Efficient heat dissipation device for computer big data server
By combining multiple heat dissipation mechanisms and temperature sensors, efficient heat dissipation of computer big data servers is achieved, solving the problems of low heat dissipation efficiency and high energy consumption in existing technologies, and realizing precise and energy-saving heat dissipation effects.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2023-11-25
- Publication Date
- 2026-04-07
AI Technical Summary
Existing computer big data server cooling devices have low cooling efficiency and high energy consumption. They cannot detect and cool specific server racks in a timely manner, resulting in resource waste and uneven heat dissipation.
Multiple heat dissipation mechanisms are adopted, including air cooling and air blowing, combined with temperature sensors for individual detection and control, using solenoid valves to regulate the supply of cold air, adding small air outlets and air blowing mechanisms, achieving exposed heat dissipation of components through a transmission system, and setting up a hot air adsorption mechanism to improve heat dissipation efficiency.
It achieves precise heat dissipation for specific server cabinets, reduces energy consumption, improves heat dissipation efficiency, ensures uniform supply of cool air and effective exhaust of hot air, and enhances the overall heat dissipation effect.
Smart Images

Figure CN121815601A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of heat dissipation equipment technology for big data servers, specifically to a high-efficiency heat dissipation device for computer big data servers. Background Technology
[0002] A server is a type of computer that runs faster, handles higher loads, and is more expensive than a regular computer. Servers provide computing or application services to other client machines (such as PCs, smartphones, ATMs, and even large equipment like train systems) on a network. Servers possess high-speed CPU processing power, long-term reliable operation, powerful I / O external data throughput, and better scalability. Generally, servers are capable of responding to service requests, providing services, and ensuring service availability, depending on the services they provide. As electronic devices, servers have a complex internal structure, but it is not significantly different from the internal structure of a regular computer, including components such as the CPU, hard drive, memory, operating system, and system bus. Based on different architectures, servers can be divided into two main categories: IA (Integrated Automation) architecture servers and RI / SC (Resource Integrated Systems) architecture servers. This classification is primarily based on the different processor architectures used. Servers can also be categorized based on scale, such as workgroup servers, departmental servers, and enterprise servers. Furthermore, servers can be classified in many ways based on their function; big data application servers are specifically designed for handling large-scale data processing and analysis applications. It is a key component of big data infrastructure, enabling organizations to store, manage, and analyze massive amounts of data to gain insights and make informed decisions. Big data application servers typically consist of interconnected clusters of servers, each with its own processing and storage capabilities. These servers work together to provide the processing power and storage space required to handle large-scale data analytics applications. These servers are optimized for high performance and designed to handle complex data processing tasks. One of the main advantages of big data application servers is their ability to process massive amounts of data in real time. This allows organizations to make decisions and take action based on current data, rather than relying on historical data. Real-time data processing is crucial for applications such as fraud detection, financial transactions, and supply chain management, which require rapid decision-making based on current data. Another benefit of big data application servers is their ability to handle various data formats, including structured, semi-structured, and unstructured data. This is important because data is generated in various formats, such as text, images, video, and audio, and the ability to process and analyze this data in real time is essential. Big data application servers can also be used to create custom applications tailored to an organization's specific needs. These applications can be designed to provide insights into customer behavior, optimize business processes, or automate tasks that are currently performed manually. However, big data application servers also present some challenges. One of the main challenges is the complexity of the infrastructure required to support these servers. Significant investments are needed in hardware, software, and technical personnel to manage and maintain this infrastructure. Furthermore, data security and privacy are also important considerations, as big data applications often involve sensitive or confidential information.In summary, big data application servers are a critical component of big data infrastructure, providing the processing power and storage needed for large-scale data processing and analysis applications. They enable organizations to gain real-time insights from their data, tailor applications to their specific needs, and handle various data formats. However, they also bring challenges related to infrastructure complexity and data security and privacy. Overall, big data application servers are an important tool for organizations looking to leverage their data for a competitive advantage. However, during prolonged use, computer big data servers accumulate significant heat. When operating under abnormal temperature conditions, they can become overloaded, potentially damaging internal components. Therefore, an efficient cooling system for computer big data servers is essential.
[0003] Because existing computer big data servers are designed with multiple racks, current cooling systems typically use either overall cooling or individual rack cooling. While this solves some cooling problems, it is too slow and consumes too much energy. Furthermore, existing cooling systems cannot promptly detect which racks require cooling, essentially relying on periodic cooling, which is too indiscriminate and fails to achieve the desired overall cooling effect. Therefore, those skilled in the art have proposed a high-efficiency cooling device for computer big data servers to address the problems mentioned in the background. Summary of the Invention
[0004] (a) Technical problems to be solved
[0005] To address the shortcomings of existing technologies, this invention provides a high-efficiency heat dissipation device for computer big data servers. This device improves the overall heat dissipation efficiency of the server terminal by utilizing multiple heat dissipation mechanisms, primarily including air cooling, air blowing, and disassembly for efficient heat dissipation. It also incorporates temperature sensors to classify and detect individual server terminal cabinets. In the event of a single anomaly, the heat dissipation device can cool only the affected server terminal cabinet, reducing energy consumption. This solves the problems of low heat dissipation efficiency in existing heat dissipation devices, which simultaneously dissipate heat to the entire server terminal, resulting in excessive energy consumption and resource waste.
[0006] (II) Technical Solution
[0007] To achieve the above objectives, the present invention provides the following technical solution: a high-efficiency heat dissipation device for a computer big data server, comprising a server terminal main body, a central processing unit, and a cooler main body. The server terminal main body includes multiple server terminal cabinets. Bases are fixedly installed on both sides of the upper end of the cooler main body, and cooling fans are fixedly installed on the upper ends of the two bases. A first connecting pipe is fixedly connected to one side wall of the cooler main body. A second connecting pipe is fixedly connected to the end of the first connecting pipe away from the cooler main body. Multiple third connecting pipes are fixedly connected to the outer wall of the second connecting pipe. A solenoid valve is fixedly sleeved on one side of the outer wall of each of the multiple third connecting pipes. A fourth connecting pipe is fixedly connected to the end of each of the multiple third connecting pipes away from the second connecting pipe. Fifth connecting pipes are fixedly connected to both ends of the multiple fourth connecting pipes and extend into the interior of the server terminal cabinets. Multiple small air vents and multiple ventilation slots are provided on the inner side wall of the server terminal main body.
[0008] The server terminal body has base plates fixedly installed on the lower ends of both side walls. A drive motor is fixedly installed on one side of the upper end of each of the two base plates. The output ends of the two drive motors are fixedly connected to drive wheels. Driven wheels are connected to the outer walls of the two drive wheels via belt drives. Lead screws are fixedly sleeved on the inner side walls of the two drive wheels and driven wheels. Sliding seats are threadedly sleeved on the outer walls of multiple lead screws. The multiple sliding seats are grouped in pairs. A support plate is fixedly connected between the two groups of sliding seats. A connecting plate is fixedly connected to the upper end of each of the two support plates. A top plate is fixedly connected to the upper end of the two connecting plates together.
[0009] The above technical solution, by including a base, a cooling fan, a first connecting pipe, a second connecting pipe, a third connecting pipe, a solenoid valve, a fourth connecting pipe, a fifth connecting pipe, small air outlets, and ventilation slots, utilizes the cooling fan to supply cold air to the main body of the cooler. Then, the first, second, third, and solenoid valves continuously supply cold air to the interior of the server terminal. During this process, the solenoid valves can be used to supply cold air individually; only the solenoid valve needs to be opened for the server terminal cabinet, reducing energy consumption. Additionally, multiple small air outlets are added to supply cold air to the interior of the server terminal cabinet. The heat dissipation is more even, improving the overall heat dissipation efficiency. The system consists of a base plate, drive motor, drive wheel, belt, driven wheel, lead screw, sliding seat, support plate, and top plate. The drive motor rotates the drive wheel, which in turn drives the driven wheel. Under the action of the lead screw and limit rod, the sliding seat moves up and down. Similarly, the sliding seat moves the support plate and top plate up and down. During heat dissipation, the top cover of the server terminal can be disassembled, allowing the necessary heat dissipation components to be exposed, enabling faster heat dissipation and improving overall heat dissipation efficiency.
[0010] Preferably, a protective cover is fixedly installed on one side of the upper end of each of the server terminal cabinets, and a temperature sensor is fixedly installed inside each of the protective covers;
[0011] The above technical solution incorporates a protective cover and a temperature sensor. The protective cover provides safety protection for the temperature sensor, while the temperature sensor is installed in one unit per server terminal cabinet. When heat dissipation is required, the appropriate temperature sensor can be selected based on the specific server terminal cabinet that needs cooling, thereby directly reducing energy consumption.
[0012] Preferably, the central processing unit includes a control module, and the control module includes a classification processing module;
[0013] The above technical solution, equipped with a central processing unit, a control module, and a classification processing module, allows for individual heat dissipation. The classification processing module identifies temperature sensors 1, 2, 3, 4, and n. After detecting multiple temperature sensors, it checks for temperature anomalies. If an anomaly is detected, the central processing unit and control module accurately determine and open solenoid valves 1, 2, 3, 4, or n. This ensures accurate heat dissipation for the specific server terminal cabinet requiring cooling, reducing energy consumption and demonstrating strong practicality.
[0014] Preferably, a fixed outer shell is fixedly installed in the middle of the rear end face of the server terminal body, and multiple dual-axis motors are fixedly installed inside the fixed outer shell. The output ends of the multiple dual-axis motors are all fixedly connected to a first bevel gear, and the multiple first bevel gears are all meshed with a second bevel gear. The inner sidewalls of the multiple first bevel gears and the second bevel gears are all fixedly connected to a cooling fan through a rotating shaft. A ventilation mesh is fixedly installed on the upper end face of the fixed outer shell.
[0015] The above technical solution incorporates a fixed outer casing, a dual-axis motor, a first bevel gear, a second bevel gear, a cooling fan, and a ventilation mesh. The ventilation mesh facilitates gas exchange within the fixed outer casing. During heat dissipation, the dual-axis motor is activated to rotate the first bevel gear. Utilizing the meshing principle, this drives the second bevel gear, which in turn rotates, causing the cooling fan to rotate simultaneously. Ventilation slots are provided on the inner wall of the server terminal cabinet, communicating with the fixed outer casing. When cooling is supplied, the airflow accelerates the activity of the cooling air, allowing it to quickly envelop the interior of the server terminal, further improving heat dissipation efficiency.
[0016] Preferably, blowers are fixedly installed on both sides of the upper end of the top plate, and air intake pipes are fixedly connected to the input ends of the two blowers. A combined air pipe is fixedly connected to the lower ends of the two air intake pipes, and multiple air intake heads are fixedly connected to the lower ends of the two combined air pipes and penetrate the top plate.
[0017] The above technical solution, equipped with a blower, suction pipe, combined air pipe, and suction head, allows the top plate to be pushed out of the server terminal body by a connecting plate during heat dissipation. As the hot air rises, the blower is activated, and the suction pipe, combined air pipe, and suction head extract the floating gas, directly adsorbing most of the hot air. This prevents the hot air from freely drifting and covering the entire computer room. The mechanism directly extracts most of the hot air, preventing it from drifting back into the server terminal body, thus further improving heat dissipation efficiency.
[0018] Preferably, two limiting rods are provided through one side of each of the plurality of sliding seats;
[0019] The above technical solution, by setting a limit rod, can prevent the sliding seat from rotating freely when it moves up and down.
[0020] Preferably, two fixing plates are fixedly installed on the upper ends of both sides of the main body of the server terminal;
[0021] The above technical solution, by setting a fixing plate, not only provides installation space, but also determines the installation position of the lead screw and the limit rod.
[0022] Preferably, heat dissipation vents are provided on both sides of the main body of the server terminal;
[0023] The above technical solution allows heat to be dissipated from the side of the server terminal body through the heat dissipation vents.
[0024] Working Principle: When this high-efficiency heat dissipation device for computer big data servers is put into use, it first detects the internal temperature of each server terminal cabinet using temperature sensors. Upon detecting an abnormal temperature inside the server terminal cabinet, the classification and processing module selects and opens the corresponding solenoid valve. During this process, the main body of the cooler is in operation. When the corresponding solenoid valve is opened, cooling air is continuously supplied to the inside of the server terminal cabinet via the first, second, third, fourth, and fifth connecting pipes. Multiple small air vents ensure a uniform supply of cooling air to the server terminal cabinet. During the cooling process, a dual-axis motor is also activated. Utilizing the meshing principle, the first bevel gear drives the second bevel gear to rotate, and the cooling fan follows suit. Through pre-drilled ventilation slots, the cooling system can... The cooling fan continuously blows air into the server terminal cabinet, increasing the activity of the cool air inside the server terminal and accelerating its circulation, thus improving heat dissipation efficiency. After the cool air is supplied, it needs to be expelled. During this process, the drive motor is activated to rotate the drive wheel. Under the transmission principle, the drive wheel and the driven wheel simultaneously drive the lead screw to rotate, which in turn causes the sliding seat to move the support plate, connecting plate, and top plate up and down. When the top plate moves up, it detaches directly from the server terminal body, exposing the server terminal components. During this process, the blower needs to be activated, using the suction pipe, combined air pipe, and suction head to directly absorb the upward-moving air, preventing hot air from spreading throughout the server room and thus improving heat dissipation efficiency.
[0025] (III) Beneficial Effects
[0026] This invention provides a high-efficiency heat dissipation device for computer big data servers. It has the following beneficial effects:
[0027] 1. This invention provides a high-efficiency heat dissipation device for computer big data servers. Compared with existing high-efficiency heat dissipation devices for computer big data servers, this device can target the specific server terminals requiring heat dissipation. It uses temperature sensors to detect the temperature inside each server terminal cabinet. If an abnormal temperature is detected inside an individual server terminal cabinet, it can be directly determined through a classification processing module, selecting to close or open a specific solenoid valve. This improves heat dissipation efficiency while reducing energy consumption. Simultaneously, when the entire cold air supply mechanism supplies cold air to the inside of the server terminal cabinet, multiple small air outlets ensure more even distribution of cold air, ensuring that each server terminal cabinet is enveloped in cold air. Furthermore, a blower mechanism is added to improve the airflow during cold air supply, accelerating the envelopment of components inside the server terminal cabinet by the cold air, thus accelerating heat dissipation and achieving high-efficiency heat dissipation.
[0028] 2. This invention provides a high-efficiency heat dissipation device for computer big data servers. Compared with existing high-efficiency heat dissipation devices for computer big data servers, this heat dissipation mechanism adds a heat adsorption mechanism. Simultaneously, this heat dissipation device can disassemble the server terminal cabinet. After heat dissipation is complete, the drive motor is started to rotate the drive wheel. Under the transmission principle, the drive wheel and the driven wheel simultaneously drive the lead screw to rotate, which in turn causes the sliding seat to move the support plate, connecting plate, and top plate up and down. When the top plate moves up, it directly detaches from the server terminal body, exposing the server terminal components. During this period, a blower needs to be started, using the suction pipe, combined air pipe, and suction head to directly adsorb the upward-floating gas, preventing the heat from spreading throughout the computer room and further improving heat dissipation efficiency.
[0029] 3. This invention provides a high-efficiency heat dissipation device for computer big data servers. Compared with existing high-efficiency heat dissipation devices for computer big data servers, this heat dissipation device has a higher degree of automation and adds multiple different heat dissipation mechanisms, which improves heat dissipation efficiency. At the same time, compared with existing heat dissipation mechanisms, this heat dissipation mechanism is more complete, consumes less energy, can be operated automatically, and has strong practicality. Attached Figure Description
[0030] Figure 1 This is an isometric view of a high-efficiency heat dissipation device for a computer big data server according to the present invention.
[0031] Figure 2 This is a partial structural schematic diagram of a high-efficiency heat dissipation device for a computer big data server according to the present invention;
[0032] Figure 3 This is a schematic diagram of the cooling air supply mechanism of a high-efficiency heat dissipation device for a computer big data server according to the present invention.
[0033] Figure 4 This is a schematic diagram of the disassembly mechanism of a high-efficiency heat dissipation device for a computer big data server according to the present invention.
[0034] Figure 5 This is a schematic diagram of the blower mechanism of a high-efficiency heat dissipation device for a computer big data server according to the present invention.
[0035] Figure 6 This is a schematic diagram of the structure of a cooler for a high-efficiency heat dissipation device for a computer big data server according to the present invention.
[0036] Figure 7 This is a schematic diagram of the air intake mechanism of a high-efficiency heat dissipation device for a computer big data server according to the present invention.
[0037] Figure 8 This is a schematic diagram of the structure of the fixed shell of a high-efficiency heat dissipation device for a computer big data server according to the present invention;
[0038] Figure 9 This is a schematic diagram of the installation structure of a temperature sensor for a high-efficiency heat dissipation device for a computer big data server according to the present invention.
[0039] Figure 10 This is a system flowchart of an efficient heat dissipation device for a computer big data server according to the present invention.
[0040] The components include: 1. Server terminal body; 2. Central processing unit; 3. Cooler body; 4. Server terminal cabinet; 5. Fixed outer shell; 6. Base plate; 7. Protective cover; 8. Top plate; 9. Blower; 10. Heat dissipation vent; 11. First connecting pipe; 12. Second connecting pipe; 13. Solenoid valve; 14. Third connecting pipe; 15. Fourth connecting pipe; 16. Fifth connecting pipe; 17. Small air outlet; 18. Ventilation slot; 19. Drive motor; 20. Drive wheel. 21. Belt; 22. Driven wheel; 23. Lead screw; 24. Limiting rod; 25. Sliding seat; 26. Support plate; 27. Connecting plate; 28. Fixing plate; 29. Dual-axis motor; 30. First bevel gear; 31. Second bevel gear; 32. Cooling fan; 33. Base; 34. Cooling fan; 35. Suction pipe; 36. Combined air pipe; 37. Suction head; 38. Ventilation mesh; 39. Temperature sensor; 40. Control module; 41. Sorting and processing module. Detailed Implementation
[0041] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0042] Example 1:
[0043] like Figure 1-10 As shown, this embodiment of the invention provides a high-efficiency heat dissipation device for a computer big data server, including a server terminal body 1, a central processing unit 2, and a cooler body 3. The server terminal body 1 includes multiple server terminal cabinets 4. Bases 33 are fixedly installed on both sides of the upper end of the cooler body 3. Cooling fans 34 are fixedly installed on the upper ends of the two bases 33. A first connecting pipe 11 is fixedly connected to one side wall of the cooler body 3. A second connecting pipe 12 is fixedly connected to the end of the first connecting pipe 11 away from the cooler body 3. Multiple third connecting pipes 14 are fixedly connected to the outer wall of the second connecting pipe 12. A solenoid valve 13 is fixedly sleeved on one side of the outer wall of the multiple third connecting pipes 14. A fourth connecting pipe 15 is fixedly connected to the end of the multiple third connecting pipes 14 away from the second connecting pipe 12. A fifth connecting pipe 16 is fixedly connected to both ends of the multiple fourth connecting pipes 15 and extends into the interior of the server terminal cabinet 4. Multiple small air outlet holes 17 and multiple ventilation slots 18 are opened on the inner side wall of the server terminal body 1.
[0044] Both sides of the server terminal body 1 have base plates 6 fixedly installed at the lower ends of their two side walls. A drive motor 19 is fixedly installed on one side of the upper end of each base plate 6. The output ends of both drive motors 19 are fixedly connected to drive wheels 20. Driven wheels 22 are connected to the outer walls of both drive wheels 20 via belts 21. Lead screws 23 are fixedly sleeved on the inner walls of both drive wheels 20 and driven wheels 22. Sliding seats 25 are threaded onto the outer walls of multiple lead screws 23. Multiple sliding seats 25 are arranged in pairs, and a support plate 26 is fixedly connected between each pair of sliding seats 25. Each support plate 26 has a connecting plate 27 fixedly connected to its upper end. A top plate 8 is fixedly connected to the upper end of both connecting plates 27. The system includes a base 33, a cooling fan 34, a first connecting pipe 11, a second connecting pipe 12, a third connecting pipe 14, a solenoid valve 13, a fourth connecting pipe 15, a fifth connecting pipe 16, an air outlet 17, and a ventilation slot 18. The cooling fan 34 supplies cold air to the main body 3 of the refrigerator. The cooling system utilizes the first connecting pipe 11, the second connecting pipe 12, the third connecting pipe 14, the solenoid valve 13, the fourth connecting pipe 15, and the fifth connecting pipe 16. The receiver 16 continuously supplies cool air to the interior of the server terminal body 1. During this process, solenoid valves 13 can be used to supply cool air individually. For each server terminal cabinet 4 that requires cooling, the solenoid valve 13 can be opened separately, reducing energy consumption. Multiple small air vents 17 are added to ensure more even distribution of cool air into the server terminal cabinet 4, improving overall heat dissipation efficiency. The system includes a base plate 6, a drive motor 19, a drive wheel 20, a belt 21, a driven wheel 22, a lead screw 23, a sliding seat 25, a support plate 26, and a top plate. 8. The drive motor 19 drives the drive wheel 20 to rotate. Through the transmission principle, the drive wheel 20 will drive the driven wheel 22 to rotate simultaneously. Under the action of the lead screw 23 and the limit rod 24, the sliding seat 25 can move up and down. Similarly, the sliding seat 25 can drive the support plate 26 and the top plate 8 to move up and down. During the heat dissipation period, the upper cover of the server terminal body 1 can be directly disassembled. During the heat dissipation period, the required heat dissipation components can be exposed, which can make their heat dissipation more rapid and improve the overall heat dissipation efficiency.
[0045] Each of the multiple server terminal cabinets 4 has a protective cover 7 fixedly installed on one side of its upper end. A temperature sensor 39 is fixedly installed inside each protective cover 7. The protective cover 7 and the temperature sensor 39 provide safety protection for the temperature sensor 39. One temperature sensor 39 is installed for each server terminal cabinet 4. When heat dissipation is required, the appropriate temperature sensor 39 can be selected based on the specific server terminal cabinet 4 requiring cooling, directly reducing energy consumption. The central processing unit 2 includes a control module 40, which includes a classification processing module 41. With the central processing unit 2, control module 40, and classification processing module 41, when individual heat dissipation is required, the classification processing module 41 uses the temperature sensor 1 to determine the appropriate temperature sensor. Temperature sensors 2, 3, 4, and n are used to detect temperature anomalies. After detecting an anomaly in any of the temperature sensors 39, the central processing unit 2 and control module 40 accurately determine and open solenoid valves 1, 2, 3, 4, or n. This ensures precise heat dissipation for the server terminal cabinet 4, reducing energy consumption and demonstrating strong practicality. A fixed housing 5 is fixedly installed in the middle of the rear face of the server terminal body 1. Multiple dual-axis motors 29 are fixedly installed inside the fixed housing 5. The output ends of each dual-axis motor 29 are fixedly connected to a first bevel gear 30, and each first bevel gear 30 is meshed with a second... The inner walls of the bevel gear 31, multiple first bevel gears 30, and second bevel gears 31 are all fixedly connected to cooling fans 32 via rotating shafts. A ventilation mesh 38 is fixedly installed on the upper surface of the fixed housing 5. With the fixed housing 5, dual-axis motor 29, first bevel gears 30, second bevel gears 31, cooling fans 32, and ventilation mesh 38, the ventilation mesh 38 facilitates gas exchange within the fixed housing 5. During heat dissipation, the dual-axis motor 29 can be activated to drive the first bevel gears 30 to rotate. Utilizing the meshing principle, this drives the second bevel gears 31 to rotate, causing the cooling fans 32 to rotate simultaneously. Ventilation slots 18 are provided on the inner wall of the server terminal cabinet 4, communicating with the fixed housing 5. During air supply, the airflow accelerates the cooling process. This system allows cool air to quickly envelop the interior of the server terminal body 1, further improving heat dissipation efficiency. Blowers 9 are fixedly installed on both sides of the upper end of the top plate 8. Each blower 9 has an intake pipe 35 fixedly connected to its input end. A merging pipe 36 is fixedly connected to the lower end of each of the two intake pipes 35. Multiple suction heads 37 are fixedly connected to the lower end of each of the two merging pipes 36 and penetrate the top plate 8. With the blowers 9, intake pipes 35, merging pipes 36, and suction heads 37 installed, during heat dissipation, the top plate 8 is pushed out of the server terminal body 1 by the connecting plate 27 until it detaches from the server terminal body 1. When hot air rises, the blowers 9 are activated, and the intake pipes 35, merging pipes 36, and suction heads 37 extract the floating gas, directly adsorbing most of the hot air.This design prevents hot air from freely spreading and covering the entire server room. It directly extracts most of the hot air, preventing it from re-entering the server terminal body 1, thus further improving heat dissipation efficiency. Two limiting rods 24 are installed on one side of each of the multiple sliding seats 25. These limiting rods 24 prevent the sliding seats 25 from rotating freely when moving up and down. Two fixing plates 28 are fixedly installed on the upper part of each side wall of the server terminal body 1. These fixing plates 28 provide installation space and also determine the installation positions of the lead screw 23 and the limiting rods 24. Heat dissipation vents 10 are provided on both side walls of the server terminal body 1 to dissipate heat from the sides of the server terminal body 1.
[0046] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A high-efficiency heat dissipation device for a computer big data server, comprising a server terminal body (1), a central processing unit (2), and a cooler body (3), characterized in that: The server terminal body (1) includes multiple server terminal cabinets (4). Bases (33) are fixedly installed on both sides of the upper end of the cooler body (3). Cooling fans (34) are fixedly installed on the upper ends of both bases (33). A first connecting pipe (11) is fixedly connected to one side wall of the cooler body (3). A second connecting pipe (12) is fixedly connected to the end of the first connecting pipe (11) away from the cooler body (3). Multiple third connecting pipes (14) are fixedly connected to the outer wall of the second connecting pipe (12). A solenoid valve (13) is fixedly sleeved on one side of the outer wall of each of the third connecting pipes (14). A fourth connecting pipe (15) is fixedly connected to one end of each of the third connecting pipes (14) away from the second connecting pipe (12). A fifth connecting pipe (16) is fixedly connected to both ends of each of the fourth connecting pipes (15) and extends into the interior of the server terminal cabinet (4). A plurality of small air outlet holes (17) are opened on the inner side wall of the server terminal body (1). A plurality of ventilation slots (18) are opened on the inner side wall of the server terminal body (1). The server terminal body (1) has a base plate (6) fixedly installed on the lower end of both sides of the main body. A drive motor (19) is fixedly installed on one side of the upper end of each of the two base plates (6). The output end of each of the two drive motors (19) is fixedly connected to a drive wheel (20). The outer wall of each of the two drive wheels (20) is connected to a driven wheel (22) via a belt (21). The inner side wall of each of the two drive wheels (20) and the driven wheel (22) is fixedly fitted with a lead screw (23). The outer wall of each of the multiple lead screws (23) is threadedly fitted with a sliding seat (25). The multiple sliding seats (25) are arranged in pairs. A support plate (26) is fixedly connected between each pair of sliding seats (25). A connecting plate (27) is fixedly connected to the upper end of each of the two support plates (26). A top plate (8) is fixedly connected to the upper end of each of the two connecting plates (27).
2. The high-efficiency heat dissipation device for a computer big data server according to claim 1, characterized in that: Each of the server terminal cabinets (4) is fixedly equipped with a protective cover (7) on one side of its upper end, and a temperature sensor (39) is fixedly installed inside each of the protective covers (7).
3. The high-efficiency heat dissipation device for a computer big data server according to claim 1, characterized in that: The central processing unit (2) includes a control module (40), which includes a classification processing module (41).
4. The high-efficiency heat dissipation device for a computer big data server according to claim 1, characterized in that: A fixed outer shell (5) is fixedly installed in the middle of the rear end face of the server terminal body (1). Multiple dual-axis motors (29) are fixedly installed inside the fixed outer shell (5). The output ends of the multiple dual-axis motors (29) are all fixedly connected to a first bevel gear (30). The multiple first bevel gears (30) are all meshed with a second bevel gear (31). The inner sidewalls of the multiple first bevel gears (30) and the second bevel gears (31) are all fixedly connected to a cooling fan (32) through a rotating shaft. A ventilation mesh (38) is fixedly installed on the upper end face of the fixed outer shell (5).
5. The high-efficiency heat dissipation device for a computer big data server according to claim 1, characterized in that: Blowers (9) are fixedly installed on both sides of the upper end of the top plate (8). The input ends of the two blowers (9) are fixedly connected to suction pipes (35). The lower ends of the two suction pipes (35) are fixedly connected to merging air pipes (36). The lower ends of the two merging air pipes (36) are fixedly connected to multiple suction heads (37) and penetrate the top plate (8).
6. The high-efficiency heat dissipation device for a computer big data server according to claim 1, characterized in that: Two limiting rods (24) are provided through one side of each of the multiple sliding seats (25).
7. The high-efficiency heat dissipation device for a computer big data server according to claim 1, characterized in that: Two fixing plates (28) are fixedly installed on the upper part of both sides of the main body (1) of the server terminal.
8. The high-efficiency heat dissipation device for a computer big data server according to claim 1, characterized in that: The server terminal body (1) has heat dissipation vents (10) on both sides of its main body.