Big data server cabinet for computer
By introducing movable, disassembly, heat dissipation, and shock absorption protection structures into the big data server cabinet, the problems of heat accumulation and inconvenient maintenance inside the server cabinet are solved, achieving efficient heat dissipation, convenient operation, and improved shock resistance.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- ANYANG INST OF TECH
- Filing Date
- 2025-12-08
- Publication Date
- 2026-04-28
AI Technical Summary
The electronic components inside existing big data server cabinets generate a lot of heat, affecting the use of the equipment and making maintenance inconvenient.
The design incorporates movable structures, disassembly structures, heat dissipation structures, air circulation structures, data transmission structures, and shock absorption and protection structures, including components such as movable doors, disassembly structures, cooling fans, rotating fans, data receiving and transmission plates, and shock absorbers, to achieve convenient operation, effective heat dissipation, and shock absorption.
It improves the server's heat dissipation efficiency and stability, simplifies the maintenance process, enhances the convenience of data transmission, and improves the equipment's shock resistance.
Smart Images

Figure CN121940988A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of big data server racks, specifically a big data server rack for computers. Background Technology
[0002] Big data, or massive data, refers to information that is so large in scale that it cannot be captured, managed, processed, and organized into information that helps businesses make more proactive business decisions within a reasonable timeframe using current mainstream software tools.
[0003] With the continuous development of science and technology, data growth is increasing exponentially, and big data processing will become an inevitable trend in data processing development. For big data servers, their data analysis and processing efficiency and storage capacity have become important indicators. Big data, or massive data, refers to the amount of data involved that is so large that it cannot be captured, managed, processed, and organized into information that helps enterprises make more proactive business decisions within a reasonable time using current mainstream software tools.
[0004] Currently used big data server cabinets contain many electronic components, which generate a lot of heat during use and can interfere with the operation of the device. Therefore, we propose a big data server cabinet for computers. Summary of the Invention
[0005] The purpose of this invention is to provide a big data server cabinet for computers to solve the problems mentioned in the background art.
[0006] To achieve the above objectives, a big data server cabinet for computers includes a server cabinet. The front of the server cabinet has a movable structure for easy opening. A big data server is installed inside the server cabinet. A disassembly structure for cleaning is installed on the outer wall of the server cabinet. Below the disassembly structure is a heat dissipation structure for cooling the server cabinet. An air circulation structure for airflow is installed at the back of the server cabinet. A data transmission structure for data processing is installed inside the server cabinet. A shock-absorbing protection structure is installed at the bottom of the server cabinet. A transparent glass panel is provided at the front of the server cabinet. A fixing mesh panel and a ventilation mesh are installed inside the server cabinet.
[0007] Preferably, the movable structure includes a movable door, a handle groove, and a hinge. The movable door is movably connected to the front end of the server rack via the hinge. There are two movable doors. The handle groove is formed on the surface of the movable door. There are two handle grooves. With the movable door and handle groove, the inside of the server rack can be easily operated and maintained.
[0008] Preferably, the big data server includes a big data cabinet, a connection port, a network interface, a heat dissipation mesh, and a protective pad. The big data cabinet is fixedly installed on the surface of the fixed mesh plate, and there are several big data cabinets. The connection port and network interface are located on the front outer wall of the big data cabinet. There are several network interfaces. The heat dissipation mesh is located on the outer wall of the big data cabinet. The protective pad is fixedly installed on the outer wall of the big data cabinet and is made of rubber.
[0009] Preferably, the disassembly structure includes a dustproof protective net, a fixed handle, a movable button, a support spring, an arc-shaped plate, and a connecting spring. The dustproof protective net is movably connected to the inside of the server rack. The fixed handle is integrally connected to one end of the dustproof protective net. The movable button is movably connected to the top of the server rack. There are two movable buttons. The support spring is fixedly connected between the server rack and the movable button. One end of the arc-shaped plate is movably connected to the top of the dustproof protective net, and the other end of the arc-shaped plate is connected to the connecting spring. The bottom of the connecting spring is fixedly connected to the dustproof protective net. When the user needs to operate or clean the inside of the server rack, they can press the movable button. When the movable button is pressed downwards, it will contact the arc-shaped plate under the action of the support spring, causing one end of the arc-shaped plate to press down on the connecting spring. Then, the fixed handle can be pulled out by hand to remove the dustproof protective net. This allows for both operation of the inside of the server rack and cleaning of the dustproof protective net, which is very convenient.
[0010] Preferably, the heat dissipation structure includes a dust filter, a motor housing, a variable frequency motor, and a cooling fan. The motor housing is fixedly installed on the inner wall of the server rack, and there are four motor housings. The variable frequency motor is fixedly installed inside the motor housing. The cooling fan is driven and connected to one end of the motor housing. The dust filter is fixedly installed on the outside of the cooling fan. The size of the dust filter is larger than the size of the cooling fan. The rotation of the variable frequency motor can drive the cooling fan to rotate, thereby removing the internal temperature of the device and dissipating heat from the device, thus ensuring the stable working efficiency of the server rack.
[0011] Preferably, the air circulation structure includes a fan housing, fixing screws, and a rotating fan. The fan housing is fixedly installed on the outer wall of the server rack, and there are several fan housings. The fixing screws are fixedly installed on the outer wall of the fan housing. The rotating fan is rotatably connected to the inside of the fan housing. The size of the rotating fan is smaller than the size of the fan housing. By rotating the fan, air can flow, thereby removing heat from the inside of the device and ensuring its stable working efficiency.
[0012] Preferably, the data transmission structure includes a fixed plate, a data receiving and transmitting plate, a sliding plate, and a pull-out handle. The fixed plate is fixedly installed inside the server rack. The data receiving and transmitting plate is slidably connected to the inside of the fixed plate via the sliding plate. There are several data receiving and transmitting plates. The pull-out handle is fixedly installed on the outer wall of the data receiving and transmitting plate. There are also several pull-out handles. The design of the pull-out handles facilitates the user's operation of pulling out the data receiving and transmitting plate. The number of pull-out handles corresponds to the number of data receiving and transmitting plates, allowing the user to easily operate the data receiving and transmitting plate from one or more locations.
[0013] Preferably, the shock absorption protection structure includes movable columns, fixed columns, friction pads, shock absorbers, and damping springs. The movable columns are connected to the bottom of the main server cabinet of the refrigeration unit. There are four movable columns, each movably connected inside a fixed column. The fixed column is larger than the movable column. The friction pad is fixedly connected to the inner wall of the fixed column, and the movable column contacts the friction pad. The shock absorber is fixedly installed inside the movable column. The damping spring is fixedly connected between the movable column and the fixed column. When a downward force is applied to the shock absorber, the internal damping spring moves downward, causing the movable column to move downward and rub against the friction pad, thus counteracting the applied force and achieving damping and shock absorption, reducing vibration and amplitude.
[0014] Compared with the prior art, the beneficial effects of the present invention are: This invention, through the inclusion of movable structures such as movable doors and handle recesses, makes opening the server rack convenient and quick, improving work efficiency. The cooling fans and dust filters in the disassembly structure work together to ensure good heat dissipation inside the server rack, preventing overheating. The dust protection mesh in the disassembly structure and the dust filter design in the heat dissipation structure make cleaning and maintenance simple and convenient.
[0015] The rotating fan in the air circulation structure can drive airflow, further enhancing the heat dissipation effect, and also helping to prevent dust accumulation.
[0016] The movable columns, fixed columns, friction pads, shock absorbers, and damping springs in the vibration damping protection structure work together to effectively reduce equipment vibration and protect the internal structure. The design of the vibration damping protection structure can effectively absorb vibration and improve the stability of the equipment.
[0017] The design of the big data server rack, connection ports, and network interfaces in the big data server makes this invention suitable for data processing needs of various scales. The data receiving and transmission modules and pull-out handles in the data transmission structure make data transmission more convenient and secure. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a schematic diagram of the structure of a big data server; Figure 3 This is a plan view of the disassembled structure; Figure 4 This is a schematic diagram of the internal structure of the heat dissipation system; Figure 5 This is a schematic diagram of the air circulation structure; Figure 6 This is a planar schematic diagram of the data transmission structure; Figure 7 This is a schematic diagram of the internal structure of the vibration damping and protection structure.
[0019] In the diagram: 1. Server rack; 2. Movable structure; 3. Big data server; 4. Disassembly structure; 5. Heat dissipation structure; 6. Air circulation structure; 7. Data transmission structure; 8. Shock absorption and protection structure; 9. Transparent glass; 10. Fixed mesh panel; 11. Ventilation mesh; 21. Movable door; 22. Handle groove; 23. Hinge; 31. Big data rack; 32. Connection port; 33. Network interface; 34. Heat dissipation mesh; 35. Protective pad; 41. Dustproof protective mesh; 42. 43. Fixed handle; 44. Movable button; 45. Support spring; 46. Arc-shaped plate; 47. Connecting spring; 51. Dustproof net; 52. Motor housing; 53. Variable frequency motor; 54. Cooling fan; 61. Fan housing; 62. Fixing screw; 63. Rotating fan; 71. Fixed plate; 72. Data receiving and transmission plate; 73. Sliding plate; 74. Pull-out handle; 81. Movable column; 82. Fixed column; 83. Friction pad; 84. Shock absorber; 85. Damping spring. Detailed Implementation
[0020] 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.
[0021] Please see Figure 1-7 The diagram illustrates a big data server rack for computers, comprising a server rack 1. The front of the server rack 1 has a movable structure 2 for easy opening. A big data server 3 is installed inside the server rack 1. A disassembly structure 4 for easy cleaning is installed on the outer wall of the server rack 1. Below the disassembly structure 4 is a heat dissipation structure 5 for cooling the server rack 1. An air circulation structure 6 for airflow is installed at the back of the server rack 1. A data transmission structure 7 for data processing is installed inside the server rack 1. A shock-absorbing protection structure 8 for protecting the server rack 1 is installed at the bottom. A transparent glass 9 is provided at the front of the server rack 1. A fixed mesh panel 10 and a ventilation mesh 11 are installed inside the server rack 1.
[0022] Specifically, this big data server cabinet not only facilitates server management and maintenance, but also improves server stability and reliability.
[0023] Specifically, the design of the movable structure 2 makes opening the server rack 1 very convenient, facilitating the installation, disassembly, and maintenance of the big data server 3. The design of the disassembly structure 4 makes cleaning the server rack 1 easy, and also facilitates the inspection and repair of the internal structure. The design of the heat dissipation structure 5 ensures that the temperature inside the server rack 1 remains at a suitable level, which is conducive to the stable operation of the server. The design of the air circulation structure 6 ensures air circulation inside the server rack 1, which helps to improve the server's heat dissipation effect.
[0024] The design of data transmission structure 7 ensures that the server can process data quickly and accurately, improving server performance. The design of shock absorption and protection structure 8 effectively reduces the impact of external vibrations on server rack 1, improving the server's shock resistance. The design of transparent glass 9 allows us to observe the internal situation of server rack 1 at any time, facilitating server monitoring and management.
[0025] The movable structure 2 includes a movable door 21, a handle groove 22, and a hinge 23. The movable door 21 is movably connected to the front end of the server rack 1 via the hinge 23. There are two movable doors 21. The handle groove 22 is formed on the surface of the movable door 21. There are two handle grooves 22.
[0026] Specifically, the surface of the movable door 21 is provided with a sealing strip to enhance its sealing performance. The sealing strip is made of a high-temperature resistant and wear-resistant material, which can effectively prevent dust, dirt, etc. from entering the interior of the server rack 1.
[0027] The big data server 3 includes a big data cabinet 31, a connection port 32, a network interface 33, a heat dissipation mesh 34, and a protective pad 35. The big data cabinet 31 is fixedly installed on the surface of the fixed mesh plate 10. There are several big data cabinets 31. The connection port 32 and the network interface 33 are opened on the front outer wall of the big data cabinet 31. There are several network interfaces 33. The heat dissipation mesh 34 is opened on the outer wall of the big data cabinet 31. The protective pad 35 is fixedly installed on the outer wall of the big data cabinet 31. The protective pad 35 is made of rubber.
[0028] Specifically, the Big Data Server plays a crucial role in data centers, integrating large-scale data storage and processing capabilities to provide enterprises and organizations with efficient and reliable data services. Its main body is a large server rack, which integrates various components and devices to achieve efficient data storage and computation. Several connection ports and network interfaces are located on the front outer wall of the rack, facilitating the connection of external devices and networks. Ventilation grilles are located on the outer wall of the rack to effectively dissipate heat and ensure a suitable temperature inside the rack.
[0029] To protect the security of the big data server 3, several protective pads are fixedly installed on its outer wall. These protective pads are made of rubber and have good cushioning and shock absorption effects, which can effectively reduce the impact and vibration of external factors on the cabinet, thereby extending its service life.
[0030] The disassembly structure 4 includes a dustproof protective net 41, a fixed handle 42, a movable button 43, a support spring 44, an arc-shaped plate 45, and a connecting spring 46. The dustproof protective net 41 is movably connected to the inside of the server rack 1. The fixed handle 42 is integrally connected to one end of the dustproof protective net 41. The movable button 43 is movably connected to the top of the server rack 1. There are two movable buttons 43. The support spring 44 is fixedly connected between the server rack 1 and the movable button 43. One end of the arc-shaped plate 45 is movably connected to the top of the dustproof protective net 41. The other end of the arc-shaped plate 45 is connected to the connecting spring 46. The bottom of the connecting spring 46 is fixedly connected to the dustproof protective net 41. There are two dustproof protective nets 41.
[0031] Specifically, the support spring 44 is a flat spring, with its lateral dimension slightly larger than the length of the movable button 43 and its longitudinal dimension slightly smaller than the width of the movable button 43. This design allows the support spring 44 to provide sufficient elasticity to support the movable button 43 while preventing lateral displacement of the movable button 43 during pressing.
[0032] One end of the connecting spring 46 is connected to the top of the arc-shaped plate 45, and the other end is connected to the bottom of the dustproof protective net 41. This design allows the connecting spring 46 to provide a certain tension, maintaining the stability between the arc-shaped plate 45 and the dustproof protective net 41.
[0033] The heat dissipation structure 5 includes a dustproof mesh 51, a motor housing 52, a variable frequency motor 53, and a cooling fan 54. The motor housing 52 is fixedly installed on the inner wall of the server rack 1, and there are four motor housings 52. The variable frequency motor 53 is fixedly installed inside the motor housing 52. The cooling fan 54 is drivenly connected to one end of the motor housing 52. The dustproof mesh 51 is fixedly installed on the outside of the cooling fan 54, and the size of the dustproof mesh 51 is larger than the size of the cooling fan 54.
[0034] Specifically, the heat dissipation structure 5 is also equipped with a temperature sensor to monitor the temperature inside the device and transmit the temperature signal to the control module. The control module adjusts the speed of the cooling fan 54 according to the temperature signal to realize intelligent control of the heat dissipation structure.
[0035] The cooling fan 54 is a centrifugal fan, which has the characteristics of large air volume and low noise. It can effectively remove the heat from the motor housing 52 and reduce the temperature inside the motor housing 52.
[0036] The air circulation structure 6 includes a fan housing 61, fixing screws 62, and a rotating fan 63. The fan housing 61 is fixedly installed on the outer wall of the server rack 1. There are several fan housings 61. The fixing screws 62 are fixedly installed on the outer wall of the fan housing 61. The rotating fan 63 is rotatably connected to the inside of the fan housing 61. The size of the rotating fan 63 is smaller than the size of the fan housing 61.
[0037] Specifically, the air circulation structure 6 also includes a control module, which is connected to the rotary fan 63 and is used to control the rotation of the rotary fan 63.
[0038] The fan housing 61 can be made of metal or plastic and is fixedly installed on the outer wall of the server rack 1, allowing for easy installation and removal. The number and position of the fixing screws 62 can be selected according to the size and shape of the fan housing 61, and are used to fix the fan housing 61 to the outer wall of the server rack 1.
[0039] The data transmission structure 7 includes a fixed plate 71, a data receiving and transmission plate 72, a sliding plate 73, and a pull handle 74. The fixed plate 71 is fixedly installed inside the server rack 1. The data receiving and transmission plate 72 is slidably connected to the inside of the fixed plate 71 through the sliding plate 73. There are several data receiving and transmission plates 72. The pull handle 74 is fixedly installed on the outer wall of the data receiving and transmission plate 72. There are several pull handles 74.
[0040] Specifically, the design of the sliding plate 73 takes into account both the load-bearing capacity and smooth sliding of the data receiving and transmission plate 72. The sliding plate 73 is made of high-strength, wear-resistant material to ensure stability and reliability during long-term use.
[0041] The shock absorption and protection structure 8 includes a movable column 81, a fixed column 82, a friction pad 83, a shock absorber 84, and a damping spring 85. The movable column 81 is connected to the bottom of the main server cabinet 1 of the refrigeration unit. There are four movable columns 81. The movable columns 81 are movably connected to the inside of the fixed column 82. The size of the fixed column 82 is larger than the size of the movable column 81. The friction pad 83 is fixedly connected to the inner wall of the fixed column 82. The movable column 81 is in contact with the friction pad 83. The shock absorber 84 is fixedly installed inside the movable column 81. The damping spring 85 is fixedly connected between the movable column 81 and the fixed column 82.
[0042] Specifically, the shock absorber 84 in the shock absorption and protection structure 8 can be made of rubber material. Rubber material has good elasticity and shock absorption performance, which can effectively absorb and disperse the vibration and impact force generated by the main server cabinet 1 of the refrigeration machine during operation, thereby protecting the electronic equipment and circuits inside the main server cabinet 1 of the refrigeration machine from damage.
[0043] The damping spring 85 can be made of stainless steel. Stainless steel has excellent corrosion resistance and strength, which can ensure that the damping spring 85 is not easily deformed or damaged during long-term use, thereby ensuring the stability and reliability of the shock absorption protection structure 8. Example
[0044] In the aforementioned server rack 1, when it is necessary to open the server rack 1, the handle groove 22 can be rotated to open the movable door 21, facilitating maintenance and repair of the big data server 3. During disassembly and cleaning, the dustproof protective mesh 41 can be removed, making it easier to clean the big data server 3. During heat dissipation, the cooling fan 54 starts, carrying heat away from the big data server 3 and filtering dust through the dustproof mesh 51. During air circulation, the rotating fan 63 starts, driving airflow and enhancing air circulation within the server rack 1. During data transmission, the data receiving and transmission panel 72 can be pulled out using the pull handle 74 for convenient data transmission. During shock absorption protection, the shock absorber 84 activates, absorbing vibrations from the operation of the server rack 1 and improving the stability of data transmission.
[0045] When maintenance and repair of the big data server 3 are required, the movable door 21 can be opened for easy access. When cleaning of the big data server 3 is required, the dustproof protective net 41 can be removed for easy cleaning.
[0046] When heat dissipation is needed, the cooling fan 54 starts, removing heat from the big data server 3 and filtering dust through the dust filter 51. When improved air circulation is required, the rotary fan 63 starts, driving airflow and enhancing air circulation within the server rack 1. Example
[0047] The big data cabinet 31 is fixedly installed on the surface of the fixed mesh plate 10. There are several big data cabinets 31. The connection port 32 and the network interface 33 are opened on the front outer wall of the big data cabinet 31. There are several network interfaces 33. The heat dissipation mesh 34 is opened on the outer wall of the big data cabinet 31. The protective pad 35 is fixedly installed on the outer wall of the big data cabinet 31. The protective pad 35 is made of rubber.
[0048] The Big Data Server 3 plays a crucial role in data centers, integrating massive data storage and processing capabilities to provide enterprises and organizations with efficient and reliable data services. Its main body is a large server rack, integrating various components and devices to achieve efficient data storage and computation. Several connection ports and network interfaces are located on the front outer wall of the rack, facilitating the connection of external devices and networks. Ventilation grilles are located on the outer wall of the rack, effectively dissipating heat and ensuring a suitable internal temperature. The design of the movable structure 2 makes opening the server rack 1 very convenient, facilitating the installation, disassembly, and maintenance of the big data server 3. The design of the disassembly structure 4 makes cleaning the server rack 1 easy, and also facilitates the inspection and repair of the internal structure. The design of the heat dissipation structure 5 ensures that the temperature inside the server rack 1 remains at a suitable level, which is conducive to the stable operation of the server. The design of the air circulation structure 6 ensures air circulation within the server rack 1, which helps to improve the server's heat dissipation effect.
[0049] The design of data transmission structure 7 ensures that the server can process data quickly and accurately, improving server performance. The design of shock absorption and protection structure 8 effectively reduces the impact of external vibrations on server rack 1, improving the server's vibration resistance. The design of transparent glass 9 allows us to observe the internal situation of server rack 1 at any time, facilitating server monitoring and management.
[0050] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus.
[0051] 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 variations 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 big data server rack for computers, comprising a server rack (1), characterized in that: The front end of the server rack (1) is provided with an movable structure (2) that allows easy opening of the server rack (1). The server rack (1) is equipped with a big data server (3). The outer wall of the server rack (1) is equipped with a disassembly structure (4) that allows for disassembly and cleaning. Below the disassembly structure (4) is a heat dissipation structure (5) that allows for heat dissipation of the server rack (1). The back of the server rack (1) is equipped with an air circulation structure (6) that allows for airflow. The inside of the server rack (1) is equipped with a data transmission structure (7) that allows for data processing. The bottom of the server rack (1) is equipped with a shock-absorbing protection structure (8) that allows for protection of the server rack (1). The front end of the server rack (1) is equipped with transparent glass (9). The inside of the server rack (1) is equipped with a fixed mesh plate (10) and a breathable mesh (11).
2. A big data server rack for a computer according to claim 1, characterized in that: The movable structure (2) includes a movable door (21), a handle groove (22) and a hinge (23). The movable door (21) is movably connected to the front end of the server rack (1) through the hinge (23). There are two movable doors (21). The handle groove (22) is opened on the surface of the movable door (21). There are two handle grooves (22).
3. A big data server rack for a computer according to claim 1, characterized in that: The big data server (3) includes a big data cabinet (31), a connection port (32), a network interface (33), a heat dissipation mesh (34), and a protective pad (35). The big data cabinet (31) is fixedly installed on the surface of the fixed mesh plate (10). There are several big data cabinets (31). The connection port (32) and the network interface (33) are opened on the front outer wall of the big data cabinet (31). There are several network interfaces (33). The heat dissipation mesh (34) is opened on the outer wall of the big data cabinet (31). The protective pad (35) is fixedly installed on the outer wall of the big data cabinet (31). The protective pad (35) is made of rubber.
4. A big data server rack for a computer according to claim 1, characterized in that: The disassembly structure (4) includes a dustproof protective net (41), a fixed handle (42), a movable button (43), a support spring (44), an arc-shaped plate (45), and a connecting spring (46). The dustproof protective net (41) is movably connected to the inside of the server rack (1). The fixed handle (42) is integrally connected to one end of the dustproof protective net (41). The movable button (43) is movably connected to the top of the server rack (1). There are two movable buttons (43). The support spring (44) is fixedly connected between the server rack (1) and the movable button (43). One end of the arc-shaped plate (45) is movably connected to the top of the dustproof protective net (41). The other end of the arc-shaped plate (45) is connected to the connecting spring (46). The bottom of the connecting spring (46) is fixedly connected to the dustproof protective net (41). There are two dustproof protective nets (41).
5. A big data server rack for a computer according to claim 1, characterized in that: The heat dissipation structure (5) includes a dustproof net (51), a motor housing (52), a variable frequency motor (53), and a cooling fan (54). The motor housing (52) is fixedly installed on the inner wall of the server rack (1). There are four motor housings (52). The variable frequency motor (53) is fixedly installed inside the motor housing (52). The cooling fan (54) is driven and connected to one end of the motor housing (52). The dustproof net (51) is fixedly installed on the outside of the cooling fan (54). The size of the dustproof net (51) is larger than the size of the cooling fan (54).
6. A big data server rack for a computer according to claim 1, characterized in that: The air circulation structure (6) includes a fan housing (61), fixing screws (62) and a rotating fan (63). The fan housing (61) is fixedly installed on the outer wall of the server rack (1). There are several fan housings (61). The fixing screws (62) are fixedly installed on the outer wall of the fan housing (61). The rotating fan (63) is rotatably connected to the inside of the fan housing (61). The size of the rotating fan (63) is smaller than the size of the fan housing (61).
7. A big data server rack for a computer according to claim 1, characterized in that: The data transmission structure (7) includes a fixed plate (71), a data receiving and transmission plate (72), a sliding plate (73), and a pull handle (74). The fixed plate (71) is fixedly installed inside the server rack (1). The data receiving and transmission plate (72) is slidably connected to the inside of the fixed plate (71) through the sliding plate (73). There are several data receiving and transmission plates (72). The pull handle (74) is fixedly installed on the outer wall of the data receiving and transmission plate (72). There are several pull handles (74).
8. A big data server rack for a computer according to claim 1, characterized in that: The shock absorption protection structure (8) includes a movable column (81), a fixed column (82), a friction pad (83), a shock absorber (84), and a damping spring (85). The movable column (81) is connected to the bottom of the main server cabinet (1) of the refrigeration machine. There are four movable columns (81). The movable column (81) is movably connected to the inside of the fixed column (82). The size of the fixed column (82) is larger than the size of the movable column (81). The friction pad (83) is fixedly connected to the inner wall of the fixed column (82). The movable column (81) is in contact with the friction pad (83). The shock absorber (84) is fixedly installed inside the movable column (81). The damping spring (85) is fixedly connected between the movable column (81) and the fixed column (82).