Mobile solid state disk with positioning function

Through the limiting plate and limiting block structure, the problem of easy separation of the protective case during impact is solved, the stable connection and sealing of the hard disk are achieved, and the protection effect and service life are improved.

CN223155667UActive Publication Date: 2025-07-25SHENZHEN HECHUANG IND CO LTD
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Patent Information

Application Number
CN202421972200.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-15
Publication Date
2025-07-25
Estimated Expiration
2034-08-15

AI Technical Summary

Technical Problem

When existing mobile solid-state drives are impacted, the magnetic blocks are prone to disengage, resulting in separation of the protective case and reducing the protection effect of the hard disk.

Method used

The limiting plate and limiting block structure are designed, and through the coordination between the limiting plate and the limiting block, the protective shell is not separated when impacted, and the sealing property at the connection is improved through the sealing gasket and the sealing ring.

Benefits of technology

It improves the connection stability of the protective case, reduces the probability of separation caused by impact, enhances the protection effect of the hard disk, and reduces the possibility of dust and water entering the hard disk, extending the service life of the hard disk.

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Abstract

The utility model relates to the technical field of solid state disks, in particular to a mobile solid state disk with a positioning function, which comprises two protective shells, a hard disk main body is arranged between the two protective shells, two first fixing seats are fixedly arranged on the side face of one protective shell, and connecting plates are fixedly arranged at the top ends of the two first fixing seats. Moving blocks are fixedly arranged at the top ends of the two connecting plates, two second fixing seats are fixedly arranged on the side face of the other protective shell, limiting plates are fixedly arranged at the bottom ends of the two second fixing seats, movable plates are arranged at the top ends of the two limiting plates, and limiting blocks are fixedly arranged on one sides of the two movable plates; the beneficial effects of the utility model are that on the premise that the dismounting and mounting convenience of the hard disk main body is not affected, the stability of the two protective shells during connection is improved, the probability that the two protective shells are separated due to impact is reduced, and the protective effect of the device on the hard disk main body is improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of solid state drives, in particular to a mobile solid state drive with a positioning function. Background Art

[0002] A mobile solid state drive is a portable storage device that stores data through a solid state electronic storage chip array, which is portable and durable, convenient for data backup and recovery, large file transfer, etc.

[0003] The patent specification with the publication number CN221200756U discloses a mobile solid state drive with a positioning function, including a mobile hard disk body and a protective case. A data interface is provided on the mobile hard disk body, and the mobile hard disk body is surrounded by a protective case. The protective case is composed of a pair of symmetric protective shells. An annular buffer pad is installed on the inner side wall of the protective shell, and a plurality of uniformly distributed buffer components are arranged in the protective shell. This device can achieve a reusable protective case designed outside the mobile hard disk, and multiple groups of buffer components are arranged in the case body, which can quantitatively absorb and monitor the vibration force of the hard disk during transportation. Through the cooperation of the monitoring rod and the extrusion structure, the magnitude of the maximum force value can be recorded. Consumers only need to observe the position of the monitoring rod in the transparent cover to judge the impact situation during transportation, clarify responsibilities. At the same time, the structural design takes into account the reuse requirements and realizes the reuse of the monitoring results.

[0004] However, in the implementation of related technologies, it is found that the above-mentioned mobile solid state drive with a positioning function has the following problems: This device buffers the impact force received by the hard disk body through a damper, drives the hard disk body to reset through a buffer spring, protects the hard disk body through a protective shell, and adsorbs the two protective shells together through magnetic blocks to improve the disassembly and assembly efficiency of the protective shell. The buffer spring will apply a certain extrusion force to the protective shell during use, which will reduce the tightness of the connection between the two magnetic blocks. When the protective shell is impacted, it is easy to cause the two magnetic blocks to disengage, and then the two protective shells will disengage, which is likely to cause the hard disk body to be directly impacted and damaged, reducing the protection effect of the device on the hard disk body. In view of this, a mobile solid state drive with a positioning function is provided to overcome the above defects. Summary of the Utility Model

[0005] The purpose of the utility model is to solve the defects existing in the prior art, and to propose a mobile solid state drive with a positioning function.

[0006] To achieve the above object, the utility model adopts the following technical solutions: A mobile solid-state hard disk with a positioning function, including two protective cases. A hard disk body is arranged between the two protective cases. Two first fixing seats are fixedly arranged on the side of one of the protective cases. Connecting plates are fixedly arranged at the tops of the two first fixing seats. Moving blocks are fixedly arranged at the tops of the two connecting plates. Two second fixing seats are fixedly arranged on the side of the other protective case. Limiting plates are fixedly arranged at the bottoms of the two second fixing seats. Moving plates are arranged at the tops of the two limiting plates. Limiting blocks are fixedly arranged on one side of each of the two moving plates. A number of positioning rods are fixedly arranged on one side of each of the two second fixing seats. Compression springs are arranged on the sides of the number of positioning rods. One sides of the number of compression springs are respectively fixedly connected to the other sides of the two moving plates. The other sides of the number of compression springs are respectively fixedly connected to one sides of the two second fixing seats.

[0007] As a further description of the above technical solution: A number of transparent covers are fixedly arranged on the outer sides of the two protective cases. A number of observation rods are slidably connected inside the two protective cases. Two buffer plates are arranged between the number of observation rods. One sides of the two buffer plates are respectively fixedly connected to one sides of the number of observation rods. A number of reset springs are fixedly arranged on one side of each of the two buffer plates. One sides of the number of reset springs are respectively fixedly connected to the interiors of the two protective cases. Dampers are arranged inside the number of reset springs. One sides of the number of dampers are respectively fixedly connected to the interiors of the two protective cases. One sides of the number of buffer plates are respectively fixedly connected to the other sides of the number of dampers. The buffer plates facilitate reducing the probability of damage to the hard disk body.

[0008] As a further description of the above technical solution: First limiting grooves are respectively opened inside the two limiting plates. The inner parts of the two first limiting grooves are respectively in contact with the sides of the two moving blocks. The limiting plates facilitate limiting the moving blocks, so that the moving blocks cannot move horizontally.

[0009] As a further description of the above technical solution: Second limiting grooves are respectively opened inside the two moving blocks. The inner parts of the two second limiting grooves are respectively in contact with the sides of the two limiting blocks. The limiting blocks facilitate limiting the moving blocks, so that the moving blocks cannot move vertically.

[0010] As a further description of the above technical solution: A number of moving holes are respectively opened inside the two moving plates. The inner parts of the number of moving holes are respectively in contact with the sides of the number of positioning rods. The moving plates facilitate driving the limiting blocks to move.

[0011] As a further description of the above technical solution: A first sealing gasket is arranged at the top of one of the protective cases. The bottom end of the first sealing gasket is fixedly connected to the top end of the corresponding protective case. The first sealing gasket facilitates fixing the first sealing ring.

[0012] As a further description of the above technical solution: A second sealing gasket is provided at the bottom end of the other protective shell. The top end of the second sealing gasket is fixedly connected to the top end of the corresponding protective shell. The second sealing gasket facilitates the fixation of the second sealing ring.

[0013] As a further description of the above technical solution: Two first sealing rings are fixedly provided at the top end of the first sealing gasket. A second sealing ring is fixedly provided at the bottom end of the second sealing gasket. The sides of the second sealing ring are respectively attached to one side of the two first sealing rings. The first sealing ring and the second sealing ring facilitate improving the sealing performance at the connection of the two protective shells.

[0014] The utility model has the following beneficial effects:

[0015] A mobile solid-state drive with a positioning function designed by the utility model, through design cooperation, presses two movable plates, so that the limiting block disengages from the movable block, moves the movable block and the limiting plate up and down respectively, so that the movable block and the limiting plate are separated, and then the two protective shells are separated. At this time, the hard disk main body can be taken out. When the hard disk main body is placed in the protective shell, the two protective shells are fitted together, so that the movable block enters the inside of the limiting plate. Release the movable plate, and drive the limiting block to enter the inside of the movable block by squeezing the spring, so that the movable block is limited, and then the two protective shells are fixed together, so that the hard disk main body is convenient for disassembly and assembly. When the protective shell is impacted, the protective shell is limited by the limiting plate and the movable block, so that the two protective shells do not slide relative to each other. The movable block is limited by the limiting block, so that the two protective shells cannot move away from each other. Therefore, on the premise of not affecting the disassembly and assembly convenience of the hard disk main body, it is convenient to improve the stability when the two protective shells are connected, convenient to reduce the probability of separation of the two protective shells caused by impact, and convenient to improve the protection effect of the device on the hard disk main body;

[0016] A mobile solid-state drive with a positioning function designed by the utility model, through design cooperation, the connection between the two protective shells is sealed by the first sealing gasket, the second sealing gasket, the first sealing ring and the second sealing ring, so that there is a high sealing performance between the two protective shells, so that the probability of external water and dust entering the inside of the protective shell through the connection between the two protective shells can be reduced, convenient to reduce the probability of short circuit caused by dust and water entering the inside of the hard disk main body, and convenient to improve the service life of the hard disk main body. Description of the Drawings

[0017] Figure 1 is the overall structural schematic diagram of the utility model;

[0018] Figure 2 is the exploded structural schematic diagram of the protective shell of the utility model;

[0019] Figure 3 Schematic diagram of the splitting structure of the limit plate of the present utility model;

[0020] Figure 4 Schematic diagram of the splitting structure of the protective shell of the present utility model;

[0021] Figure 5 For the present utility model Figure 1 Schematic diagram of the structure at position A.

[0022] Legend:

[0023] 1. Protective shell; 2. Hard disk main body; 3. First fixing seat; 4. Connecting plate; 5. Moving block; 6. Second fixing seat; 7. Limit plate; 8. Movable plate; 9. Limit block; 10. Positioning rod; 11. Compression spring; 12. Transparent cover; 13. Observation rod; 14. Buffer plate; 15. Reset spring; 16. Damper; 17. First sealing gasket; 18. Second sealing gasket; 19. First sealing ring; 20. Second sealing ring. Detailed implementation manners

[0024] Referring to Figures 1-5 , a mobile solid-state hard disk with a positioning function provided by the present utility model: includes two protective shells 1, a hard disk main body 2 is arranged between the two protective shells 1, two first fixing seats 3 are fixedly arranged on the side surface of one of the protective shells 1, the first fixing seats 3 are convenient for fixing the connecting plate 4, connecting plates 4 are fixedly arranged at the tops of the two first fixing seats 3, the connecting plates 4 are convenient for fixing the moving blocks 5, moving blocks 5 are fixedly arranged at the tops of the two connecting plates 4, two second fixing seats 6 are fixedly arranged on the side surface of the other protective shell 1, limit plates 7 are fixedly arranged at the bottoms of the two second fixing seats 6, movable plates 8 are arranged at the tops of the two limit plates 7, limit blocks 9 are fixedly arranged on one side of the two movable plates 8, a plurality of positioning rods 10 are fixedly arranged on one side of the two second fixing seats 6, the positioning rods 10 are convenient for improving the stability when the movable plates 8 move, compression springs 11 are arranged on the side surfaces of the plurality of positioning rods 10, the compression springs 11 are convenient for extruding the movable plates 8, one sides of the plurality of compression springs 11 are fixedly connected to the other sides of the two movable plates 8 respectively, and the other sides of the plurality of compression springs 11 are fixedly connected to the side surfaces of the two second fixing seats 6 respectively.

[0025] As a further implementation of the above technical solution: A number of transparent covers 12 are fixedly provided on the outer sides of the two protective cases 1. A number of observation rods 13 are slidably connected inside the two protective cases 1. Two buffer plates 14 are provided between the a number of observation rods 13. One sides of the two buffer plates 14 are fixedly connected to one sides of the a number of observation rods 13 respectively. A number of reset springs 15 are fixedly provided on one sides of the two buffer plates 14. One sides of the a number of reset springs 15 are fixedly connected to the interiors of the two protective cases 1 respectively. Dampers 16 are provided inside the a number of reset springs 15. One sides of the a number of dampers 16 are fixedly connected to the interiors of the two protective cases 1 respectively. One sides of the a number of buffer plates 14 are fixedly connected to the other sides of the a number of dampers 16 respectively. The buffer plate 14 facilitates reducing the probability of damage to the hard disk body 2.

[0026] As a further implementation of the above technical solution: First limit grooves are formed inside the two limit plates 7. The inner parts of the two first limit grooves are respectively in contact with the sides of the two moving blocks 5. The limit plate 7 facilitates limiting the moving block 5, so that the moving block 5 cannot move horizontally.

[0027] As a further implementation of the above technical solution: Second limit grooves are formed inside the two moving blocks 5. The inner parts of the two second limit grooves are respectively in contact with the sides of the two limit blocks 9. The limit block 9 facilitates limiting the moving block 5, so that the moving block 5 cannot move vertically.

[0028] As a further implementation of the above technical solution: A number of moving holes are formed inside the two movable plates 8. The inner parts of the a number of moving holes are respectively in contact with the sides of the a number of positioning rods 10. The movable plate 8 facilitates driving the limit block 9 to move.

[0029] During specific implementation: the impact force on the hard disk body 2 is buffered by the damper 16 and the buffer plate 14, the hard disk body 2 is reset by the reset spring 15, and the hard disk body 2 is protected by the protective shell 1. When the hard disk body 2 is impacted, the observation rod 13 is driven to squeeze into the transparent cover 12. The position of the observation rod 13 in the transparent cover 12 is observed by the observation equipment, and the magnitude of the impact force on the hard disk body 2 can be judged, so as to judge the impact situation of the hard disk body 2 during transportation and clarify the responsibility. When the hard disk body 2 needs to be removed from the protective shell 1, press the two movable plates 8. Thereby, the two movable plates 8 are driven to approach each other, thereby driving the two limit blocks 9 to approach each other, so that the limit block 9 is separated from the moving block 5, so that the moving block 5 loses its limit, and the moving block 5 and the limit plate 7 are moved up and down respectively, so that the moving block 5 is separated from the limit plate 7, so that the two protective shells 1 are separated, and the hard disk body 2 can be taken out at this time. When the hard disk body 2 is placed in the protective shell 1, the two protective shells 1 are attached together, so that the moving block 5 enters the interior of the limit plate 7. At this time, the moving block 5 is limited by the limit plate 7 and cannot move horizontally, so that the two protective shells 1 are limited , unable to move horizontally relative to each other, release the movable plate 8, and squeeze the movable plate 8 through the squeezing spring 11, so as to drive the two movable plates 8 away from each other, thereby driving the two limit blocks 9 away from each other, so that the limit blocks 9 enter the interior of the movable block 5, so that the movable block 5 is limited and cannot be separated from the limit plate 7, so that the movable block 5 and the limit plate 7 are fixed together, so that the two protective shells 1 are fixed together, when the protective shell 1 is hit, the protective shell 1 is limited by the limit plate 7 and the movable block 5, so that the two protective shells 1 will not slide relative to each other, and the limit blocks 9 are used to The moving block 5 is limited so that the moving block 5 and the limiting plate 7 cannot be separated, so that the two protective shells 1 cannot move away from each other, so that the two protective shells 1 are not easy to separate when they are hit. In the process of disassembling and assembling the hard disk body 2, it is only necessary to move the movable plate 8 to separate the two protective shells 1, so that the hard disk body 2 is easy to disassemble and assemble. Therefore, the device can improve the stability of the two protective shells 1 when connected without affecting the convenience of disassembly and assembly of the hard disk body 2, and can reduce the probability of separation of the two protective shells 1 due to impact, so as to improve the protective effect of the device on the hard disk body 2.

[0030] As a further implementation scheme of the above technical scheme: a first sealing gasket 17 is provided at the top of one of the protective shells 1 , and the bottom end of the first sealing gasket 17 is fixedly connected to the top of the corresponding protective shell 1 , so that the first sealing gasket 17 is convenient for fixing the first sealing ring 19 .

[0031] As a further implementation scheme of the above technical scheme: a second sealing gasket 18 is provided at the bottom end of another protective shell 1 , and the top end of the second sealing gasket 18 is fixedly connected to the top end of the corresponding protective shell 1 , so that the second sealing gasket 18 is convenient for fixing the second sealing ring 20 .

[0032] As a further implementation of the above technical solution: Two first sealing rings 19 are fixedly provided at the top end of the first gasket 17, and a second sealing ring 20 is fixedly provided at the bottom end of the second gasket 18. The sides of the second sealing ring 20 are respectively attached to one side of the two first sealing rings 19. The first sealing ring 19 and the second sealing ring 20 are convenient for improving the sealing performance at the connection of the two protective cases 1.

[0033] During specific implementation: When the two protective cases 1 are combined together, the second sealing ring 20 enters the groove between the two first sealing rings 19. The side of the first sealing ring 19 is attached to the side of the second sealing ring 20. The bottom end of the second sealing ring 20 is attached to the top end of the first gasket 17, and the top end of the first sealing ring 19 is attached to the bottom end of the second gasket 18, making the connection between the first gasket 17, the second gasket 18, the first sealing ring 19 and the second sealing ring 20 tight. Through the first gasket 17, the second gasket 18, the first sealing ring 19 and the second sealing ring 20, it is convenient to seal the connection between the two protective cases 1, so that there is a high sealing performance between the two protective cases 1, thereby reducing the probability that external water and dust enter the inside of the protective case 1 through the connection between the two protective cases 1, facilitating reducing the probability that dust and water enter the hard disk main body 2 and cause a short circuit, and facilitating improving the service life of the hard disk main body 2.

[0034] Finally, it should be noted that the above are only the preferred embodiments of the present invention and are not used to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.

Claims

1. A mobile solid-state drive with a positioning function, comprising two protective cases (1), characterized in that: A hard disk body (2) is provided between the two protective cases (1). On the side of one of the protective cases (1), two first fixing seats (3) are fixedly provided. At the top of each of the two first fixing seats (3), a connecting plate (4) is fixedly provided. At the top of each of the two connecting plates (4), a moving block (5) is fixedly provided. On the side of the other protective case (1), two second fixing seats (6) are fixedly provided. At the bottom of each of the two second fixing seats (6), a limiting plate (7) is fixedly provided. At the top of each of the two limiting plates (7), a movable plate (8) is provided. On one side of each of the two movable plates (8), a limiting block (9) is fixedly provided. On one side of each of the two second fixing seats (6), a plurality of positioning rods (10) are fixedly provided. On the side of each of the plurality of positioning rods (10), a compression spring (11) is provided. One side of each of the plurality of compression springs (11) is fixedly connected to the other side of each of the two movable plates (8) respectively. The other side of each of the plurality of compression springs (11) is fixedly connected to one side of each of the two second fixing seats (6) respectively.

2. The mobile solid-state drive with a positioning function according to claim 1, wherein: On the outer side of each of the two protective cases (1), a plurality of transparent covers (12) are fixedly provided. Inside each of the two protective cases (1), a plurality of observation rods (13) are slidably connected. Between the plurality of observation rods (13), two buffer plates (14) are provided. One side of each of the two buffer plates (14) is fixedly connected to one side of the plurality of observation rods (13) respectively. On one side of each of the two buffer plates (14), a plurality of return springs (15) are fixedly provided. One side of each of the plurality of return springs (15) is fixedly connected to the inside of each of the two protective cases (1) respectively. Inside each of the plurality of return springs (15), a damper (16) is provided. One side of each of the plurality of dampers (16) is fixedly connected to the inside of each of the two protective cases (1) respectively. One side of each of the two buffer plates (14) is fixedly connected to the other side of each of the plurality of dampers (16) respectively.

3. The mobile solid-state drive with a positioning function according to claim 1, wherein: Inside each of the two limiting plates (7), a first limiting groove is formed. The inside of each of the two first limiting grooves is respectively in contact with the side of each of the two moving blocks (5).

4. The mobile solid-state drive with a positioning function according to claim 1, characterized in that: Inside each of the two moving blocks (5), a second limiting groove is formed. The inside of each of the two second limiting grooves is respectively in contact with the side of each of the two limiting blocks (9).

5. The mobile solid-state drive with a positioning function according to claim 1, wherein: Inside each of the two movable plates (8), a plurality of movable holes are formed. The inside of each of the plurality of movable holes is respectively in contact with the side of each of the plurality of positioning rods (10).

6. The mobile solid-state drive with a positioning function according to claim 1, wherein: On the top of one of the protective cases (1), a first sealing gasket (17) is provided. The bottom end of the first sealing gasket (17) is fixedly connected to the top end of the corresponding protective case (1).

7. The mobile solid-state drive with a positioning function according to claim 6, characterized in that: On the bottom of the other protective case (1), a second sealing gasket (18) is provided. The top end of the second sealing gasket (18) is fixedly connected to the top end of the corresponding protective case (1).

8. A mobile solid-state drive with a positioning function according to claim 7, characterized in that: On the top end of the first sealing gasket (17), two first sealing rings (19) are fixedly provided. On the bottom end of the second sealing gasket (18), a second sealing ring (20) is fixedly provided. The side of the second sealing ring (20) is respectively in contact with one side of the two first sealing rings (19).

Citation Information

Patent Citations

  • Mobile solid state disk with positioning function

    CN221200756U