A heat dissipation control exhaust device for a data center

By designing the flow bin assembly, booster heat dissipation device and water-cooled heat dissipation device in the data center, the problem of poor heat dissipation in the data center is solved, efficient gas and water-cooled circulating heat dissipation is achieved, and the equipment operation quality is improved.

CN115279147BActive Publication Date: 2025-07-22BEIJING WANGUO CHANGAN TECH CO LTD
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Patent Information

Application Number
CN202210970795.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-08-13
Publication Date
2025-07-22
Estimated Expiration
2042-08-13

AI Technical Summary

Technical Problem

The heat dissipation and flowability of the existing data centers is poor, and the internal heat flow rate is slow, which affects the operating quality of the equipment.

Method used

A heat-dissipation control exhaust device including a flow bin assembly, a booster device, a linkage blower device, a linkage adjustment device and a water-cooled heat dissipation device are designed. Through the booster heat dissipation device and a linkage blower device, the accelerated gas is realized, and water-cooled heat dissipation is combined with a water-cooled circulation device to improve the heat dissipation effect.

Benefits of technology

It significantly improves the heat dissipation effect inside the data center, improves the heat circulation speed and heat dissipation efficiency, and is suitable for large-scale promotion and use.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the field of device heat dissipation control, and specifically discloses a heat dissipation control exhaust device for a data center, including: a chamber; a diversion chamber assembly, the diversion chamber assembly is connected to the chamber; a pressurization device; a linkage air blowing device; a linkage adjustment device, the linkage adjustment device is connected to the diversion chamber assembly; a water-cooled heat dissipation device, and is connected to the pressurization device; wherein, the pressurization device includes: a pressurized heat dissipation device; a water circulation device, the water circulation device is connected to the chamber and is connected to the pressurized heat dissipation device. On the basis of negative pressure heat dissipation of the diversion chamber assembly, the pressurized heat dissipation device cooperates with the linkage air blowing device to realize the accelerated export and air blowing drive of the gas inside the chamber, further improving the gas circulation speed inside the chamber. At the same time, in cooperation with the water circulation device and the water-cooled heat dissipation device, the water-cooled circulation heat dissipation inside the chamber can be realized, further improving the heat dissipation effect inside the data center.
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Description

Technical Field

[0001] The present invention relates to the field of equipment heat dissipation control, and specifically to a heat dissipation control exhaust device for a data center. Background Art

[0002] A data center is a centralized computing facility in the form of a computer room that includes server racks, air conditioning systems, power distribution equipment, and uninterruptible power supply equipment, and is jointly composed of a building or container that houses the above components.

[0003] Since there are many electrical devices inside the data center, it will inevitably cause a relatively high internal temperature. The heat dissipation quality of the data center affects the operation quality of the data center equipment. The existing data center heat dissipation control equipment has poor heat dissipation fluidity and a slow internal heat circulation and export rate. Therefore, to solve this problem, it is urgent to develop a heat dissipation control exhaust device for a data center. Summary of the Invention

[0004] The purpose of the present invention is to provide a heat dissipation control exhaust device for a data center to solve the problems raised in the above background art.

[0005] To achieve the above purpose, the present invention provides the following technical solutions:

[0006] A heat dissipation control exhaust device for a data center includes:

[0007] A chamber;

[0008] A diversion chamber assembly, which is connected to the chamber;

[0009] A pressurization device, which is connected to the diversion chamber assembly;

[0010] A linkage air blowing device, which is connected to the inside of the chamber and is used for driving the accelerated circulation of gas;

[0011] A linkage adjustment device, which is connected to the diversion chamber assembly and is used to cooperate with the diversion chamber assembly to complete the operation drive of the linkage air blowing device;

[0012] A water-cooled heat dissipation device, which is connected to the inside of the chamber and is connected to the pressurization device;

[0013] Among them, the pressurization device includes:

[0014] A pressurization heat dissipation device, which is connected to the diversion chamber assembly and is used for driving the accelerated export of heat inside the chamber;

[0015] A water circulation device, which is connected to the chamber and is connected to the pressurization heat dissipation device, and is used to cooperate with the pressurization heat dissipation device to complete the lifting drive of the water body.

[0016] Compared with the prior art, the beneficial effects of the present invention are as follows: The device is reasonably designed. Based on the negative pressure heat dissipation of the diversion bin assembly, the pressurized heat dissipation device and the linkage air blowing device cooperate to achieve the accelerated export and air blowing drive of the gas inside the bin, further improving the gas flow velocity inside the bin. At the same time, in cooperation with the water circulation device and the water-cooled heat dissipation device, the water-cooled circulation heat dissipation inside the bin can be realized, further improving the heat dissipation effect inside the data center, improving the deficiencies of the existing device, having high practicability and market prospects, and being suitable for large-scale popularization and use. Description of the Drawings

[0017] Figure 1 It is a schematic diagram of the internal structure of a heat dissipation control and exhaust device for a data center in an embodiment of the present invention.

[0018] Figure 2 It is a schematic diagram of the external structure of a heat dissipation control and exhaust device for a data center in an embodiment of the present invention.

[0019] Figure 3 is Figure 1 a partial structure schematic diagram at A in

[0020] Figure 4 It is a schematic diagram of the structure of an arc-shaped frame in a heat dissipation control and exhaust device for a data center in an embodiment of the present invention.

[0021] In the figure: 1 - bin, 2 - diversion bin assembly, 3 - pressurizing device, 4 - pressurized heat dissipation device, 5 - water circulation device, 6 - linkage adjustment device, 7 - linkage air blowing device, 8 - water-cooled heat dissipation device, 201 - top bin, 202 - blade bin, 203 - first driving member, 204 - side bin, 205 - grid, 401 - first control member, 402 - second control member, 403 - second driving member, 404 - communicating bin, 501 - bottom box, 502 - water storage tank, 503 - connecting pipe, 504 - third driving member, 505 - drain pipe, 506 - inlet valve, 601 - linkage shaft, 602 - arc-shaped frame, 701 - fixing frame, 702 - elastic member, 703 - air blowing plate, 704 - linkage frame, 801 - heat collecting member, 802 - cooling water pipe. Detailed Embodiments

[0022] 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. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0023] A heat dissipation control exhaust device for a data center. In one embodiment of the present invention, as Figure 1 and Figure 2 shown, it includes: a chamber 1; a diversion chamber assembly 2, the diversion chamber assembly 2 is connected to the chamber 1; a pressurization device 3, the pressurization device 3 is connected to the diversion chamber assembly 2; a linkage blower device 7, the linkage blower device 7 is connected to the inside of the chamber 1 for driving the accelerated circulation of gas; a linkage adjustment device 6, the linkage adjustment device 6 is connected to the diversion chamber assembly 2 for cooperating with the diversion chamber assembly 2 to complete the operation drive of the linkage blower device 7; a water-cooled heat dissipation device 8, the water-cooled heat dissipation device 8 is connected to the inside of the chamber 1 and is connected to the pressurization device 3; wherein, the pressurization device 3 includes: a pressurization heat dissipation device 4, the pressurization heat dissipation device 4 is connected to the diversion chamber assembly 2 for driving the accelerated export of heat inside the chamber 1; a water circulation device 5, the water circulation device 5 is connected to the chamber 1 and is connected to the pressurization heat dissipation device 4 for cooperating with the pressurization heat dissipation device 4 to complete the driving of the water body lift.

[0024] In one embodiment of the present invention:

[0025] As Figure 1 and Figure 2 shown, the diversion chamber assembly 2 includes: a top chamber 201, the top chamber 201 is fixedly connected to the chamber 1; at least two side chambers 204, the side chambers 204 are fixedly connected to the chamber 1 and are connected to the top chamber 201; a blade chamber 202, the blade chamber 202 is connected to the top chamber 201 through penetration; a first driving member 203, the first driving member 203 is connected to the blade chamber 202; the first driving member 203 is selected as an electric roller; a wire mesh frame 205, the wire mesh frame 205 is connected to the inside of the chamber 1;

[0026] A variety of electrical control devices are installed inside the chamber 1. The actual size of the chamber 1 can be selected according to the quantity and specifications of the internal electrical control devices. Driven by the first driving member 203, the blades 202 inside the blade chamber 202 can be driven to rotate, forming a negative pressure inside the chamber 1 to export part of the heat inside the chamber 1 under negative pressure;

[0027] In this application, the first driving member 203 is not limited to an electric roller. Other devices such as a linear motor, an electric cylinder or a cylinder drive can also be used, as long as it can realize the rotation drive of the blade, and no specific limitation is made here.

[0028] In one embodiment of the present invention:

[0029] As Figures 1 to 3As shown in the figure, the pressurizing and heat dissipation device 4 includes: a first control member 401, which is connected to the top bin 201; the first control member 401 is selected as an electromagnetic valve; a second control member 402, which is connected to the side bin 204; the second control member 402 is selected as an electromagnetic valve; a communication bin 404, one end of the communication bin 404 is connected to the first control member 401, and the other end is connected to the second control member 402; a second driving member 403, which is arranged inside the bin chamber 1 and is communicated with the communication bin 404; the second driving member 403 is selected as a negative pressure fan.

[0030] When the second driving member 403 operates, the heat inside the bin chamber 1 can be accelerated to be exported. The first control member 401 and the second control member 402 on both sides can be controlled to open separately. When the first control member 401 is opened and the second control member 402 is closed, the gas exported by the second driving member 403 enters the top bin 201, and is exported to the outside through the cooperation of the first driving member 203 and the blade bin 202; when the first control member 401 is closed and the second control member 402 is opened, the gas exported by the second driving member 403 enters the water circulation device 5 to drive the water body to rise. After the water body rising is completed, the second control member 402 is closed, the water pressure inside the water circulation device 5 is constant, and then the first control member 401 and the second control member 402 are opened simultaneously, the pressure inside the water circulation device 5 is lost, the water level drops, and the water is changed through the water circulation device 5, and then the driving and rising are repeated.

[0031] In this application, the first control member 401 and the second control member 402 are not limited to a kind of device, and can also be controlled by a manual valve, etc., as long as the gas conduction control and adjustment can be realized, and no specific limitation is made here.

[0032] In an embodiment of the present invention:

[0033] As Figure 1 shown, the linkage air blowing device 7 includes: a fixing frame 701, which is connected to the inside of the bin chamber 1; several elastic members 702, which are connected to the fixing frame 701; the elastic members 702 are selected as spring ring frames; an air blowing plate 703, which is connected to the elastic members 702; a linkage frame 704, which is rotatably connected to several air blowing plates 703.

[0034] The first driving member 203 can drive the linkage adjustment device 6 to operate synchronously. When the linkage adjustment device 6 operates, it can abut against the inner air blowing plate 703, and cooperate with the linkage frame 704 and the elastic members 702 to realize the reciprocating swing of several air blowing plates 703, and further accelerate the gas flow velocity at the top of the bin chamber 1.

[0035] In an embodiment of the present invention:

[0036] As Figure 1 and Figure 4 shown, the linkage adjustment device 6 includes: a linkage shaft 601, the linkage shaft 601 passes through the top bin 201 and is connected to the first driving member 203; an arc-shaped frame 602, the arc-shaped frame 602 is connected to the linkage shaft 601;

[0037] The arc-shaped frame 602 is elliptically arranged. When the first driving member 203 rotates, it can drive the arc-shaped frame 602 to rotate synchronously in cooperation with the linkage shaft 601.

[0038] In an embodiment of the present invention:

[0039] As Figure 1 shown, the water-cooling heat dissipation device 8 includes: a heat collection member 801, the heat collection member 801 is connected to the inner wall of the bin 1; the heat collection member 801 is a heat absorption plate; a cooling water pipe 802, the cooling water pipe 802 abuts against the heat collection member 801 and is connected to the water circulation device 5;

[0040] When the water circulation device 5 is pressurized internally, the water body inside the water circulation device 5 rises to the top of the cooling water pipe 802 to perform water-cooling treatment on the heat collected inside the bin 1 and the heat collection member 801. When the water circulation device 5 is depressurized internally, the water body inside the cooling water pipe 802 drops, and the heat is carried away together with the water body.

[0041] In an embodiment of the present invention:

[0042] As Figure 1 and Figure 2 shown, the water circulation device 5 includes: a bottom box 501, the bottom box 501 is fixedly connected to the bin 1; a water storage tank 502, the water storage tank 502 is connected to the inside of the bottom box 501; at least two communication pipes 503, one end of the communication pipe 503 is connected to the water storage tank 502, and the other end is connected to the second control member 402; a third driving member 504, the third driving member 504 is connected to the bottom of the water storage tank 502; the third driving member 504 is an electric pump; a drain pipe 505, the drain pipe 505 is connected to the end of the third driving member 504 away from the water storage tank 502; a water inlet valve 506, the water inlet valve 506 is connected to the water storage tank 502;

[0043] After the inside of the connecting pipe 503 is pressurized, the water body inside the water storage tank 502 is driven to rise through the cooling water pipe 802 to perform water-cooled heat dissipation on the inside of the chamber 1. After a certain period of time, the inside of the connecting pipe 503 loses pressure through the pressure-boosting heat dissipation device 4, and the water body returns to the inside of the water storage tank 502 again. The third driving member 504 operates to export the water body with heat inside the water storage tank 502 to the outside through the drain pipe 505. An inlet water pipe (not shown in the figure) is connected to the outside of the inlet valve 506, and then the external cooling water body is introduced into the water storage tank 502 again through the inlet valve 506. By repeating the above operations, the cyclic introduction and export of the water body realizes the water-cooled heat dissipation inside the chamber 1.

[0044] The working principle of the present invention is as follows: A variety of electrical control devices are installed inside the chamber 1. The actual size of the chamber 1 can be selected according to the quantity and specifications of the internal electrical control devices. Driven by the first driving member 203, the blades 202 inside the blade chamber 202 can be driven to rotate, creating a negative pressure inside the chamber 1 to export some of the heat inside the chamber 1 under negative pressure. The first driving member 203 is not limited to an electric roller shaft, and linear motors, electric cylinders, or air cylinders can also be used for driving, etc., as long as the rotation of the blades can be driven, and no specific limitation is made here. When the second driving member 403 operates, the heat inside the chamber 1 can be accelerated and exported. The first control member 401 and the second control member 402 on both sides can be controlled to open independently. When the first control member 401 is open and the second control member 402 is closed, the gas exported through the second driving member 403 enters the top chamber 201 and is exported to the outside through the cooperation of the first driving member 203 and the blade chamber 202; when the first control member 401 is closed and the second control member 402 is open, the gas exported through the second driving member 403 enters the water circulation device 5 to drive the water body to rise. After the water body rises, the second control member 402 is closed, and the water pressure inside the water circulation device 5 is constant. Then the first control member 401 and the second control member 402 are opened simultaneously, and the water circulation device 5 loses pressure and the water level drops, and water is changed through the water circulation device 5, and then the driving and rising are repeated. The first control member 401 and the second control member 402 are not limited to a single device, and manual valve control can also be used, etc., as long as the control and adjustment of gas conduction can be realized, and no specific limitation is made here;

[0045] The first driving member 203 can drive the linkage adjusting device 6 to operate synchronously. When the linkage adjusting device 6 operates, it can abut against the inner air blowing plate 703, and cooperate with the linkage frame 704 and the elastic member 702 to realize the reciprocating swing of a plurality of air blowing plates 703, further accelerating the gas flow rate at the top of the chamber 1. The arc-shaped frame 602 is selected to be elliptical. When the first driving member 203 rotates, it can drive the arc-shaped frame 602 to rotate synchronously in cooperation with the linkage shaft 601. When the water circulation device 5 is pressurized internally, the water body inside the water circulation device 5 is lifted to the top of the cooling water pipe 802 to perform water cooling treatment on the heat collected inside the chamber 1 and the heat collecting member 801. When the water circulation device 5 is depressurized internally, the water body inside the cooling water pipe 802 drops, and the heat is carried away together with the water body. After the inside of the communication pipe 503 is pressurized, the water body inside the water storage tank 502 is driven to be lifted through the cooling water pipe 802 to perform water cooling and heat dissipation on the inside of the chamber 1. After a certain period of time, the inside of the communication pipe 503 is depressurized through the pressurized heat dissipation device 4, and the water body returns to the inside of the water storage tank 502 again. The third driving member 504 operates, and the water body with heat inside the water storage tank 502 is led out to the outside through the drain pipe 505. An inlet pipeline (not shown in the figure) is connected to the outside of the inlet valve 506, and then the external cooling water body is introduced into the water storage tank 502 again through the inlet valve 506. By repeating the above operations, the cyclic introduction and export of the water body are realized, and the water cooling and heat dissipation inside the chamber 1 are realized.

[0046] In summary, on the basis of the negative pressure heat dissipation of the diversion chamber assembly 2, the pressurized heat dissipation device 4 and the linkage air blowing device 7 cooperate to realize the accelerated export and air blowing drive of the gas inside the chamber 1, further improving the gas flow rate inside the chamber 1. At the same time, in cooperation with the water circulation device 5 and the water cooling heat dissipation device 8, the water cooling cycle heat dissipation inside the chamber 1 can be realized, further improving the heat dissipation effect inside the data center.

[0047] In addition, it should be understood that although this specification is described according to the embodiments, not each embodiment only includes an independent technical solution. The narrative way of this specification is only for clarity. Those skilled in the art should regard the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. A heat dissipation control exhaust device for a data center, characterized in that, Comprising: Compartment; Flow-guiding compartment assembly, which is connected to the compartment; The flow-guiding compartment assembly includes: Top compartment, which is fixedly connected to the compartment; At least two side compartments, which are fixedly connected to the compartment and communicate with the top compartment; Vane compartment, which is penetrated and communicated with the top compartment; First driving member, which is connected to the vane compartment; Grid, which is connected to the inside of the compartment; Pressurizing device, which is connected to the flow-guiding compartment assembly; Linkage air-blowing device, which is connected to the inside of the compartment and is used for driving the accelerated circulation of gas; Linkage adjusting device, which is connected to the flow-guiding compartment assembly and is used to cooperate with the flow-guiding compartment assembly to complete the operation drive of the linkage air-blowing device; Water-cooling heat dissipation device, which is connected to the inside of the compartment and is communicated with the pressurizing device; Wherein, the pressurizing device includes: Pressurizing heat dissipation device, which is connected to the flow-guiding compartment assembly and is used for driving the accelerated export of heat inside the compartment; The pressurizing heat dissipation device includes: First control member, which is connected to the top compartment; Second control member, which is connected to the side compartment; Communication compartment, one end of which is connected to the first control member and the other end is connected to the second control member; Second driving member, which is arranged inside the compartment and is communicated with the communication compartment; Water circulation device, which is connected to the compartment and is communicated with the pressurizing heat dissipation device, and is used to cooperate with the pressurizing heat dissipation device to complete the lifting drive of the water body.

2. The heat dissipation control exhaust device for a data center according to claim 1, wherein The linkage air-blowing device includes: Fixed frame, which is connected to the inside of the compartment; Several elastic members, which are connected to the fixed frame; Air-blowing plate, which is connected to the elastic member; Linkage frame, which is rotatably connected to several air-blowing plates.

3. The heat dissipation control exhaust device for a data center according to claim 1, characterized in that, The linkage adjusting device includes: Linkage shaft, which penetrates the top compartment and is connected to the first driving member; Arc-shaped frame, which is connected to the linkage shaft.

4. The heat dissipation control exhaust device for a data center according to claim 1, wherein, The water-cooling heat dissipation device includes: Heat collecting member, which is connected to the inner wall of the compartment; Cooling water pipe, which abuts against the heat collecting member and is communicated with the water circulation device.

5. The heat dissipation control exhaust device for a data center according to claim 1, characterized in that, The water circulation device includes: Bottom box, which is fixedly connected to the compartment; Water storage tank, which is connected to the inside of the bottom box; At least two communication pipes, one end of which is communicated with the water storage tank and the other end is communicated with the second control member; Third driving member, which is connected to the bottom of the water storage tank; Drain pipe, which is connected to the end of the third driving member away from the water storage tank; Water inlet valve, which is communicated with the water storage tank.

Citation Information

Patent Citations

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