A server for storing large amounts of warehouse data in a liquid state
Patent Information
- Application Number
- CN202521542934.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-23
- Publication Date
- 2026-08-28
- Estimated Expiration
- 2035-07-23
AI Technical Summary
[0004]本实用新型的目的在于提供一种液化仓储数据大容量存储服务器,以解决上述背景技术中提出的不易扩展、适用性低下、不能应对数据的大容量存储的问题
[0015]By installing secondary smooth expansion racks, the device optimizes its structure. On the one hand, users can use the modular storage architecture composed of the main server chassis and two secondary smooth expansion racks to install the main server hardware inside the main server chassis. When expanding, simply slide out the secondary smooth expansion rack and install the new hardware modules, such as data storage devices, inside the secondary smooth expansion rack that extends outward along the main server chassis. They are then connected via a bus, eliminating the need to refactor the system and ensuring uninterrupted service during the expansion process. This allows the device to meet the needs of large-capacity data storage and analysis processing. On the other hand, after the secondary smooth expansion rack is pulled out, equipped with the expansion hardware, and assembled onto the main server chassis, the user can open the manual air valve on the reserved air pipe at the top of the outer support frame. This allows air to be injected into the sealing airbag layer inside the inner wall of the outer support frame through the reserved air pipe, causing the sealing airbag layer to expand and tightly press against the outer wall of the secondary smooth expansion rack, achieving compression and sealing of the secondary smooth expansion rack and facilitating expansion assembly operations.
Smart Images

Figure CN224696317U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of servers for liquefied storage, specifically a large-capacity data storage server for liquefied storage. Background Technology
[0002] Liquefied storage relies on specialized cryogenic tanks, pressure equipment, safety control systems, and professional operating procedures to achieve the safe storage and turnover of high-risk, volatile, or cryogenically maintained liquids. In actual operation, liquefied storage requires sensors such as temperature sensors, pressure transmitters, level gauges, and gas leak detectors to monitor equipment status and environmental parameters in real time. It also requires the use of liquefied storage data storage servers to continuously receive and store this high-frequency data, providing the original basis for subsequent analysis and decision-making.
[0003] Current liquefied storage data storage servers have fixed internal space and often cannot be modularly expanded. Considering that after long-term use of liquefied storage facilities, the increase in data often requires the installation of additional servers to meet the needs of large-capacity data storage, analysis and processing, this results in low applicability of the device. Based on this, we propose a new type of large-capacity data storage server for liquefied storage. Utility Model Content
[0004] The purpose of this utility model is to provide a large-capacity storage server for liquefied storage data, so as to solve the problems mentioned in the background art, such as difficulty in expansion, low applicability, and inability to handle large-capacity data storage.
[0005] To achieve the above objectives, this utility model provides the following technical solution: a large-capacity storage server for liquefied storage data, comprising a main server chassis, on which a PLC controller is installed; secondary smooth expansion frames are slidably connected to both ends inside the main server chassis; the outer walls of the secondary smooth expansion frames are evenly provided with limiting slide strips matching the main server chassis; both ends of the main server chassis are fixed with outer support frames; the inner walls of the outer support frames are provided with sealing airbag layers matching the secondary smooth expansion frames, for sealing... The top of the airbag layer is connected to a reserved air pipe, and a manual air valve is installed on the reserved air pipe. An upper air outlet seat is fixed at the top inside the main server chassis. An air pump is installed on one side of the upper air outlet seat. A horizontal air guide plate is fixed at the top inside the upper air outlet seat. Vertical air guide pipes connected to the horizontal air guide plate are evenly fixed on both sides inside the main server chassis. Lower air inlet seats are set at the bottom of both sides of the main server chassis. A waterproof and breathable membrane cover is installed on the outer wall of the lower air inlet seat. Air inlet holes connected to the vertical air guide pipes are evenly arranged on the lower air inlet seat.
[0006] As a further technical solution of this utility model, two secondary smooth expansion racks are provided, and the adjacent secondary smooth expansion racks are symmetrically distributed about the vertical center line of the main server chassis.
[0007] As a further technical solution of this utility model, the limiting slide bars are evenly distributed on the outer periphery of the secondary smooth expansion frame, and the inner side wall of the main server chassis is provided with a slide groove that matches the limiting slide bars.
[0008] As a further technical solution of this utility model, copper alloy heat dissipation fins are evenly arranged at the end of the secondary smooth expansion frame away from the main server chassis.
[0009] As a further technical solution of this utility model, the input end of the air pump is connected to the interior of the horizontal air guide plate.
[0010] As a further technical solution of this utility model, the bottom end of the vertical air guide duct is uniformly provided with connecting air vents that communicate with the lower air inlet seat.
[0011] As a further technical solution of this utility model, magnetic adsorption sheets are fixed at the edges of the waterproof and breathable membrane cover and the lower air inlet seat.
[0012] As a further technical solution of this utility model, both the secondary smooth expansion rack and the outer wall of the main server chassis are provided with a silicone insulating layer, and the outer wall of the main server chassis is uniformly equipped with terminal blocks.
[0013] As a further technical solution of this utility model, the terminal block is evenly provided with external interfaces, and the terminal block is movably connected to a dust cover that matches the external interface through a rotating shaft, so that the unused and idle external interface can be protected from dust by the dust cover.
[0014] Compared with the prior art, the beneficial effects of this utility model are:
[0015] By installing secondary smooth expansion racks, the device optimizes its structure. On the one hand, users can use the modular storage architecture composed of the main server chassis and two secondary smooth expansion racks to install the main server hardware inside the main server chassis. When expanding, simply slide out the secondary smooth expansion rack and install the new hardware modules, such as data storage devices, inside the secondary smooth expansion rack that extends outward along the main server chassis. They are then connected via a bus, eliminating the need to refactor the system and ensuring uninterrupted service during the expansion process. This allows the device to meet the needs of large-capacity data storage and analysis processing. On the other hand, after the secondary smooth expansion rack is pulled out, equipped with the expansion hardware, and assembled onto the main server chassis, the user can open the manual air valve on the reserved air pipe at the top of the outer support frame. This allows air to be injected into the sealing airbag layer inside the inner wall of the outer support frame through the reserved air pipe, causing the sealing airbag layer to expand and tightly press against the outer wall of the secondary smooth expansion rack, achieving compression and sealing of the secondary smooth expansion rack and facilitating expansion assembly operations.
[0016] By incorporating a lower air intake, the device optimizes its performance. When the air pump is activated, negative pressure is generated within the horizontal air guide plate at the top of the upper air outlet. Cooler ambient air is then filtered through the waterproof and breathable membrane covering the lower air intake before entering the lower air intake through the air inlet. It then flows upward through the vertical air guide ducts on both sides of the main server chassis and is extracted through the horizontal air guide plate connected to the vertical air guide ducts. This utilizes the flowing air to exchange and dissipate the heat generated by the electronic components inside the device through thermal conductivity, achieving better heat dissipation protection. Furthermore, by drawing cool ambient air into the independent air duct structure formed by the vertical air guide ducts and horizontal air guide plates inside the main server chassis, the device avoids the problems of common cooling fans directly blowing air onto the electronic components inside the main server chassis, which can cause the components to loosen due to the impact of the airflow and easily accumulate dust. Attached Figure Description
[0017] Figure 1 This is a top view of the structure of this utility model;
[0018] Figure 2 This is a front view structural diagram of the present invention;
[0019] Figure 3 This is a partial cross-sectional view of the upper air outlet seat of this utility model.
[0020] Figure 4 This is a side view sectional diagram of the outer support frame of this utility model;
[0021] Figure 5 This is a front view cross-sectional structural diagram of the lower air inlet seat of this utility model.
[0022] In the diagram: 1. PLC controller; 2. Air pump; 3. Secondary smooth extension frame; 4. Limiting slide bar; 5. Copper alloy heat sink fins; 6. Main server chassis; 7. Upper air outlet; 8. External support frame; 9. Reserved air pipe; 10. Manual air valve; 11. Terminal block; 12. Dustproof cover; 13. Lower air inlet; 14. Waterproof and breathable membrane cover; 15. Horizontal air guide plate; 16. Vertical air guide duct; 17. Connecting air outlet; 18. Sealing airbag layer; 19. Magnetic adsorption sheet; 20. Air inlet hole; 21. External interface. Detailed Implementation
[0023] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present utility model without creative effort are within the scope of protection of the present utility model.
[0024] Please see Figure 1-5 An embodiment of this utility model is provided: a large-capacity storage server for liquefied storage data, including a main server chassis 6, a PLC controller 1 installed on the main server chassis 6, and a secondary smooth expansion frame 3 slidably connected to both ends inside the main server chassis 6. The outer side wall of the secondary smooth expansion frame 3 is uniformly provided with limiting slide bars 4 that match the main server chassis 6.
[0025] Both ends of the main server chassis 6 are fixed with an outer support frame 8. The inner side wall of the outer support frame 8 is provided with a sealing airbag layer 18 that matches the secondary smooth expansion frame 3. The top of the sealing airbag layer 18 is connected to a reserved air pipe 9, and a manual air valve 10 is installed on the reserved air pipe 9.
[0026] There are two secondary smooth expansion racks 3, and adjacent secondary smooth expansion racks 3 are symmetrically distributed about the vertical center line of the main server chassis 6;
[0027] Limiting sliders 4 are evenly distributed on the outer periphery of the secondary smooth expansion frame 3, and the inner side wall of the main server chassis 6 is provided with a sliding groove that matches the limiting sliders 4;
[0028] Specifically, such as Figure 1 , Figure 2 and Figure 4As shown, users can use the modular storage architecture consisting of the main server chassis 6 and two secondary smooth expansion racks 3 to install the main server hardware inside the main server chassis 6. When expanding, users only need to slide out the secondary smooth expansion racks 3 and install the new hardware modules, such as data storage devices, inside the secondary smooth expansion racks 3 that extend outward along the main server chassis 6. They can then connect them via a bus without refactoring the system, and the business will not be interrupted during the expansion process. This allows the device to meet the needs of large-capacity data storage and analysis processing. Furthermore, after the secondary smooth expansion racks 3 are pulled out, equipped with the expansion hardware, and assembled onto the main server chassis 6, users can open the manual air valve 10 on the reserved air pipe 9 at the top of the outer support frame 8. By inflating the sealed airbag layer 18 inside the inner wall of the outer support frame 8 through the reserved air pipe 9, the sealed airbag layer 18 expands and tightly presses against the outer wall of the secondary smooth expansion rack 3, thereby achieving compression and sealing of the secondary smooth expansion rack 3 and facilitating expansion assembly operations.
[0029] The top of the main server chassis 6 is fixed with an upper air outlet seat 7. An air pump 2 is installed on one side of the upper air outlet seat 7. A horizontal air guide plate 15 is fixed at the top of the upper air outlet seat 7. Vertical air guide pipes 16 connected to the horizontal air guide plate 15 are evenly fixed on both sides of the main server chassis 6.
[0030] The bottom of both sides of the main server chassis 6 is provided with a lower air intake seat 13. The outer wall of the lower air intake seat 13 is fitted with a waterproof and breathable membrane cover 14. The lower air intake seat 13 is evenly provided with air inlet holes 20 connected by vertical air guide pipes 16.
[0031] The secondary smooth expansion rack 3 has copper alloy heat dissipation fins 5 evenly arranged at the end away from the main server chassis 6;
[0032] The input end of the air pump 2 is connected to the interior of the horizontal air guide plate 15;
[0033] The bottom end of the vertical air guide duct 16 is evenly provided with connecting air outlets 17 that communicate with the lower air inlet seat 13;
[0034] Specifically, such as Figure 1 , Figure 2 and Figure 3As shown, when the air pump 2 is started, it can generate negative pressure attraction inside the horizontal air guide plate 15 arranged at the top of the upper air outlet seat 7. Then, the cold air from the outside environment will be filtered through the waterproof and breathable membrane cover plate 14 on the lower air inlet seat 13, and then enter the lower air inlet seat 13 through the air inlet hole 20. It will flow upward through the vertical air guide ducts 16 arranged on both sides inside the main server chassis 6, and then be drawn out through the horizontal air guide plate 15 connected to the vertical air guide ducts 16. This not only utilizes the flowing air, but also uses the heat conduction effect to exchange and dissipate the heat generated by the electronic component modules inside the device, achieving better heat conduction and heat dissipation protection. Furthermore, by drawing the cold air from the outside environment into the independent air duct structure formed by the vertical air guide ducts 16 and the horizontal air guide plate 15 inside the main server chassis 6, the circulation movement avoids the common problem of common cooling fans blowing air directly onto the electronic components inside the main server chassis 6, which causes the air to impact the components, resulting in loosening of the components and easy accumulation of dust.
[0035] Magnetic adsorption sheets 19 are fixed at the edges of the waterproof and breathable membrane cover 14 and the lower air inlet seat 13; so that the waterproof and breathable membrane cover 14 can be quickly disassembled and assembled by using the adsorption and fixing effect of the magnetic adsorption sheets 19, making it easy to clean and maintain.
[0036] Both the secondary smooth expansion rack 3 and the outer side wall of the main server chassis 6 are provided with silicone insulation layer, and the outer side wall of the main server chassis 6 is uniformly equipped with terminal blocks 11.
[0037] External interfaces 21 are evenly arranged on the terminal block 11. A dust cover 12 matching the external interface 21 is movably connected to the terminal block 11 via a rotating shaft, so that the unused external interface 21 can be protected from dust by the dust cover 12.
[0038] Working Principle: During use, the user can utilize the modular storage architecture comprised of the main server chassis 6 and two secondary smooth expansion racks 3. The main server hardware is installed inside the main server chassis 6. Expansion is achieved simply by sliding out the secondary smooth expansion racks 3 and installing new hardware modules, such as data storage devices, inside the racks extending outwards from the main server chassis 6 via a bus connection. No system reconfiguration is required, and business operations remain uninterrupted during expansion. This allows the device to handle the demands of large-capacity data storage and analysis. Furthermore, after the secondary smooth expansion racks 3 are pulled out, equipped with the expansion hardware, and assembled onto the main server chassis 6, the user can open the manual air valve 10 on the reserved air pipe 9 at the top of the outer support frame 8. This allows air to be pumped into the sealing airbag layer 18 on the inner wall of the outer support frame 8, causing the sealing airbag layer 18 to expand and tightly press against the outer wall of the secondary smooth expansion rack 3, achieving compression and sealing of the rack. This facilitates expansion assembly operations. Additionally, the user can rotate the dust cover 12 to expose the terminal block 1. The corresponding external interface 21 on the upper part enables the device to connect to external power and network. During actual operation, the air pump 2 starts, which generates negative pressure suction inside the horizontal air guide plate 15 arranged at the top of the upper air outlet seat 7. Then, the colder air from the outside environment will be filtered through the waterproof and breathable membrane cover 14 on the lower air inlet seat 13, and then enter the lower air inlet seat 13 through the air inlet hole 20. It will then flow upward through the vertical air guide ducts 16 arranged on both sides inside the main server chassis 6, and then through the horizontal air guide connected to the vertical air guide ducts 16. The plate 15 is extracted, which utilizes the flowing gas to conduct heat and remove the heat generated by the electronic component module inside the device, achieving better heat dissipation protection. It also draws the cool air from the outside environment into the independent air duct structure formed by the vertical air guide duct 16 and the horizontal air guide plate 15 inside the main server chassis 6, avoiding the common problem of common cooling fans blowing air directly onto the electronic components inside the main server chassis 6, which can cause the airflow to impact the components, leading to loosening of the components and easy accumulation of dust.
[0039] It will be apparent to those skilled in the art that this invention is not limited to the details of the exemplary embodiments described above, and that it can be implemented in other specific forms without departing from the spirit or essential characteristics of this invention. Therefore, the embodiments should be considered illustrative and non-limiting in all respects, and the scope of this invention is defined by the appended claims rather than the foregoing description. Thus, it is intended that all variations falling within the meaning and scope of equivalents of the claims be included within this invention. No reference numerals in the claims should be construed as limiting the scope of the claims.
Claims
1. A high-capacity data storage server for liquefied storage, characterized in that, The system includes a main server chassis (6), on which a PLC controller (1) is installed. Both ends of the main server chassis (6) are slidably connected to a secondary smooth expansion frame (3). The outer walls of the secondary smooth expansion frame (3) are evenly provided with limiting slides (4) that match the main server chassis (6). Both ends of the main server chassis (6) are fixed with an outer support frame (8). The inner walls of the outer support frame (8) are provided with a sealing airbag layer (18) that matches the secondary smooth expansion frame (3). The top of the sealing airbag layer (18) is connected to a reserved air pipe (9), and a manual air pump is installed on the reserved air pipe (9). The valve (10) is fixed at the top of the main server chassis (6). An air outlet seat (7) is fixed at one side of the air outlet seat (7). A suction pump (2) is installed on one side of the air outlet seat (7). A horizontal air guide plate (15) is fixed at the top of the main server chassis (7). Vertical air guide pipes (16) connected to the horizontal air guide plate (15) are evenly fixed on both sides of the main server chassis (6). Lower air inlet seats (13) are provided at the bottom of both sides of the main server chassis (6). A waterproof and breathable membrane cover plate (14) is installed on the outer wall of the lower air inlet seat (13). Air inlet holes (20) connected to the vertical air guide pipes (16) are evenly provided on the lower air inlet seat (13).
2. The liquefied storage data large-capacity storage server according to claim 1, characterized in that: Two secondary smooth expansion racks (3) are provided, and adjacent secondary smooth expansion racks (3) are symmetrically distributed about the vertical center line of the main server chassis (6).
3. The liquefied storage data large-capacity storage server according to claim 1, characterized in that: The limiting slide bar (4) is evenly distributed on the outer periphery of the secondary smooth extension frame (3), and the inner side wall of the main server chassis (6) is provided with a slide groove that matches the limiting slide bar (4).
4. A large-capacity storage server for liquefied storage data according to claim 1, characterized in that: The secondary smooth expansion frame (3) has copper alloy heat dissipation fins (5) evenly arranged at the end away from the main server chassis (6).
5. A large-capacity storage server for liquefied storage data according to claim 1, characterized in that: The input end of the air pump (2) is connected to the interior of the transverse air guide plate (15).
6. A large-capacity storage server for liquefied storage data according to claim 1, characterized in that: The bottom end of the vertical air guide duct (16) is evenly provided with connecting air vents (17) that communicate with the lower air inlet seat (13).
7. A large-capacity storage server for liquefied storage data according to claim 1, characterized in that: Magnetic adsorption sheets (19) are fixed at the edges of the waterproof and breathable membrane cover (14) and the lower air inlet seat (13).
8. A large-capacity storage server for liquefied storage data according to claim 1, characterized in that: The outer walls of the secondary smooth expansion frame (3) and the main server chassis (6) are provided with silicone insulation layers, and the outer walls of the main server chassis (6) are uniformly equipped with terminal blocks (11).
9. A large-capacity storage server for liquefied storage data according to claim 8, characterized in that: The terminal block (11) is provided with external interfaces (21) evenly distributed, and a dust cover (12) matching the external interface (21) is movably connected to the terminal block (11) via a rotating shaft.