Data center structuring device
By introducing heat dissipation components into the data center computer room, and using natural ventilation and mixing components to achieve uniform cooling, the problem of uneven heat dissipation in the computer room is solved and energy consumption is saved.
Patent Information
- Application Number
- CN202421505294.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-28
- Publication Date
- 2025-08-01
- Estimated Expiration
- 2034-06-28
AI Technical Summary
When dissipating heat in the existing data center computer rooms, due to large volume and internal air not circulating, the cooling and heat dissipation are uneven, and a large amount of energy is consumed.
The heat dissipation components are adopted, including a heat dissipation box, ventilation duct, air cooler, output pipe and stirring components, and reasonable heat dissipation is achieved through natural ventilation and uniform air-conditioning output.
It achieves uniform heat dissipation inside the computer room, saves energy and avoids waste of resources.
Smart Images

Figure CN223182508U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of data centers, and particularly to a data center structuring device. Background Art
[0002] With the rapid development of the electronic information industry, the development of data centers has also entered a new stage. Especially, the application of modular data centers is increasing. To adapt to the trend of green energy conservation in data centers, using natural cold sources to reduce the energy consumption of data computer rooms has opened up a brand-new direction for micro-module data centers. Based on this, a data center computer room is designed.
[0003] It is found in the current existing data center computer rooms on the market that during the operation of the data center computer rooms, most of them dissipate heat by inputting cold air. However, due to the large volume of the computer room and the poor air circulation inside, it is easy to cause uneven cooling and heat dissipation, which requires a large amount of energy consumption and reduces the utilization rate of resources.
[0004] Therefore, the utility model provides a data center structuring device to solve the above problems. Summary of the Utility Model
[0005] (1) Technical Problems to be Solved
[0006] The utility model provides a data center structuring device, aiming to solve the problems found in the background art that during the operation of the existing data center computer rooms, most of them dissipate heat by inputting cold air. However, due to the large volume of the computer room and the poor air circulation inside, it is easy to cause uneven cooling and heat dissipation, which requires a large amount of energy consumption and reduces the utilization rate of resources.
[0007] (2) Technical Solutions
[0008] To achieve the above object, the utility model provides the following technical solution: A data center structuring device includes a computer room, a swing door hinged to one side of the computer room, a ventilation door arranged at the side wall of the computer room, a top plate fixedly arranged on the top of the computer room, and a heat dissipation component arranged inside the computer room for heat dissipation; during use, the swing door is provided to achieve the effect of convenient access to the computer room, and the ventilation door is provided to facilitate natural ventilation and heat dissipation of the interior of the computer room when the weather is cool, reducing energy loss. When the weather is hot, the ventilation door is closed. To avoid the problems found in the existing data center computer rooms during operation, that is, most of them dissipate heat by inputting cold air. However, due to the large volume of the computer room and the poor air circulation inside, it is easy to cause uneven cooling and heat dissipation, which requires a large amount of energy consumption, reasonable heat dissipation can be achieved by using the heat dissipation component.
[0009] For reasonable heat dissipation; the heat dissipation component includes a heat dissipation box fixedly arranged on the floor of the computer room, a cover plate arranged on the top of the heat dissipation box, a ventilation pipe fixedly arranged inside the heat dissipation box and distributed in an S shape, a plurality of output pipes fixedly arranged on the top of the ventilation pipe and communicated with the inside of the ventilation pipe, a cold air blower arranged outside the heat dissipation box and communicated with one end of the ventilation pipe, an installation groove opened on one side of the wall of the computer room for placing the cold air blower, and a stirring component arranged inside the ventilation pipe for evenly distributing cold air. Ventilation holes adapted to the size of the output pipes are opened on the surface of the cover plate; by using the bottom heat dissipation box to achieve the effect of reasonable heat dissipation, first turn on the cold air blower to drive the cold air to flow into the inside of the heat dissipation box along the ventilation pipe, and then output it from the top cover plate through the output pipes, achieving rapid and accurate cooling and heat dissipation of the equipment placed inside the computer room at the output end. The cold air output by the output pipes can be output through the ventilation holes opened on the cover plate. In order to ensure the rapid circulation of the cold air during the output process, the stirring component can be used to stir the cold air in the output pipes.
[0010] Preferably, in order to achieve uniform output of the cold air inside the output pipes; the stirring component includes a connecting rod fixedly arranged on the ventilation pipe and having the same shape as the ventilation pipe at a position above the output pipes, and fan blades rotatably arranged on the connecting rod for stirring the cold air; the stirring component can be used to stir it. When the cold air blower blows air, the cold air enters along the ventilation pipe, thereby driving the fan blades on the connecting rod inside the ventilation pipe to rotate along the connecting rod, and the cold air is output along the output pipes through the fan blades, achieving the effect of uniform and rapid output.
[0011] Preferably, in order to achieve reasonable maintenance inside the heat dissipation box; the heat dissipation component further includes a disassembly and assembly component arranged between the cover plate and the heat dissipation box; the disassembly and assembly component can be used to disassemble and assemble the cover plate and the heat dissipation box.
[0012] Preferably, in order to achieve reasonable disassembly and assembly; the disassembly and assembly component includes an electric telescopic rod with both ends fixedly connected to the top plate and the cover plate respectively, a trapezoidal card slot opened on the side of the heat dissipation box close to the cover plate, a trapezoidal card block fixedly arranged on the side of the cover plate close to the heat dissipation box and slidably clamped with the trapezoidal card slot, and a clamping plate fixedly arranged on the trapezoidal card block and clamped on the top of the heat dissipation box; when maintenance is required, start the electric telescopic rod to drive the cover plate to move upward to the top of the box, thereby opening the heat dissipation box, achieving convenient removal and maintenance of the internal ventilation pipe. After the maintenance is completed, use the electric telescopic rod to move the cover plate downward, so that the trapezoidal card block on the cover plate is clamped inside the trapezoidal card slot, and the clamping plate is clamped outside the heat dissipation box, achieving the effect of clamping and sealing, which is convenient for later cold air transmission.
[0013] Preferably, in order to make the engagement more stable; trapezoidal card slots and trapezoidal card blocks are provided on both symmetric sides of the heat dissipation box; and they can be fixed by symmetric engagement.
[0014] (III) Beneficial effects
[0015] By setting up the heat dissipation component, the data center structured device uses the ventilation pipe and the stirring component to achieve the effect of uniform heat dissipation inside the computer room, saving energy and avoiding resource waste. Description of the drawings
[0016] Figure 1 It is a three-dimensional structure schematic diagram of a data center structured device;
[0017] Figure 2 It is a partial structure schematic diagram of a data center structured device;
[0018] Figure 3 It is a heat dissipation component structure schematic diagram of a data center structured device;
[0019] Figure 4 It is a stirring component structure schematic diagram of a data center structured device.
[0020] In the figure:
[0021] 1, computer room; 11, opening and closing door; 12, ventilation door;
[0022] 2, top plate;
[0023] 3, heat dissipation component; 31, heat dissipation box; 32, cover plate; 321, ventilation hole; 33, ventilation pipe; 34, output pipe; 35, cold air blower; 351, installation groove;
[0024] 36, stirring component; 361, connecting rod; 362, fan blade;
[0025] 37, disassembly and assembly component; 371, electric telescopic rod; 372, trapezoidal card slot; 373, trapezoidal card block; 374, card plate. Specific implementation manners
[0026] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0027] The present invention provides a data center structured device, as Figures 1-4As shown in the figure, the structured device of the data center includes a computer room 1, a hinged opening and closing door 11 on one side of the computer room 1, a ventilation door 12 arranged at the side wall of the computer room 1, a top plate 2 fixedly arranged on the top of the computer room 1, and a heat dissipation component 3 arranged inside the computer room 1 for heat dissipation. The heat dissipation component 3 includes a heat dissipation box 31 fixedly arranged on the ground of the computer room 1, a cover plate 32 arranged on the top of the heat dissipation box 31, a ventilation pipe 33 fixedly arranged inside the heat dissipation box 31 and distributed in an S shape, a plurality of output pipes 34 fixedly arranged on the top of the ventilation pipe 33 and communicated with the inside of the ventilation pipe 33, a cold air blower 35 arranged outside the heat dissipation box 31 and connected to one end of the ventilation pipe 33, an installation groove 351 arranged on one side of the wall of the computer room 1 for placing the cold air blower 35, and a stirring component 36 arranged inside the ventilation pipe 33 for evenly distributing cold air. Ventilation holes 321 adapted to the size of the output pipes 34 are opened on the surface of the cover plate 32.
[0028] During use, the convenient entry and exit of the computer room 1 is achieved by setting the opening and closing door 11. The setting of the ventilation door 12 facilitates natural ventilation and heat dissipation of the inside of the computer room 1 when the weather is cool, reducing energy consumption. When the weather is hot, the ventilation door 12 is closed. In order to avoid the problem that in the existing data center computer room during use, when cooling the data center computer room, most of the time cold air is input for heat dissipation. However, due to the large volume of the computer room 1 and the non-circulation of the internal air, it is easy to cause uneven cooling and heat dissipation, and a large amount of energy needs to be consumed. Reasonable heat dissipation can be achieved by using the heat dissipation component 3. By using the bottom heat dissipation box 31, a reasonable heat dissipation effect can be achieved. First, the cold air blower 35 is turned on, driving the cold air to flow into the inside of the heat dissipation box 31 along the ventilation pipe 33, and then output from the top cover plate 32 through the output pipes 34. At the output end, the equipment placed inside the computer room 1 can be quickly and accurately cooled and dissipated. The cold air output by the output pipes 34 can be output through the ventilation holes 321 opened on the cover plate 32. During the output process, in order to ensure the rapid circulation of the cold air, the stirring component 36 can be used to stir the cold air in the output pipes 34.
[0029] Specifically, in order to achieve the uniform output of the cold air inside the output pipes 34; the stirring component 36 includes a connecting rod 361 fixedly arranged on the ventilation pipe 33 and located above the output pipes 34 and having the same shape as the ventilation pipe 33, and fan blades 362 rotatably arranged on the connecting rod 361 for stirring the cold air; the stirring component 36 can be used to stir it. When the cold air blower 35 blows air, the cold air enters along the ventilation pipe 33, thereby driving the fan blades 362 on the connecting rod 361 inside the ventilation pipe 33 to rotate along the connecting rod 361, and the cold air is output along the output pipes 34 through the fan blades 362, achieving the effect of uniform and rapid output.
[0030] Further, the heat dissipation component 3 further includes a disassembly and assembly component 37 disposed between the cover plate 32 and the heat dissipation box 31. The disassembly and assembly component 37 includes an electric telescopic rod 371 with two ends fixedly connected to the top plate 2 and the cover plate 32 respectively, a trapezoidal card slot 372 opened on one side of the heat dissipation box 31 close to the cover plate 32, a trapezoidal card block 373 fixedly disposed on one side of the cover plate 32 close to the heat dissipation box 31 and slidably clamped with the trapezoidal card slot 372, and a clamping plate 374 fixedly disposed on the trapezoidal card block 373 and clamped on the top of the heat dissipation box 31. Trapezoidal card slots 372 and trapezoidal card blocks 373 are provided on both symmetric sides of the heat dissipation box 31. In order to realize reasonable maintenance of the inside of the heat dissipation box 31, the cover plate 32 and the heat dissipation box 31 can be disassembled and assembled by using the disassembly and assembly component 37. When maintenance is required, the electric telescopic rod 371 is started to drive the cover plate 32 to move towards the top of the box, thereby opening the heat dissipation box 31, so as to facilitate the removal and maintenance of the internal ventilation pipe 33. After the maintenance is completed, the electric telescopic rod 371 is used to move the cover plate 32 downward, so that the trapezoidal card block 373 on the cover plate 32 is clamped inside the trapezoidal card slot 372, and the clamping plate 374 is clamped outside the heat dissipation box 31, achieving the effect of clamping and sealing, which is convenient for the later transmission of cold air.
[0031] The above is only a preferred specific embodiment of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art, within the technical scope disclosed by the present invention, according to the technical solution of the present invention and its inventive concept, makes equivalent substitutions or changes, and should be covered by the protection scope of the present invention.
Claims
1. A structured device for a data center, comprising a computer room (1), a hinged opening and closing door (11) on one side of the computer room (1), a ventilation door (12) provided at the side wall of the computer room (1), a top plate (2) fixedly provided on the top of the computer room (1), and a heat dissipation component (3) provided inside the computer room (1) for heat dissipation; It is characterized in that: The heat dissipation component (3) includes a heat dissipation box (31) fixedly provided on the ground of the computer room (1), a cover plate (32) provided on the top of the heat dissipation box (31), a ventilation pipe (33) fixedly provided inside the heat dissipation box (31) and distributed in an S shape, a plurality of output pipes (34) fixedly provided on the top of the ventilation pipe (33) and communicating with the inside of the ventilation pipe (33), a cold air blower (35) provided outside the heat dissipation box (31) and connected to one end of the ventilation pipe (33), an installation groove (351) provided on one side of the wall of the computer room (1) for placing the cold air blower (35), and a stirring component (36) provided inside the ventilation pipe (33) for evenly distributing cold air. Ventilation holes (321) adapted to the size of the output pipes (34) are provided on the surface of the cover plate (32).
2. The data center structuring device according to claim 1, characterized in that: The stirring component (36) includes a connecting rod (361) fixedly provided on the ventilation pipe (33) and having the same shape as the ventilation pipe (33) at a position above the output pipe (34), and a fan blade (362) rotatably provided on the connecting rod (361) for stirring cold air.
3. The data center structuring device according to claim 1, wherein: The heat dissipation component (3) further includes a disassembly and assembly component (37) provided between the cover plate (32) and the heat dissipation box (31).
4. The data center structured device according to claim 3, wherein: The disassembly and assembly component (37) includes an electric telescopic rod (371) whose two ends are respectively fixedly connected to the top plate (2) and the cover plate (32), a trapezoidal card slot (372) opened on one side of the heat dissipation box (31) close to the cover plate (32), a trapezoidal card block (373) fixedly provided on one side of the cover plate (32) close to the heat dissipation box (31) and slidably clamped with the trapezoidal card slot (372), and a card plate (374) fixedly provided on the trapezoidal card block (373) and clamped on the top of the heat dissipation box (31).
5. The data center structured device according to claim 4, wherein: Trapezoidal card slots (372) and trapezoidal card blocks (373) are provided on both symmetric sides of the heat dissipation box (31).