A cabinet type computing power server
By setting up perforated trays and main flow cavities inside the rack to connect the cooling systems of multiple rack-mounted computing servers, the problem of high costs for individual cooling systems for each server is solved, achieving integrated cooling and convenient maintenance for multiple servers.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- BEIJING SHUDAO INTELLIGENT COMPUTING TECHNOLOGY CO LTD
- Filing Date
- 2025-07-07
- Publication Date
- 2026-06-16
Smart Images

Figure CN224368200U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of computing server technology, specifically a rack-mounted computing server. Background Technology
[0002] A computing server, also known as a high-performance computing server, is a server device specifically designed to provide high-performance computing capabilities. For example, the liquid-cooled high-performance computing server described in application number "202420494261.2" relates to the field of liquid-cooled server technology. Addressing the problem that traditional liquid-cooled servers often have messy coolant pipes arranged haphazardly within the cabinet, hindering maintenance and reducing worker efficiency, this invention proposes a solution. The solution includes a cabinet housing a high-performance computing server group and a liquid-cooling heat dissipation component. This invention, by incorporating a liquid-cooling heat dissipation component that allows for easy maintenance, neatly arranges the related liquid-cooling pipes, significantly improving the convenience of maintenance and effectively increasing worker efficiency. This solution is worthy of widespread adoption.
[0003] However, in actual use, there are a large number of computing servers, and each rack-mounted computing server has its own cooling system, which is obviously very expensive. Moreover, multiple cooling systems require the heat dissipation end to be installed outdoors, which is not only time-consuming and labor-intensive in actual installation, but also makes heat dissipation a problem for the heat dissipation end that is concentrated together. Utility Model Content
[0004] To address the shortcomings of existing technologies, this utility model provides a rack-mounted computing server, which solves the problem that each rack-mounted computing server requires a separate cooling system, which is obviously expensive and also presents a challenge in terms of heat dissipation.
[0005] To achieve the above objectives, this utility model is implemented through the following technical solution: a rack-mounted computing server, comprising a main body, wherein a first side plate and a second side plate are respectively fixedly connected to both sides of the main body by bolts, a hollow support plate is provided inside the main body, and a circulation cavity is opened inside the hollow support plate, wherein both ends of the circulation cavity penetrate through the hollow support plate near the first side plate, and both sides of the first side plate are provided with main flow cavities extending to the top, wherein both ends of the circulation cavity are connected to the two main flow cavities respectively through connecting components.
[0006] Preferably, the connecting assembly includes a plug plate, a plug slot, a plug tube, a reserved cavity, and a connecting tube; the plug plate is arranged parallel to the hollow support plate and is located on the side of the hollow support plate near the first side plate; the plug plate is inserted into the first side plate through a plug slot formed on the surface of the first side plate; the plug plate has reserved cavities at both the top and bottom; one side of the reserved cavity is connected to the plug tube; the end of the plug tube is inserted into the inner wall of the plug slot and connected to the main flow cavity; the other side of the reserved cavity is connected to the connecting tube; the other end of the connecting tube is connected to the end of the circulation cavity.
[0007] Preferably, a sealing gasket is fixedly connected to the inner wall of the insertion slot, and the surface of the sealing gasket is attached to one side of the insertion plate inserted into the insertion slot.
[0008] Preferably, an adjustment device is provided between the plug-in plate and the hollow support plate; the adjustment device includes plug rods and adjustment screws; several plug rods are provided, one end of which is fixed to the side of the plug-in plate near the hollow support plate, and the other end is inserted into the side of the hollow support plate; two adjustment screws are provided, located at the bottom front and rear of the hollow support plate respectively, and are threadedly connected to the hollow support plate; one end of the adjustment screw is rotatably connected to the surface of the plug-in plate through a bearing.
[0009] Preferably, a stainless steel mesh is embedded in the back of the main body.
[0010] Preferably, the top of the main flow cavity is connected to a connector, and the top of the connector is connected to a conduit.
[0011] Beneficial effects
[0012] This utility model provides a rack-mounted computing server. It offers the following advantages: Through the combination of a main flow cavity, a perforated tray, and a circulation cavity, this rack-mounted computing server not only achieves cooling via liquid cooling or refrigerant, ensuring operational efficiency and extending the lifespan of electronic devices, but also, by connecting the main flow cavities of multiple rack-mounted computing servers together, allows multiple servers to be cooled by the same cooling system. This reduces the number of cooling systems required, improves heat dissipation, reduces costs, and facilitates adjusting the number of servers according to actual needs, making operation convenient. Attached Figure Description
[0013] Figure 1 This is a schematic diagram of the structure of this utility model;
[0014] Figure 2 for Figure 1 A structural schematic diagram of the first side plate, the hollow support plate, and the plug-in plate;
[0015] Figure 3 for Figure 2 A schematic diagram of the structure of the middle connector plate, the reserved cavity, and the insertion rod;
[0016] Figure 4 for Figure 1 A schematic diagram of the structure of the hollow support plate, the plug plate, and the plug rod.
[0017] In the diagram: 1. Main body; 2. First side plate; 3. Second side plate; 4. Hollowed-out support plate; 5. Circulation chamber; 6. Insertion plate; 7. Insertion groove; 8. Sealing gasket; 9. Insertion tube; 10. Main flow passage chamber; 11. Reserved chamber; 12. Connecting tube; 13. Insertion rod; 14. Adjusting screw; 15. Connector; 16. Guide tube; 17. Stainless steel mesh. Detailed Implementation
[0018] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0019] Depend on Figure 1-4 As can be seen, the rack-type computing server in this case includes a main body 1. The two sides of the main body 1 are respectively fixedly connected with a first side plate 2 and a second side plate 3 by bolts. The interior of the main body 1 is provided with a hollow support plate 4. The interior of the hollow support plate 4 is provided with a circulation cavity 5. Both ends of the circulation cavity 5 penetrate the hollow support plate 4 near the side plate 2. Both sides of the interior of the first side plate 2 are provided with main flow cavities 10 extending to the top. The two ends of the circulation cavity 5 are respectively connected to the two main flow cavities 10 by connecting components.
[0020] In the specific implementation process, it is worth noting that the main body 1 can be formed by bending metal sheets or other suitable methods. The two sides are surrounded by the first side plate 2 and the second side plate 3 to form the rack structure of the computing server. The first side plate 2 and the second side plate 3 are fixed to the side of the main body 1 with screws. The surface of the first side plate 2 is provided with ventilation holes. The hollow support plate 4 is detachably connected to the inside of the main body 1. Multiple plates can be set according to actual needs. The purpose is to support the central processing unit of the computing server. It is made of aluminum or other heat-conducting materials to utilize the heat dissipation of the central processing unit. If necessary, a corresponding connector for the central processing unit can be set on the top of the hollow support plate 4 to achieve effective fixation. The two main flow cavities 10 and the circulation cavity 5 are connected. They are the input pipe and output pipe of the refrigerant or coolant, respectively. The purpose is to realize the circulation of the refrigerant or coolant in the circulation cavity 5, reduce the temperature of the hollow support plate 4, and facilitate the cooling of the central processing unit installed on the top of the hollow support plate 4. A connecting ear can be set at the end of the hollow support plate 4 near the first side plate 2 and fixed to the first side plate 2 with screws.
[0021] In one feasible embodiment, the connecting assembly includes a plug plate 6, a plug groove 7, a plug tube 9, a reserved cavity 11, and a connecting tube 12. The plug plate 6 is arranged parallel to the hollow support plate 4 and is located on the side of the hollow support plate 4 near the first side plate 2. The plug plate 6 is inserted into the first side plate 2 through the plug groove 7 opened on the surface of the first side plate 2. The plug plate 6 has reserved cavities 11 opened at both the top and bottom. One side of the reserved cavity 11 is connected to the plug tube 9. The end of the plug tube 9 is inserted into the inner wall of the plug groove 7 and connected to the main flow cavity 10. The other side of the reserved cavity 11 is connected to the connecting tube 12. The other end of the connecting tube 12 is connected to the end of the circulation cavity 5.
[0022] In the specific implementation process, it is worth noting that the plug-in plate 6 and the plug-in slot 7 cooperate to facilitate the insertion of the plug tube 9 into the side of the main flow cavity 10 for connection, and to connect the side of the hollow support plate 4 near the second side plate 3 and the second side plate 3 to ensure the effective fixation of the hollow support plate 4. The reserved cavity 11 is opened inside the plug-in plate 6 to realize the connection between the plug tube 9 and the connecting pipe 12. The connecting pipe 12 is made of a flexible hose with the outer wall covered with heat insulation material, such as a rubber hose covered with heat insulation cotton. The purpose is to realize the soft connection between the plug-in plate 6 and the hollow support plate 4, while the refrigerant or coolant can flow. Of course, the inner wall of the main flow cavity 10, the inner wall of the reserved cavity 11, and the plug tube 9 can all be provided with heat insulation material to facilitate the cooling of the hollow support plate 4. Alternatively, no heat insulation material can be provided, so that the temperature of the second side plate 3, the plug-in plate 6, etc. can also be reduced by the action of the refrigerant or coolant, which is beneficial to the overall cooling of the rack-type computing server.
[0023] It is worth noting that the insertion plate 6 is not installed inside some of the insertion slots 7, that is, the hollow support plate 4 is not fully installed, which can block the holes reserved on the side of the main channel cavity 10 for inserting the insertion tube 9.
[0024] In one feasible embodiment, a sealing gasket 8 is fixedly connected to the inner wall of the insertion slot 7, and the surface of the sealing gasket 8 is attached to the insertion plate 6 and inserted into one side of the insertion slot 7.
[0025] In the specific implementation process, it is worth noting that the sealing gasket 8 can be made of rubber and sandwiched between the plug plate 6 and the plug groove 7 to improve the sealing effect of the plug tube 9 and prevent leakage between the plug tube 9 and the main flow cavity 10. The plug tube 9 can be connected to the side of the plug plate 6 by means of threaded connection, and a sealing ring should be set and connected to the reserved cavity 11. The two ends of the connecting tube 12 can also be connected to the reserved cavity 11 and the circulation cavity 5 respectively by means of threaded connection and sealing ring.
[0026] In one feasible embodiment, an adjustment device is provided between the plug-in plate 6 and the hollow support plate 4; the adjustment device includes plug rods 13 and adjustment screws 14; several plug rods 13 are provided, one end of which is fixed to the side of the plug-in plate 6 near the hollow support plate 4, and the other end is inserted into the side of the hollow support plate 4; two adjustment screws 14 are provided, located at the bottom front and rear of the hollow support plate 4 respectively, and are threadedly connected to the hollow support plate 4; one end of the adjustment screw 14 is rotatably connected to the surface of the plug-in plate 6 through a bearing.
[0027] In the specific implementation process, it is worth noting that the purpose of the insertion rod 13 is to adjust the distance between the insertion plate 6 and the hollow support plate 4 through the insertion with the hollow support plate 4, and to support the end of the hollow support plate 4 close to the second side plate 3. During the installation of the hollow support plate 4, the adjusting screw 14 is rotated, and through the threaded connection between the adjusting screw 14 and the hollow support plate 4, the insertion plate 6 is driven away from the hollow support plate 4 and inserted into the insertion slot 7. In this way, one end of the hollow support plate 4 is fixed to the inner wall of the first side plate 2 by screws, and the other end is inserted into the insertion slot 7 through the insertion plate 6, ensuring effective fixation and providing effective support for the central processing unit and other devices of the computing server.
[0028] A stainless steel mesh 17 is embedded in the back of the main body 1.
[0029] In the specific implementation process, it is worth noting that the purpose of setting up the stainless steel mesh 17 is to facilitate air circulation and assist in cooling when no refrigerant or coolant is used for cooling.
[0030] The top of the main flow cavity 10 is connected to a connector 15, and the top of the connector 15 is connected to a conduit 16.
[0031] In the specific implementation process, it is worth noting that the connector 15 is made of metal and can be interference-fitted to the end of the main flow cavity 10 or threaded to the end of the main flow cavity 10. The purpose is to facilitate the connection between the conduit 16 and the main flow cavity 10. The conduit 16 uses a flexible hose inside and is covered with insulation material on the outer wall. The purpose is to connect multiple rack-mounted computing servers together. In this way, a set of coolant circulation device or a set of refrigerant system can cool multiple rack-mounted computing servers without the need to set up a separate cooling system for each rack-mounted computing server.
[0032] Working principle: First, according to actual needs, multiple rack-mounted computing servers are placed in designated locations. The main flow cavities 10 of each rack-mounted computing server are connected together via conduits 16, treating the entire system as multiple rack-mounted computing servers connected in series. One conduit 16 at each end is connected to the coolant output end of the cooling system, and the other to the coolant return end, enabling coolant circulation within the cooling system. Thus, a single cooling system cools multiple rack-mounted computing servers, facilitating the cooling of the central processing unit and other electronic components within the rack. The number of rack-mounted computing servers can be increased or decreased according to actual needs by connecting them via conduits 16. Of course, if the number of rack-mounted computing servers is too large, they can be connected in parallel to achieve balanced cooling. That is, multiple conduits 16 connected to the same end of the main flow cavity 10 are simultaneously connected to the output end of the cooling system, while the remaining conduits 16 are simultaneously connected to the return end of the cooling system.
[0033] Although embodiments of the present 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 present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A rack-mounted computing server, comprising a main body (1), characterized in that: The main body (1) is fixedly connected to the first side plate (2) and the second side plate (3) by bolts on both sides. The main body (1) is provided with a hollow support plate (4). The hollow support plate (4) has a circulation cavity (5) inside. Both ends of the circulation cavity (5) penetrate the hollow support plate (4) near the first side plate (2). Both sides of the first side plate (2) have a main flow cavity (10) extending to the top. The two ends of the circulation cavity (5) are connected to the two main flow cavities (10) respectively by connecting components.
2. The rack-mounted computing server according to claim 1, characterized in that: The connection assembly includes a plug plate (6), a plug slot (7), a plug tube (9), a reserved cavity (11), and a connecting tube (12); The plug plate (6) is set parallel to the hollow support plate (4) and is located on the side of the hollow support plate (4) near the first side plate (2). The plug plate (6) is inserted into the first side plate (2) through the plug groove (7) opened on the surface of the first side plate (2). The plug plate (6) has reserved cavities (11) on both the upper and lower sides. One side of the reserved cavity (11) is connected to the insertion tube (9). The end of the insertion tube (9) is inserted into the inner wall of the insertion groove (7) and connected to the main flow cavity (10). The other side of the reserved cavity (11) is connected to the connecting tube (12). The other end of the connecting tube (12) is connected to the end of the circulation cavity (5).
3. A rack-mounted computing server according to claim 2, characterized in that: A sealing gasket (8) is fixedly connected to the inner wall of the insertion slot (7), and the surface of the sealing gasket (8) is attached to the insertion plate (6) and inserted into one side of the insertion slot (7).
4. A rack-mounted computing server according to claim 3, characterized in that: An adjustment device is provided between the plug-in plate (6) and the hollow support plate (4); The adjusting device includes a plug rod (13) and an adjusting screw (14). Several insertion rods (13) are provided, one end of which is fixed to the side of the insertion plate (6) near the hollow support plate (4), and the other end is inserted into the side of the hollow support plate (4). Two adjustment screws (14) are provided, located at the bottom front and back of the hollow support plate (4) respectively, and are threadedly connected to the hollow support plate (4). One end of the adjustment screw (14) is rotatably connected to the surface of the insertion plate (6) through a bearing.
5. A rack-mounted computing server according to claim 1, characterized in that: The back of the main body (1) is inlaid with a stainless steel mesh (17).
6. A rack-mounted computing server according to claim 1, characterized in that: The top of the main flow cavity (10) is connected to a connector (15), and the top of the connector (15) is connected to a conduit (16).
Citation Information
Patent Citations
Liquid-cooled heat dissipation high computing power server
CN222050845U