Temperature control device for solid state hard disk
By designing a solid-state drive (SSD) temperature control device, and utilizing the combination of a hydraulic sleeve and copper tube liquid cooling oil, the SSD achieves close contact and automatic heat dissipation at high temperatures, thus solving the high-temperature problem of SSDs, extending their service life, and preventing data loss.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- SHENZHEN KINGSPEC ELECTRONICS TECH
- Filing Date
- 2023-07-10
- Publication Date
- 2026-07-21
Smart Images

Figure CN116798461B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of hard disk protection technology, specifically to a temperature control device for solid-state drives. Background Technology
[0002] SSDs consist of a control unit and storage units. Solid-state drives (SSDs) are completely identical to traditional hard drives (HDDs) in terms of interface specifications and definitions, functions, and usage. Their form factor and size are also largely the same (except for emerging forms like U.2 and M.2 SSDs, which have completely different sizes and forms from SATA HDDs). They are widely used in many fields, including military, automotive, industrial control, video surveillance, network monitoring, network terminals, power, medical, aviation, and navigation equipment. Although they are more expensive, they are becoming increasingly common in the DIY market. Because SSD technology differs from traditional hard drive technology, many new storage device manufacturers have emerged. Manufacturers only need to purchase NAND flash memory chips, add appropriate control chips, and write main controller code to manufacture SSDs.
[0003] The following problems exist in the existing technology:
[0004] In current technology, solid-state drives (SSDs) experience temperature increases during use, especially during prolonged periods and in high summer temperatures, where temperatures can even reach 80 degrees Celsius. Excessive heat can negatively impact the lifespan and efficiency of SSDs and may even lead to data loss. Current technologies often lack further cooling for SSDs or only have heatsinks, resulting in limited self-cooling capabilities and a lack of effective methods to prevent overheating. Therefore, we propose a temperature control device for SSDs to address these issues. Summary of the Invention
[0005] The purpose of this invention is to provide a temperature control device for solid-state drives to solve the problems mentioned in the background art.
[0006] To achieve the above-mentioned objectives, the present invention adopts the following technical solution:
[0007] This invention provides a temperature control device for a solid-state drive (SSD), comprising a mounting shell, wherein two mounting shells are provided, and their adjacent end faces are fixedly connected to form a cavity for securing the SSD. A fixing assembly for connecting a slot is provided at the opening of each mounting shell. A heat dissipation assembly for cooling the SSD is provided on the inner wall of each mounting shell. A triggering assembly for controlling its contact with the SSD is provided on one side of the heat dissipation assembly, and the triggering assembly is disposed within the mounting shell. The fixing assembly includes multiple hydraulic sleeves for storing hydraulic oil, one end of which is fixedly connected to the inner wall of the mounting shell. The hydraulic sleeves are evenly distributed along the length of the fixed shell. The hydraulic sleeves are located at the opening of the fixed shell. A fixed sleeve for stabilizing the return spring is fixedly connected to the bottom of the inner cavity of the hydraulic sleeve. One end of the return spring is sleeved in the fixed sleeve and contacts the bottom of the inner cavity of the hydraulic sleeve. A positioning sleeve for connecting the moving seat is sleeved on the surface of the other end of the return spring. The end of the positioning sleeve away from the return spring is fixedly connected to the moving seat. The moving seat is slidably connected to the inner wall of the hydraulic sleeve. A second mounting groove for fixing the sealing ring is opened on the surface of the moving seat. The sealing ring is sleeved in the second mounting groove and slidably connected to the groove wall.
[0008] Preferably, the inner wall of the fixed shell is provided with a first mounting groove for installing multiple components, and the groove wall of the first mounting groove is provided with multiple communication windows for air circulation between the heat dissipation components and the outside, and the multiple communication windows are evenly distributed along the length direction of the fixed shell.
[0009] Preferably, multiple sealing rings are provided, and the multiple sealing rings are evenly distributed along the length direction of the moving seat. The outer ring wall of the sealing ring is slidably connected to the inner wall of the hydraulic sleeve. A hydraulic tappet for supporting the fixed seat is fixedly connected to one end of the moving seat near the opening of the fixed shell, and the end of the hydraulic tappet away from the moving seat is fixedly connected to the fixed seat.
[0010] Preferably, the fixed base has a buffer pad at the end away from the hydraulic tappet for contacting the slot, the hydraulic sleeve is fixedly connected to a hydraulic hose for connecting to the hydraulic chamber at the end away from the fixed base, the bottom of the inner cavity of the hydraulic sleeve has a connecting hole for connecting to the hydraulic hose, and the end of the hydraulic hose away from the hydraulic sleeve passes through the fixed shell and is fixedly connected to the hydraulic chamber.
[0011] Preferably, the hydraulic sleeve is connected to the hydraulic chamber via a hydraulic hose. There are two hydraulic chambers, which are fixedly connected to the inner wall of the fixed shell. The two hydraulic chambers are symmetrically distributed along the axis of the fixed shell. Each hydraulic chamber has a top seat for supporting the heat dissipation assembly, and the top seat is slidably connected to the inner wall of the hydraulic chamber.
[0012] Preferably, the heat dissipation assembly includes a copper tube for contacting the solid-state drive. The copper tube has a flat, curved structure and contains liquid cooling oil to improve heat dissipation. The side of the copper tube near the inner wall of the fixed housing is fixedly connected to the side of the top seat away from the hydraulic chamber. A plurality of matching fans are provided on the side of the copper tube near the connecting window, and the fans are placed inside the connecting window. A plurality of filling grooves for storing liquid metal are opened on the side of the copper tube away from the fans, and the plurality of filling grooves are evenly distributed on the surface of the copper tube.
[0013] Preferably, the triggering component includes a storage cylinder for storing nitrogen gas. The storage cylinder is disposed inside a fixed shell and is fixedly connected to a copper tube on one side. Two connecting pipes for mounting a moving rod are fixedly connected to the side of the storage cylinder away from the copper tube. The two connecting pipes are symmetrically distributed along the axis of the storage cylinder and communicate with the storage cylinder. The ratio of the inner diameter area of the connecting pipe to the cross-sectional area of the storage cylinder is 1:10.
[0014] Preferably, the moving rod is placed inside the connecting pipe, and a rubber seat for sealing the pipe is fixedly connected to one end of the moving rod inside the connecting pipe. The rubber seat is slidably connected to the wall of the connecting pipe. A connecting seat for installing multiple parts is fixedly connected to the end of the moving rod away from the connecting pipe. A fourth mounting groove for installing a rotating rod is opened on the side of the connecting seat near the inner wall of the fixed shell.
[0015] Preferably, the rotating rod is placed in the fourth mounting groove and one end is rotatably connected to the bottom of the fourth mounting groove. The fourth mounting groove is provided with a plurality of coil springs for driving the rotating rod to move. The coil springs are sleeved on the surface of the rotating rod and are evenly distributed along the length of the rotating rod. One end of the coil spring is fixedly connected to the surface of the rotating rod and the other end of the coil spring is fixedly connected to the wall of the fourth mounting groove.
[0016] Preferably, the end of the rotating rod away from the connecting seat is fixedly connected to a connecting wire for connecting the fan circuit and a metal plate. The end of the metal plate away from the rotating rod is provided with an ohmic resistor for short-circuiting the fan. The inner wall of the fixed housing is provided with a fifth mounting groove for installing the ohmic resistor. The ohmic resistor is fixedly connected to the bottom of the fifth mounting groove. The end of the metal plate near the inner wall of the fixed housing is slidably connected to the ohmic resistor. Both the ohmic resistor and the metal plate are provided in the fan circuit.
[0017] Compared with existing technologies, one or more of the above technical solutions have the following beneficial effects:
[0018] This invention features a fixing component that works in conjunction with a heat dissipation component. A hydraulic tappet for supporting the fixing seat is fixedly connected to one end of the moving seat near the opening of the fixing shell. The end of the hydraulic tappet away from the moving seat is fixedly connected to the fixing seat. A buffer pad for contacting the slot is provided at the end of the fixing seat away from the hydraulic tappet. A top seat for supporting the heat dissipation component is located within the hydraulic chamber. Under the elastic force of the return spring at the bottom of the hydraulic sleeve, hydraulic oil remains within the hydraulic sleeve. The amount of hydraulic oil inside the hydraulic chamber is small, insufficient to drive the heat dissipation copper pipe to contact the hard drive. Furthermore, the fixing seat at the top of the hydraulic sleeve blocks the hard drive within the fixing shell, facilitating storage of the hard drive. When the hard drive is connected to the motherboard, the amount of oil inside the hydraulic chamber increases, causing the top seat to move closer to the copper pipe. The top seat drives the copper pipe and a trigger component on one side to make close contact with the hard drive, facilitating subsequent cooling of the hard drive. This invention provides both storage and heat dissipation / cooling functions.
[0019] It is equipped with a trigger, and its storage cylinder is filled with nitrogen. The heat dissipation component will only be activated when the hard drive is hot. An ohmic resistor for short-circuiting the fan is located at the end of the metal plate away from the rotating rod. Both the ohmic resistor and the metal plate are located in the fan circuit. Because when the hard drive temperature is low, most of the ohmic resistor itself will be in the fan circuit, preventing the fan from starting properly. As the metal plate gets closer to the bottom of the ohmic resistor, the resistance in the circuit becomes smaller and smaller. As the temperature rises, the resistance in the circuit becomes smaller and smaller, resulting in a larger current in the circuit. The faster the fan speed, the better the heat dissipation effect on the hard drive. It has an automatic heat dissipation effect, good protection for the hard drive, and extends the lifespan of the solid-state drive. Attached Figure Description
[0020] The accompanying drawings, which form part of this invention, are used to provide a further understanding of the invention. The illustrative embodiments of the invention and their descriptions are used to explain the invention and do not constitute an improper limitation of the invention.
[0021] Figure 1 This is a schematic diagram of the overall structure of the present invention;
[0022] Figure 2 This is a schematic diagram of the assembly structure of the heat dissipation component and the mounting base of the present invention;
[0023] Figure 3 This is the invention Figure 2 Enlarged structural diagram at point A in the middle;
[0024] Figure 4 This is a schematic diagram of the fixed component structure of the present invention;
[0025] Figure 5 This is a schematic diagram of the inner wall structure of the fixing seat of the present invention;
[0026] Figure 6 This is the invention Figure 5Enlarged structural diagram at point B;
[0027] Figure 7 This is a schematic diagram of the assembly structure of the copper tube and trigger component of the present invention;
[0028] Figure 8 This is a schematic diagram of the assembly structure of the trigger component and the fixing base of the present invention;
[0029] Figure 9 This is the invention Figure 7 Enlarged structural diagram at point C.
[0030] Figure 10 This is the invention Figure 8 Enlarged structural diagram at point D.
[0031] Figure 11 This is a schematic diagram of the copper tube and fan assembly structure of the present invention.
[0032] In the picture:
[0033] 1. Fixed housing; 11. First mounting slot; 12. Communicating window; 2. Fixing assembly; 21. Hydraulic sleeve; 22. Hydraulic hose; 23. Communicating hole; 24. Fixed cylinder; 25. Return spring; 26. Positioning cylinder; 27. Moving seat; 28. Second mounting slot; 29. Sealing ring; 291. Hydraulic tappet; 292. Fixed seat; 293. Third mounting slot; 294. Buffer pad; 295. Hydraulic chamber; 296. Top seat; 3. Heat dissipation assembly; 31. Copper pipe; 32. Fan; 33. Filling tank; 4. Trigger assembly; 41. Storage cylinder; 42. Connecting pipe; 43. Rubber seat; 44. Moving rod; 45. Connecting seat; 46. Fourth mounting slot; 47. Rotating rod; 48. Coil spring; 49. Connecting wire; 491. Metal sheet; 492. Fifth mounting slot; 493. Ohmic resistor. Detailed Implementation
[0034] To enable those skilled in the art to better understand the present application, the technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present application, and not all embodiments. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative effort should fall within the scope of protection of the present application.
[0035] Please see Figures 1-11 This invention provides a temperature control device for solid-state drives, including a fixing shell 1. Please refer to the following for details. Figure 1 and Figure 2The device has two fixed housings 1, which are fixedly connected at their close end faces to form a cavity for fixing the hard drive. The opening of the fixed housing 1 is provided with a fixing component 2 for connecting the slot. The inner wall of the fixed housing 1 is provided with a heat dissipation component 3 for cooling the solid-state drive. A trigger component 4 is provided on one side of the heat dissipation component 3 for controlling its contact with the hard drive. The trigger component 4 is located inside the fixed housing 1. The multiple components work together to achieve automatic temperature control of the hard drive.
[0036] To ensure the SSD is securely held within the device, and because cooling component 3 only activates when the SSD is connected to the motherboard, please refer to the following instructions. Figure 3 , Figure 4 and Figure 6Multiple hydraulic sleeves 21 for storing hydraulic oil are provided in the fixed assembly 2. One end of each hydraulic sleeve 21 is fixedly connected to the inner wall of the fixed housing 1. The multiple hydraulic sleeves 21 are evenly distributed along the length of the fixed housing 1 and are located at the opening of the fixed housing 1. A fixed cylinder 24 for stabilizing the return spring 25 is fixedly connected to the bottom of the inner cavity of the hydraulic sleeve 21. One end of the return spring 25 is sleeved in the fixed cylinder 24 and contacts the bottom of the inner cavity of the hydraulic sleeve 21. A positioning cylinder 26 for connecting the moving seat 27 is sleeved on the surface of the other end of the return spring 25. The end of the positioning cylinder 26 away from the return spring 25 is fixedly connected to the moving seat 27. The moving seat 27 is slidably connected to the inner wall of the hydraulic sleeve 21. A second sealing ring 29 is provided on the surface of the moving seat 27. Mounting groove 28, sealing ring 29 is sleeved in the second mounting groove 28 and slidably connected to the groove wall. Multiple sealing rings 29 are provided and are evenly distributed along the length of the moving seat 27. The outer ring wall of the sealing ring 29 is slidably connected to the inner wall of the hydraulic sleeve 21. A hydraulic tappet 291 for supporting the fixed seat 292 is fixedly connected to one end of the moving seat 27 near the opening of the fixed shell 1. The end of the hydraulic tappet 291 away from the moving seat 27 is fixedly connected to the fixed seat 292. A third mounting groove 293 for fixing the buffer pad 294 is opened at the end of the fixed seat 292 away from the hydraulic tappet 291. The buffer pad 294 is fixedly connected to the groove wall of the third mounting groove 293. The end of the hydraulic sleeve 21 away from the fixed seat 292 is fixedly connected to a hydraulic chamber. The hydraulic hose 22 of the hydraulic sleeve 21 has a connecting hole 23 at the bottom of its inner cavity for connecting to the hydraulic hose 22. The end of the hydraulic hose 22 away from the hydraulic sleeve 21 passes through the fixed shell 1 and is fixedly connected to the hydraulic chamber 295. The hydraulic sleeve 21 communicates with the hydraulic chamber 295 through the hydraulic hose 22. There are two hydraulic chambers 295, which are fixedly connected to the inner wall of the fixed shell 1. The two hydraulic chambers 295 are symmetrically distributed along the axis of the fixed shell 1. The hydraulic chamber 295 has a top seat 296 for supporting the heat dissipation component 3. The top seat 296 is slidably connected to the inner wall of the hydraulic chamber 295. The fixing seat 292 has an inclined surface near the opening of the fixed shell 1 to facilitate the insertion of the hard drive. When the hard drive is inserted into the fixed shell 1, before the hard drive is connected to the main body... During plate connection, driven by the elastic force of the return spring 25 at the bottom of the inner cavity of the hydraulic sleeve 21, the hydraulic oil remains in the hydraulic sleeve 21. The amount of hydraulic oil in the hydraulic chamber 295 is small, which is insufficient to drive the heat dissipation copper pipe 31 to contact the hard drive. The fixing seat 292 at the top of the hydraulic sleeve 21 blocks the hard drive in the fixing shell 1, facilitating the storage of the fixed hard drive. The heat dissipation component 3 makes close contact with the hard drive. During the insertion of the hard drive into the slot, the fixing seat 292 at the opening of the fixing shell 1 is pushed by the force to push the bottom hydraulic tappet 291 into the hydraulic sleeve 21. The hydraulic oil in the hydraulic sleeve 21 flows from the hydraulic hose 22 to the hydraulic chamber 295 on the inner wall of the fixing shell 1. The increase in the amount of oil in the hydraulic chamber 295 causes the top seat 296 to move closer to the copper pipe 31.The top mount 296 ensures close contact between the copper tube 31 and the trigger assembly 4 on one side of the hard drive, facilitating subsequent cooling of the hard drive and protecting its electronic components.
[0037] To ensure that cooling component 3 only activates when the hard drive is overheating, please refer to the following instructions. Figure 7 , Figure 8 , Figure 9 and Figure 10The trigger assembly 4 includes a storage cylinder 41 for storing nitrogen. The storage cylinder 41 is housed within the fixed housing 1 and is fixedly connected to a copper pipe 31 on one side. Two connecting pipes 42 for mounting a moving rod 44 are fixedly connected to the side of the storage cylinder 41 furthest from the copper pipe 31. The two connecting pipes 42 are symmetrically distributed along the axis of the storage cylinder 41 and communicate with the storage cylinder 41. The ratio of the inner diameter area of the connecting pipe 42 to the cross-sectional area of the storage cylinder 41 is 1:10. The moving rod 44 is placed inside the connecting pipe 42. A rubber seat 43 for sealing the pipe is fixedly connected to one end of the moving rod 44 inside the connecting pipe 42. The rubber seat 43 is slidably connected to the wall of the connecting pipe 42. The end of the moving rod 44 furthest from the connecting pipe 42 is fixedly connected to… A connecting seat 45 for mounting multiple parts is provided. A fourth mounting groove 46 for mounting a rotating rod 47 is provided on the side of the connecting seat 45 near the inner wall of the fixed housing 1. The rotating rod 47 is placed in the fourth mounting groove 46, with one end rotatably connected to the bottom of the groove. Multiple coil springs 48 for driving the rotating rod 47 are provided in the fourth mounting groove 46. The coil springs 48 are sleeved on the surface of the rotating rod 47 and are evenly distributed along the length of the rotating rod 47. One end of each coil spring 48 is fixedly connected to the surface of the rotating rod 47, and the other end is fixedly connected to the wall of the fourth mounting groove 46. A connecting wire 49 for connecting the fan 32 circuit and a metal rod are fixedly connected to the end of the rotating rod 47 away from the connecting seat 45. Metal plate 491, with an ohmic resistor 493 for short-circuiting fan 32 at the end away from rotating rod 47, has a fifth mounting slot 492 for mounting the ohmic resistor 493 on the inner wall of the fixed housing 1. The ohmic resistor 493 is fixedly connected to the bottom of the fifth mounting slot 492. The end of metal plate 491 near the inner wall of the fixed housing 1 is slidably connected to the ohmic resistor 493. Both the ohmic resistor 493 and the metal plate 491 are included in the circuit of fan 32. Nitrogen gas is filled in its storage cylinder 41. When the hard drive heats up due to its operation, the storage cylinder 41, which is in close contact with the hard drive, also heats up. The nitrogen gas expands, driving the gas into the connecting pipe 42. The inner diameter area of the connecting pipe 42 is... The cross-sectional area ratio of the storage cylinder 41 is 1:10, which allows the moving rod 44 inside the connecting tube 42 to have a larger movement distance. The connecting seat 45 at the head of the moving rod 44 and the metal plate 491 on one side of the connecting seat 45 move along the length of the ohmic resistor 493. Because most of the ohmic resistor 493 is in the circuit of the fan 32 when the hard drive temperature is low, the fan 32 cannot start normally. As the metal plate 491 gets closer to the bottom of the ohmic resistor 493, the resistance in the circuit becomes smaller and smaller. And when the temperature is higher, the resistance in the circuit will become smaller and smaller, which will increase the current in the circuit. The faster the fan 32 rotates, the better the heat dissipation effect on the hard drive. It has an automatic heat dissipation effect.
[0038] To effectively dissipate heat from the hard drive, please refer to the following: Figure 2 and Figure 11The heat dissipation assembly 3 includes a copper tube 31 for contact with the solid-state drive. The copper tube 31 has a flat, curved structure and contains liquid cooling oil to improve heat dissipation. The side of the copper tube 31 closest to the inner wall of the fixed housing 1 is fixedly connected to the side of the top seat 296 away from the hydraulic chamber 295. A first mounting groove 11 for mounting multiple components is provided on the inner wall of the fixed housing 1. The groove wall of the first mounting groove 11 has multiple connecting windows 12 for air circulation between the heat dissipation assembly 3 and the outside. The multiple connecting windows 12 are evenly distributed along the length of the fixed housing 1. A multiple matching fans 32 are provided on the side of the copper tube 31 closest to the connecting windows 12. The fans 32 are placed inside the connecting windows 12. A multiple filling groove 33 for storing liquid metal is provided on the side of the copper tube 31 away from the fans 32. The multiple filling grooves 33 are evenly distributed on the surface of the copper tube 31. The large contact area of the copper tube 31, combined with the active cooling fans 32, provides better cooling performance than traditional passive heat sinks.
[0039] Working principle
[0040] In actual use, the mounting base 292 is provided with an inclined surface near the opening of the mounting shell 1 to facilitate the insertion of the hard drive. When the hard drive is inserted into the mounting shell 1 and not connected to the motherboard, the hydraulic oil remains in the hydraulic sleeve 21 due to the elastic force of the return spring 25 at the bottom of the inner cavity of the hydraulic sleeve 21. The amount of hydraulic oil in the hydraulic chamber 295 is small, which cannot drive the heat dissipation copper pipe 31 to contact the hard drive. The mounting base 292 at the top of the hydraulic sleeve 21 also blocks the hard drive inside the mounting shell 1, which facilitates the storage of the hard drive. After connecting to the motherboard... The heat dissipation component 3 makes close contact with the hard drive. During the insertion of the hard drive into the slot, the fixing seat 292 at the opening of the fixing shell 1 is pushed by force to push the bottom hydraulic tappet 291 into the hydraulic sleeve 21. The hydraulic oil in the hydraulic sleeve 21 flows from the hydraulic hose 22 to the hydraulic chamber 295 on the inner wall of the fixing shell 1. The increase in the amount of oil in the hydraulic chamber 295 causes the top seat 296 to move closer to the copper pipe 31. The top seat 296 drives the copper pipe 31 and the trigger component 4 on one side to make close contact with the hard drive, which facilitates subsequent cooling of the hard drive. To protect electronic components, the heat dissipation assembly 3 only activates when the hard drive reaches high temperatures. Its storage cylinder 41 is filled with nitrogen. When the hard drive heats up due to operation, the storage cylinder 41, which is in close contact with the hard drive, also heats up. The nitrogen gas expands, driving the gas into the connecting pipe 42. The ratio of the inner diameter area of the connecting pipe 42 to the cross-sectional area of the storage cylinder 41 is 1:10, allowing the moving rod 44 inside the connecting pipe 42 to have a large movement distance. The connecting seat 45 at the head of the moving rod 44 and the metal plate 491 on one side of the connecting seat 45 move along the ohmic current... As the resistance 493 moves forward along its length, most of the ohmic resistor 493 remains within the circuitry of fan 32 when the hard drive temperature is low, preventing fan 32 from starting properly. As the metal plate 491 gets closer to the bottom of the ohmic resistor 493, the resistance in the circuit decreases. Furthermore, as the temperature rises, the resistance in the circuit decreases further, resulting in a larger current in the circuit. The faster the fan 32 rotates, the better the heat dissipation effect on the hard drive. It has an automatic heat dissipation effect, providing better protection for the hard drive compared to traditional passive heatsinks.
[0041] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. A temperature control device for a solid-state drive, characterized in that, The system includes a fixed housing (1), of which two are provided. The two fixed housings (1) are fixedly connected at their close end faces to form a cavity for fixing a solid-state drive. A fixing component (2) for connecting a slot is provided at the opening of the fixed housing (1). A heat dissipation component (3) for cooling the solid-state drive is provided on the inner wall of the fixed housing (1). A trigger component (4) for controlling its own start and stop is provided on one side of the heat dissipation component (3). The trigger component (4) is located inside the fixed housing (1). The fixing component (2) includes multiple hydraulic sleeves (21) for storing hydraulic oil. One end of each hydraulic sleeve (21) is fixedly connected to the inner wall of the fixed housing (1). The multiple hydraulic sleeves (21) are evenly distributed along the length of the fixed housing (1). The sleeve (21) is set at the opening of the fixed shell (1). The bottom of the inner cavity of the hydraulic sleeve (21) is fixedly connected to a fixed cylinder (24) for stabilizing the return spring (25). One end of the return spring (25) is sleeved in the fixed cylinder (24) and contacts the bottom of the inner cavity of the hydraulic sleeve (21). The other end of the return spring (25) is sleeved with a positioning cylinder (26) for connecting the motion seat (27). The end of the positioning cylinder (26) away from the return spring (25) is fixedly connected to the motion seat (27). The motion seat (27) is slidably connected to the inner wall of the hydraulic sleeve (21). The surface of the motion seat (27) is provided with a second mounting groove (28) for fixing the sealing ring (29). The sealing ring (29) is sleeved in the second mounting groove (28) and slidably connected to it. The heat dissipation assembly (3) includes a copper tube (31) for contacting the solid-state drive. The copper tube (31) has a flat curved structure and contains liquid cooling oil to improve heat dissipation. The side of the copper tube (31) near the inner wall of the fixed shell (1) is fixedly connected to the side of the top seat (296) away from the hydraulic chamber (295). The side of the copper tube (31) near the connecting window (12) is provided with multiple matching fans (32). The fans (32) are placed inside the connecting window (12). The side of the copper tube (31) away from the fans (32) is provided with multiple filling grooves (33) for storing liquid gold. The multiple filling grooves (33) are evenly distributed on the surface of the copper tube (31). The triggering component (4) includes a storage cylinder (41) for storing nitrogen. The storage cylinder (41) is disposed inside the fixed shell (1) and is fixedly connected to a copper tube (31) on one side. Two connecting pipes (42) for installing a moving rod (44) are fixedly connected to the side of the storage cylinder (41) away from the copper tube (31). The two connecting pipes (42) are symmetrically distributed along the axis of the storage cylinder (41). The connecting pipes (42) are connected to the storage cylinder (41). The ratio of the cross-sectional area of the connecting pipe (42) to the cross-sectional area of the storage cylinder (41) is one to ten. The moving rod (44) is placed inside the connecting pipe (42). One end of the moving rod (44) inside the connecting pipe (42) is fixedly connected to a rubber seat (43) for sealing the pipe. The rubber seat (43) is slidably connected to the wall of the connecting pipe (42). One end of the moving rod (44) away from the connecting pipe (42) is fixedly connected to a connecting seat (45) for installing multiple parts. The connecting seat (45) has a fourth mounting groove (46) for installing a rotating rod (47) on the side near the inner wall of the fixed shell (1). The rotating rod (47) is placed in the fourth mounting groove (46) and one end is rotatably connected to the bottom of the fourth mounting groove (46). The fourth mounting groove (46) is provided with a plurality of coil springs (48) for driving the rotating rod (47) to move. The coil springs (48) are sleeved on the surface of the rotating rod (47). The plurality of coil springs (48) are evenly distributed along the length direction of the rotating rod (47). One end of the coil spring (48) is fixedly connected to the surface of the rotating rod (47), and the other end of the coil spring (48) is fixedly connected to the wall of the fourth mounting groove (46). The rotating rod (47) is fixedly connected to a connecting wire (49) and a metal plate (491) forming the fan (32) circuit at one end away from the connecting seat (45). The metal plate (491) is provided with an ohmic resistor (493) for short-circuiting the fan (32) at one end away from the rotating rod (47). The inner wall of the fixed shell (1) is provided with a fifth mounting groove (492) for installing the ohmic resistor (493). The ohmic resistor (493) is fixedly connected to the bottom of the fifth mounting groove (492). The metal plate (491) is slidably connected to the ohmic resistor (493) at one end near the inner wall of the fixed shell (1). The ohmic resistor (493) is provided in the circuit of the fan (32).
2. The temperature control device for a solid-state drive according to claim 1, characterized in that, The inner wall of the fixed shell (1) is provided with a first mounting groove (11), and the groove wall of the first mounting groove (11) is provided with a plurality of connecting windows (12) for air circulation between the heat dissipation component (3) and the outside. The plurality of connecting windows (12) are evenly distributed along the length direction of the fixed shell (1).
3. The temperature control device for a solid-state drive according to claim 1, characterized in that, Multiple sealing rings (29) are provided, and the multiple sealing rings (29) are evenly distributed along the length direction of the moving seat (27). The outer ring wall of the sealing ring (29) is slidably connected to the inner wall of the hydraulic sleeve (21). One end of the moving seat (27) is fixedly connected to a hydraulic tappet (291) for supporting the fixed seat (292). The end of the hydraulic tappet (291) away from the moving seat (27) is fixedly connected to the fixed seat (292).
4. The temperature control device for a solid-state drive according to claim 3, characterized in that, The fixed base (292) has a third mounting groove (293) for fixing the buffer pad (294) at the end away from the hydraulic tappet (291). The buffer pad (294) is fixedly connected to the groove wall of the third mounting groove (293). The hydraulic sleeve (21) has a hydraulic hose (22) for connecting the hydraulic chamber (295) at the end away from the fixed base (292). The bottom of the inner cavity of the hydraulic sleeve (21) has a connecting hole (23). The end of the hydraulic hose (22) away from the hydraulic sleeve (21) passes through the fixed shell (1) and is fixedly connected to the hydraulic chamber (295).
5. A temperature control device for a solid-state drive according to claim 4, characterized in that, The hydraulic sleeve (21) is connected to the hydraulic chamber (295) through the hydraulic hose (22). There are two hydraulic chambers (295). The hydraulic chambers (295) are fixedly connected to the inner wall of the fixed shell (1). The two hydraulic chambers (295) are symmetrically distributed along the axis of the fixed shell (1). The hydraulic chamber (295) has a top seat (296) for supporting the heat dissipation component (3). The top seat (296) is slidably connected to the inner wall of the hydraulic chamber (295).