Temporary placement rack for network engineering server
By designing a structure that combines a support plate with a cooling surface in the server rack, and utilizing circulation pipes and pumps to deliver coolant, the problem of poor heat dissipation on the top surface of the server is solved, achieving a more efficient heat dissipation effect.
Patent Information
- Application Number
- CN202520846473.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-29
- Publication Date
- 2026-05-15
- Estimated Expiration
- 2035-04-29
AI Technical Summary
In existing technologies, the heat dissipation effect of the top surface of the server is poor, and the overall heat dissipation components are located below the server. Relying on natural wind cannot effectively cool the server, which has limitations.
Design a temporary rack for network engineering servers, which adopts a structure combining a support plate and a cooling surface. The support plate is equipped with cooling pipes. Coolant is transported from the storage box to the cooling pipes through circulation pipes and a pump to cool the top and bottom surfaces of the server.
It improves the server's heat dissipation efficiency by effectively cooling the top and bottom surfaces of the server with coolant, thus enhancing the heat dissipation effect.
Smart Images

Figure CN224250040U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of network engineering equipment technology, and in particular to a temporary placement rack for network engineering servers. Background Technology
[0002] A server is a high-performance computer that provides various services in a network environment. A server is a computer system designed to process requests and provide services. It responds to client requests and provides services. Servers undertake the tasks of data storage, processing, and transmission, and support critical applications such as file sharing, database services, and web hosting. Servers include CPUs, memory, hard drives, network interface cards, etc. These hardware components support high-speed computing and the throughput of large amounts of data. Servers can be divided into file servers, database servers, mail servers, etc. In some temporary network engineering workshops, such as document digitization projects or temporary network areas in construction projects, temporary network processing systems need to be set up, requiring the use of servers. In order to better solve the heat dissipation problem of servers, heat dissipation components need to be installed in temporary racks.
[0003] The utility model patent with patent publication number CN218042164U describes a method that uses ventilation holes, a cover, a motor, a rotating shaft, and fan blades to blow air onto a server on a mounting plate to cool it down, thereby accelerating the heat dissipation of the network engineering server. Although this method can achieve heat dissipation, it also has limitations and poor cooling effect because the overall heat dissipation components are located below the server, and natural wind cannot cool the top surface of the server.
[0004] Therefore, it is necessary to provide a temporary rack for network engineering servers to solve the above-mentioned technical problems. Utility Model Content
[0005] In order to overcome the shortcomings of the existing technology, this utility model provides a temporary placement rack for network engineering servers. This solves the problem that existing devices, because the overall heat dissipation components are located below the server, cannot cool the top surface of the server by relying on natural wind, resulting in limited cooling and poor cooling effect.
[0006] To achieve the above objectives, the technical solution adopted by this utility model is as follows:
[0007] A temporary rack for network engineering servers includes: a frame;
[0008] The frame is equipped with a support plate, which is in the shape of an I-beam. The top surface of the support plate abuts against the bottom surface of the server body. The right side of the support plate is connected to the upper cooling mechanism. The left side of the upper cooling mechanism is connected to a liquid storage box located on the left side of the frame. The liquid storage box contains coolant or cooling water.
[0009] In one embodiment, the middle part of the support plate is a cooling surface, the interior of the cooling surface is a cooling pipe, and multiple cooling pipes are arranged. Positioning grooves are provided at the four corners of the top surface of the support plate, and the positioning grooves are generally in the form of an inner cylindrical structure.
[0010] In one embodiment, support legs are installed at the four corners of the bottom surface of the server body. The support legs are inserted into the positioning slots, and after the connection is made, the bottom surface of the server body is in contact with the cooling surface.
[0011] In one embodiment, the upper cooling mechanism comprises a circulation pipe, a connecting plate, a pump body, a locking plate, a right connecting block, a left connecting block, a baffle, and a connecting pipe. The circulation pipe is a flexible hose. The right and left connecting blocks are located on both sides of the cooling pipe and are sealed together. Baffles are installed on the top surfaces of the right and left connecting blocks. The two sides of the server body abut against the inner walls of the baffles. The right end of the circulation pipe is sealed to the outer wall of the right connecting block. The left end of the circulation pipe penetrates the wall of the frame and is sealed to the top surface of the connecting plate. The bottom of the connecting plate is connected to the top surface of the liquid storage box through the pump body. Both sides of the connecting plate are connected to the screw plates of the liquid storage box through locking plates. Fixing bolts are installed between the locking plates and the screw plates. An electric control valve is installed at the connection between the pump body and the connecting plate. The left connecting block is connected to the liquid storage box through the connecting pipe. An electric valve is installed at the connection between the connecting pipe and the liquid storage box. The circulation pipe, right connecting block, cooling pipe, left connecting block, and connecting pipe together form a cooling circulation pipeline.
[0012] In one embodiment, a fixing strip is adhered to the top surface of the server body, and semi-circular openings are spaced apart on the top surface of the fixing strip. The circulation tube is snapped into the semi-circular openings. A clamp is installed on the right side of the right connecting block, and the clamp is installed and connected to the right end of the circulation tube. An ice pack is placed inside the liquid storage box.
[0013] The beneficial effects of this utility model are as follows:
[0014] (1) This utility model uses a support leg and a positioning slot for insertion connection. After the two are connected, the bottom surface of the server body is in contact with the cooling surface. By starting the pump body and closing the electric control valve of the connecting pipe, the pump body draws the coolant in the storage box into the circulation pipe. As the pumping proceeds, the coolant fills the cooling pipe, cooling the top and bottom surfaces of the server body, improving the heat dissipation effect and efficiency of the server body.
[0015] (2) This utility model uses a circulation tube clamped in the semi-circular opening to make the bottom surface of the circulation tube more stably fit against the top surface of the server body for cooling. The clamp is installed and connected to the right end of the circulation tube to limit the circulation tube and improve the stability of the circulation tube setting. Attached Figure Description
[0016] Figure 1 This is a structural diagram of the present utility model;
[0017] Figure 2 This is a detailed view of the disassembled internal structure of this utility model;
[0018] Figure 3 This is a detailed drawing of the server body and support plate of this utility model;
[0019] Figure 4 This is a detailed drawing of the upper cooling mechanism of this utility model.
[0020] The corresponding names of the attached figures are: frame 1, support plate 2, cooling surface 21, cooling pipe 22, positioning groove 23, server body 3, support leg 31, fixing strip 32, semi-circular opening 33, upper cooling mechanism 4, circulation pipe 41, connecting plate 42, pump body 43, locking plate 44, right connecting block 45, left connecting block 46, baffle 47, connecting pipe 48, clamp 49, liquid storage box 5, screw plate 51. Detailed Implementation
[0021] The present invention will be further described below with reference to the accompanying drawings and embodiments. The embodiments of the present invention include, but are not limited to, the following embodiments.
[0022] like Figures 1-2 As shown, the present invention provides a temporary placement rack for a network engineering server, comprising: a frame 1, a support plate 2, a server body 3, an upper cooling mechanism 4, and a liquid storage box 5;
[0023] like Figures 1-2 As shown, a support plate 2 is installed inside the frame 1. The support plate 2 has an overall I-shaped structure. The top surface of the support plate 2 abuts against the bottom surface of the server body 3. The right side of the support plate 2 is connected to the upper cooling mechanism 4. The left side of the upper cooling mechanism 4 is connected to the liquid storage box 5 located on the left side of the frame 1. The liquid storage box 5 stores coolant or cooling water. By setting up the upper cooling mechanism 4 and the support plate 2, the upper and lower parts of the server body 3 are both within the liquid cooling contact range, further improving the heat dissipation effect of the server body 3.
[0024] Preferably, in one embodiment, such as Figures 2-3 As shown, the middle part of the support plate 2 is a cooling surface 21, and the interior of the cooling surface 21 is a cooling pipe 22. Multiple cooling pipes 22 are arranged. Positioning grooves 23 are provided at the four corners of the top surface of the support plate 2. The positioning grooves 23 are generally in the shape of an inner cylinder.
[0025] Preferably, in one embodiment, such as Figures 2-3 As shown, support legs 31 are installed at the four corners of the bottom surface of the server body 3. The support legs 31 are inserted into the positioning groove 23. After the two are connected, the bottom surface of the server body 3 is in contact with the cooling surface 21.
[0026] Preferably, in one embodiment, such as Figures 3-4 As shown, the upper cooling mechanism 4 consists of a circulation pipe 41, a connecting plate 42, a pump body 43, a locking plate 44, a right connecting block 45, a left connecting block 46, a baffle 47, and a connecting pipe 48. The circulation pipe 41 is a flexible hose. The right connecting block 45 and the left connecting block 46 are located on both sides of the cooling pipe 22, and the three are sealed together. Baffles 47 are installed on the top surfaces of the right connecting block 45 and the left connecting block 46. The two sides of the server body 3 abut against the inner wall of the baffle 47. The right end of the circulation pipe 41 is sealed to the outer wall of the right connecting block 45. The left end of the circulation pipe 41 penetrates the wall of the frame 1 and is sealed to the top surface of the connecting plate 42. The bottom of the connecting plate 42 is connected to the top surface of the liquid storage box 5 through the pump body 43. Both sides of the connecting plate 42 are locked together. Plate 44 is connected to the screw plate 51 of the liquid storage box 5. A fixing bolt is installed between the locking plate 44 and the screw plate 51. An electric control valve is installed at the connection between the pump body 43 and the connecting plate 42. The left connecting block 56 is connected to the liquid storage box 5 through the connecting pipe 48. An electric valve is installed at the connection between the connecting pipe 48 and the liquid storage box 5. The circulation pipe 41, the right connecting block 45, the cooling pipe 22, the left connecting block 46, and the connecting pipe 48 together form a cooling circulation pipeline. During operation, by starting the pump body 43 and closing the electric control valve of the connecting pipe 48, the pump body 43 draws the coolant in the liquid storage box 5 into the circulation pipe 41. As the pumping proceeds, the coolant fills the cooling pipe 21, cooling the top and bottom surfaces of the server body 3, improving the heat dissipation effect and efficiency of the server body 3.
[0027] Preferably, in one embodiment, such as Figures 2-3 As shown, a fixing strip 32 is glued to the top surface of the server body 3. The top surface of the fixing strip 32 has semi-circular openings 33 at intervals. The circulation pipe 41 is snapped into the semi-circular openings 33, so that the bottom surface of the circulation pipe 41 is more stably attached to the top surface of the server body 3 for cooling. A clamp 49 is installed on the right side of the right connecting block 45. The clamp 49 is installed and connected to the right end of the circulation pipe 41 to limit the circulation pipe 41. An ice pack is placed inside the liquid storage box 5 to help with the subsequent circulation and cooling of the coolant.
[0028] Working principle of this utility model:
[0029] During operation, by starting the pump body 43 and closing the electronic control valve of the connecting pipe 48, the pump body 43 draws the coolant in the liquid storage box 5 into the circulation pipe 41. As the pumping proceeds, the coolant fills the cooling pipe 21, cooling the top and bottom surfaces of the server body 3, improving the heat dissipation effect and efficiency of the server body 3.
[0030] The above embodiments are merely one of the preferred embodiments of this utility model and should not be used to limit the scope of protection of this utility model. Any modifications or refinements made to the main design concept and spirit of this utility model that are not of substantial significance, but solve the same technical problem as this utility model, should be included within the scope of protection of this utility model.
Claims
1. A temporary rack for network engineering servers, characterized in that, include: Frame; The frame is equipped with a support plate, which is in the shape of an I-beam. The top surface of the support plate abuts against the bottom surface of the server body. The right side of the support plate is connected to the upper cooling mechanism. The left side of the upper cooling mechanism is connected to a liquid storage box located on the left side of the frame. The liquid storage box contains coolant or cooling water.
2. The temporary placement rack for a network engineering server according to claim 1, characterized in that, The middle part of the support plate is a cooling surface, and the inside of the cooling surface is a cooling pipe. There are multiple cooling pipes. The top surface of the support plate is provided with positioning grooves at the four corners. The positioning grooves are in the shape of an inner cylinder.
3. A temporary rack for network engineering servers according to claim 1, characterized in that, The server body has legs installed at the four corners of its bottom surface. The legs are inserted into the positioning slots. After the two are connected, the bottom surface of the server body is in contact with the cooling surface.
4. A temporary rack for network engineering servers according to claim 1, characterized in that, The upper cooling mechanism consists of a circulation pipe, a connecting plate, a pump body, a locking plate, a right connecting block, a left connecting block, a baffle, and a connecting pipe. The circulation pipe has a flexible hose structure. The right and left connecting blocks are located on both sides of the cooling pipe, and the three are sealed together. Baffles are installed on the top surfaces of the right and left connecting blocks. The two sides of the server body abut against the inner walls of the baffles. The right end of the circulation pipe is sealed to the outer wall of the right connecting block. The left end of the circulation pipe passes through the wall of the frame and is sealed to the top surface of the connecting plate. The bottom of the connecting plate is connected to the top surface of the liquid storage box through the pump body. Both sides of the connecting plate are connected to the screw plates of the liquid storage box through locking plates. Fixing bolts are installed between the locking plates and the screw plates. An electric control valve is installed at the connection between the pump body and the connecting plate. The left connecting block is connected to the liquid storage box through the connecting pipe. An electric valve is installed at the connection between the connecting pipe and the liquid storage box. The circulation pipe, right connecting block, cooling pipe, left connecting block, and connecting pipe together form a cooling circulation pipeline.
5. A temporary placement rack for a network engineering server according to claim 4, characterized in that, A fixing strip is attached to the top surface of the server body. Semi-circular openings are spaced apart on the top surface of the fixing strip. The circulation tube is snapped into the semi-circular opening. A clamp is installed on the right side of the right connecting block. The clamp is installed and connected to the right end of the circulation tube. An ice pack is placed inside the liquid storage box.