the transmission shaft 204 and the gear one 205 to rotate, so that the moving block 202 drives the connecting frame 5, the connecting plate 7, the buffer assembly 8, and the two clamping blocks 907 to clamp the solid-state drive body 16 and move along the rack 201 and the chute opened in the positioning block 200. When it moves to the limiting plate 12, a hydraulic cylinder 6 is set. The output end of the hydraulic cylinder 6 drives the connecting plate 7, the buffer assembly 8, and the solid-state drive body 16 clamped by the two clamping blocks 907 to move downward, so that the solid-state drive body 16 passes through the two limiting blocks 402 and stably inserts into the detector 401. When the solid-state drive body 16 inserts into the detector 401, due to the extrusion force of the clamping block 907 and the fixture two 900 on the extension block 801, the extension block 801 drives the guide post 803 to move along the moving plate 804 and the chute to squeeze the spring two 802, so that the solid-state drive body 16 can be buffered when inserting into the detector 401, avoiding damage caused by excessive force when the solid-state drive body 16 is connected to the detector 401, effectively improving the connection effect between the solid-state drive body 16 and the detector 401, and being able to automatically clamp and place the solid-state drive body 16 for detection, effectively improving the efficiency and speed of the solid-state drive body 16 during detection, thus improving the automation effect.
[0083] The above has described a specific embodiment of the present invention in detail, but the described content is only the preferred embodiment of the present invention and cannot be considered as limiting the scope of implementation of the present invention. Any equivalent changes and improvements made within the scope of the application of the present invention should still fall within the scope covered by the patent of the present invention.
Claims
1. An auxiliary detection device for solid state hard disk production, characterized in that: The invention comprises a heat dissipation component (3), the heat dissipation component (3) being arranged on a fixing plate (10), the heat dissipation component (3) being used to dissipate heat when a solid state hard disk body (16) is detected to ensure the stability of the detection, the heat dissipation component (3) comprising a plurality of groups of small fans (306), the small fans (306) being arranged around the inner side of a connecting ring (305), the small fans (306) being used to dissipate heat from the solid state hard disk body (16); A limit assembly (4), the limit assembly (4) being arranged on the heat dissipation assembly (3), the limit assembly (4) being used to limit the solid state hard disk body (16) to maintain stability, the limit assembly (4) comprising a detector (401), the detector (401) being fixedly mounted on the fixing plate (10), the detector (401) being used to detect the solid state hard disk body (16).
2. The auxiliary detection device for solid state hard disk production according to claim 1, characterized in that: The heat dissipation assembly (3) further comprises a base plate (300), one end of the base plate (300) being fixedly connected to a first connection block (301), and the other end of the base plate (300) being fixedly connected to a second connection block (307); Motor 2 (302), wherein the motor 2 (302) is fixedly connected to the top of the connecting block 1 (301), the output end of the motor 2 (302) is fixedly connected to a reciprocating screw rod (303), and the surface of the reciprocating screw rod (303) is threadedly connected to a sliding block 1 (304); A positioning column (309), wherein the positioning column (309) is installed in a sliding groove provided in the second connecting block (307), and the surface of the positioning column (309) is slidably connected to the second sliding block (308); A connecting ring (305), the two ends of which are respectively fixed to the inner sides of the second sliding block (308) and the first sliding block (304).
3. The auxiliary detection device for solid state hard disk production according to claim 2, characterized in that: The reciprocating screw rod (303) is movably installed in the middle of the connecting block (301), the sliding block (304) slides in the sliding groove opened in the connecting block (301), and the sliding block (308) slides in the sliding groove opened in the connecting block (307).
4. The auxiliary detection device for solid state hard disk production according to claim 1, characterized in that: The limiting assembly (4) further comprises a connecting frame (400), wherein the connecting frame (400) is fixedly connected to the detector (401); A telescopic column (403), one end of the telescopic column (403) is fixedly connected to the inner side of the connection frame (400), and the other end of the telescopic column (403) is fixedly connected to the limit block (402); a spring 1 (404) is sleeved on the telescopic column (403); The limiting columns (405) are provided in two groups and are fixedly installed in the slide grooves opened on both sides of the connection frame (400); the surfaces of the limiting columns (405) are slidably connected to the sliding plates (406), and the inner sides of the sliding plates (406) are fixedly connected to the two ends of the limiting blocks (402).
5. The auxiliary detection device for solid state hard disk production according to claim 1, characterized in that: It also includes a workbench (1), a limit rod (17) slidably connected in a connection groove opened on one side of the workbench (1), and a placement plate (13) is fixedly connected to the top of the limit rod (17), and handles (14) are fixedly connected to both sides of the placement plate (13), and a plurality of storage blocks (15) are fixedly connected to the top of the placement plate (13), and a solid state hard disk body (16) is placed in each storage block (15), the fixed plate (10) is fixedly installed on the workbench (1), and moving components (2) are fixedly installed on both sides of the workbench (1).
6. The auxiliary detection device for solid state hard disk production according to claim 5, characterized in that: The moving assembly (2) comprises a positioning block (200), the positioning block (200) is fixed on two sides of the workbench (1), and a rack (201) is fixedly installed inside the positioning block (200); A moving block (202), wherein the moving block (202) slides in a slide groove provided in the positioning block (200), and the moving block (202) slides on the rack (201); Motor 1 (203), wherein the motor 1 (203) is fixed to one side of the outer surface of the moving block (202), the output end of the motor 1 (203) is fixedly connected to a transmission shaft (204), and the middle part of the transmission shaft (204) is fixedly connected to a gear 1 (205), and the gear 1 (205) is meshedly connected to the rack (201).
7. The auxiliary detection device for solid state hard disk production according to claim 5, characterized in that: A bidirectional cylinder (11) is fixedly connected in a sliding groove provided on one side of the fixed plate (10), and both ends of the bidirectional cylinder (11) are fixedly connected to a limiting plate (12), and the limiting plate (12) slides in the sliding groove provided on the fixed plate (10), and the limiting plate (12) penetrates and slides in the positioning block (200).
8. The auxiliary detection device for solid state hard disk production according to claim 6, characterized in that: The top of the moving block (202) is fixedly connected to a connecting frame (5), and the top of the connecting frame (5) is fixedly connected to two hydraulic cylinders (6), and the output end of the hydraulic cylinder (6) is fixedly connected to a connecting plate (7), and buffer components (8) are installed on both lateral sides of the bottom of the connecting plate (7), and a clamping component (9) is installed on the side of the buffer component (8) away from the connecting plate (7).
9. The auxiliary detection device for solid state hard disk production according to claim 8, characterized in that: The buffer assembly (8) comprises a fixing block 1 (800), the fixing block 1 (800) being fixedly connected to the bottom of the connecting plate (7), a spring 2 (802) being fixedly installed inside the fixing block 1 (800), and an extension block (801) being fixedly connected to a side of the spring 2 (802) away from the fixing block 1 (800), and the extension block (801) slidingly moves in the middle of one side of the fixing block 1 (800); The movable plates (804) are provided in two groups and are both arranged in the slide grooves opened on both sides of the fixed block (800). The surfaces of the movable plates (804) are slidably connected with guide columns (803), and the inner sides of the guide columns (803) are fixedly connected to the extension block (801).
10. The auxiliary detection device for solid state hard disk production according to claim 8, characterized in that: The clamping assembly (9) comprises a second fixing member (900), wherein the second fixing member (900) is fixedly connected to an end of the extension block (801) away from the second spring (802); Motor three (901), the motor three (901) is fixedly connected to the fixing part two (900), the output end of the motor three (901) is fixedly connected to a connecting shaft (902), and the middle of the connecting shaft (902) is fixedly connected to a gear two (903), while the gear two (903) is meshingly connected to a gear three (904), and the middle of the gear three (904) is fixedly connected to a connecting column (905); A bidirectional screw rod (906), the bidirectional screw rod (906) is fixedly connected to the middle part of the connecting column (905), and the bidirectional screw rod (906) is movably installed in a slide groove provided in the fixing second (900); The clamping block (907) is provided with two groups and is respectively threadedly connected to two groups of opposite threads of the bidirectional screw rod (906).
Citation Information
Patent Citations
Solid state disk detection device and detection method
CN119142804A