Container data center

By partitioning heat dissipation and dynamic management in the container data center, the problem of poor heat dissipation is solved, efficient heat dissipation and energy consumption reduction are achieved, ensuring stable operation of equipment.

CN223391580UActive Publication Date: 2025-09-26YINGSHUO (SHAOGUAN) INFORMATION IND GRP CO LTD
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Patent Information

Application Number
CN202422761677.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-12
Publication Date
2025-09-26
Estimated Expiration
2034-11-12

AI Technical Summary

Technical Problem

Existing container data centers have poor heat dissipation, resulting in data damage and reduced service life.

Method used

The container is divided into multiple cabinet areas, and cooling is provided to each cabinet group through independent heat dissipation modules and piping systems. Temperature sensors and processors are used to control the opening and closing of pipe valves, and dynamic heat dissipation management is performed in combination with adjustable air outlet modules and sensing elements.

Benefits of technology

It improves the heat dissipation effect of the container data center, reduces energy consumption, and promptly detects and resolves heat dissipation anomalies, extending the service life of the equipment.

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Patent Text Reader

Abstract

The utility model provides a container data center which comprises a container, a plurality of cabinet groups, a plurality of first heat dissipation modules, a first temperature sensor and a processor, the container is divided into a plurality of cabinet areas which are mutually isolated, and the plurality of cabinet groups are respectively arranged in the plurality of cabinet areas. Each first heat dissipation module provides cooling capacity for the corresponding cabinet group through a heat dissipation pipeline; the heat dissipation pipeline comprises a main pipeline, a plurality of first branch pipelines and a plurality of second branch pipelines, and pipeline valves are arranged on the first branch pipelines; the processor is connected with the first temperature sensor, the first temperature sensor is configured to collect the temperature of each cabinet in the multiple cabinet groups, and the processor is configured to control the pipeline valve on the first branch pipeline to rotate between the closing position and the maximum opening position according to the temperature, collected by the first temperature sensor, of each cabinet. The heat dissipation effect of the container data center can be improved, and the energy consumption of the container data center can be reduced.
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Description

Technical Field

[0001] The utility model relates to the technical field of data centers, in particular to a container data center. Background Art

[0002] A container data center (CDC) is a data center housed in a shipping container. With the rapid development of information technology in recent years, the development and construction of container data centers has accelerated rapidly. During operation, container data centers generate significant amounts of heat. To prevent hardware damage and shorten their lifespan, container data centers require cooling systems.

[0003] Container data centers in related technologies usually dissipate heat through centralized cooling using a computer room temperature control system. This heat dissipation method is ineffective and can easily lead to data damage and reduced service life of the container data center. Utility Model Content

[0004] An embodiment of the present utility model provides a container data center, which can improve the heat dissipation effect of the container data center and reduce the energy consumption of the container data center.

[0005] An embodiment of the present invention provides a container data center, comprising a container, a plurality of cabinet groups, a plurality of first heat dissipation modules, a first temperature sensor, and a processor. The container is divided into a plurality of mutually isolated cabinet areas, the plurality of cabinet groups are respectively arranged in the plurality of cabinet areas, the plurality of first heat dissipation modules correspond to the plurality of cabinet groups, and each first heat dissipation module provides cooling to the corresponding cabinet group through a heat dissipation pipe.

[0006] The heat dissipation pipeline includes a main pipeline, a plurality of first branch pipelines, and a plurality of second branch pipelines corresponding to the plurality of first branch pipelines. The plurality of second branch pipelines are respectively located in a plurality of cabinets of a corresponding cabinet group. The main pipeline is connected to the corresponding first heat dissipation module. One end of the first branch pipeline is connected to the main pipeline, and the other end of the first branch pipeline is connected to the corresponding second branch pipeline. A pipeline valve is provided on the first branch pipeline.

[0007] The processor is connected to a first temperature sensor, which is configured to collect the temperature of each cabinet in a plurality of cabinet groups. The processor is configured to control the pipe valve on the first branch pipe to rotate between a closed position and a maximum open position based on the temperature of each cabinet collected by the first temperature sensor.

[0008] In one embodiment, it further includes a plurality of image sensors, the plurality of image sensors corresponding to the plurality of first branch pipes, the plurality of image sensors being connected to the processor, and the plurality of image sensors being configured to obtain position rotation images of the pipe valves on the corresponding first branch pipes and send the position rotation images to the processor.

[0009] In one embodiment, it also includes multiple valve knobs, which are arranged on the outer surface of the container, the multiple valve knobs correspond to multiple first branch pipelines, the torsion positions of the multiple valve knobs correspond to the positions of the pipeline valves on the corresponding first branch pipelines, the multiple valve knobs correspond to the processor, the multiple valve knobs are configured to send the torsion positions to the processor, and the processor is also configured to control the rotation of the corresponding pipeline valve according to the torsion positions.

[0010] In one embodiment, it further includes a second heat dissipation module, a second temperature sensor, and a plurality of adjustable air outlet modules;

[0011] Multiple adjustable air outlet modules correspond to multiple cabinet groups, and the multiple adjustable air outlet modules are configured to transfer the cooling capacity provided by the second heat dissipation module to the corresponding cabinet groups. The second temperature sensor is configured to collect the temperature of each cabinet group. The processor is also configured to control the operation of the multiple adjustable air outlet modules based on the temperature of each cabinet group collected by the second temperature sensor and the temperature of each cabinet collected by the first temperature sensor.

[0012] In one embodiment, it further includes a plurality of first sensing elements and a plurality of second sensing elements;

[0013] A plurality of first sensing elements are disposed on an outer surface of the container, the plurality of first sensing elements corresponding to the plurality of cabinet groups, the plurality of first sensing elements are connected to the second temperature sensor, and the plurality of first sensing elements are configured to emit different color warnings according to the temperature of the corresponding cabinet group collected by the second temperature sensor;

[0014] Multiple second sensing elements are arranged on the outer surface of the container, the multiple second sensing elements correspond to multiple cabinets in the multiple cabinet groups, the multiple second sensing elements are connected to the first temperature sensor, and the multiple second sensing elements are configured to issue different color warnings according to the temperature of the corresponding cabinet collected by the first temperature sensor.

[0015] In one embodiment, a side wall of the second branch pipe is provided with a plurality of pipe holes, and the plurality of pipe holes are evenly distributed on the side wall of the second branch pipe.

[0016] In one embodiment, the main pipeline extends along the arrangement direction of the multiple cabinets of the corresponding cabinet group, and the multiple first branch pipelines are arranged at equal distances on the same side of the main pipeline.

[0017] In one embodiment, the second branch pipe includes a first branch sub-pipe, a second branch sub-pipe, a third branch sub-pipe, a fourth branch sub-pipe, and a fifth branch sub-pipe, wherein the first branch sub-pipe, the third branch sub-pipe, and the fifth branch sub-pipe extend along a first direction, and the second branch sub-pipe and the fourth branch sub-pipe extend along a second direction, and the first direction and the second direction are perpendicular to each other;

[0018] One end of the first branch sub-tube is connected to the corresponding first branch pipe, the other end of the first branch sub-tube is connected to the second branch sub-tube, one end of the second branch sub-tube is connected to the first branch sub-tube, the other end of the second branch sub-tube is connected to the third branch sub-tube, one end of the third branch sub-tube is connected to the second branch sub-tube, the other end of the third branch sub-tube is connected to the fourth branch sub-tube, one end of the fourth branch sub-tube is connected to the third branch sub-tube, and the other end of the fourth branch sub-tube is connected to the fifth branch sub-tube.

[0019] In one embodiment, the adjustable air outlet module includes a transmission unit and an air outlet unit, the air outlet unit is connected to the second heat dissipation module, the transmission unit is connected to the processor, the air outlet unit includes a first air outlet plate and a second air outlet plate, and the first air outlet plate is provided with a plurality of ventilation holes;

[0020] The processor is further configured to send a control instruction to the transmission unit according to the temperature of each cabinet group collected by the second temperature sensor and the temperature of each cabinet collected by the first temperature sensor;

[0021] The transmission unit is configured to control the movement of the second air outlet plate according to the control instruction, so as to realize the opening and closing of the plurality of ventilation holes through the movement of the second air outlet plate.

[0022] In one embodiment, the plurality of cabinet groups are arranged along the length direction of the container, and the plurality of cabinets corresponding to each cabinet group are arranged along the width direction of the container.

[0023] Beneficial effects of the embodiments of the present utility model:

[0024] In an embodiment of the present invention, multiple cabinets in a container are arranged in multiple isolated cabinet areas in the form of cabinet groups, and multiple first heat dissipation modules are used to dissipate heat for the multiple cabinet groups, so that independent heat dissipation of multiple cabinets in the container can be achieved, avoiding the problem of poor heat dissipation effect caused by the existing centralized refrigeration method; the temperature of each cabinet in each cabinet group is collected by a first temperature sensor, and then the processor controls the pipe valve on the first branch pipe to rotate between the closed position and the maximum open position based on the temperature of each cabinet collected by the first temperature sensor, so that cooling capacity can be provided according to the heat dissipation requirements of each cabinet, which can not only improve the heat dissipation effect of the container data center, but also reduce the energy consumption of the container data center. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] In order to more clearly illustrate the technical solutions in the embodiments of the present invention, the following briefly introduces the drawings required for use in the description of the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative work.

[0026] Figure 1 This is a structural diagram of a container data center provided by an embodiment of the present utility model;

[0027] Figure 2 This is a schematic diagram of the structure of the cabinet arrangement provided by an embodiment of the present utility model;

[0028] Figure 3 This is a schematic structural diagram of a heat dissipation pipe provided by an embodiment of the present utility model;

[0029] Figure 4 This is a structural diagram of a container data center provided by another embodiment of the present invention;

[0030] Figure 5 This is a schematic structural diagram of an air outlet unit provided in an embodiment of the present utility model;

[0031] Figure 6 It is a structural diagram of a container data center provided by another embodiment of the present invention.

[0032] The following are the descriptions of the reference numerals:

[0033] 110. Container; 120. Cabinet group; 130. First heat dissipation module; 140. First temperature sensor; 150. Processor; 160. Heat dissipation pipe; 170. Second heat dissipation module; 180. Second temperature sensor; 190. Adjustable air outlet module; 210. First sensing element; 220. Second sensing element; 111. Cabinet area; 121. Cabinet; 161. Main pipe; 162. First branch pipe; 163. Second branch pipe; 191. First air outlet plate; 192. Second air outlet plate; 193. Ventilation hole; 1631. First branch sub-pipe; 1632. Second branch sub-pipe; 1633. Third branch sub-pipe; 1634. Fourth branch sub-pipe; 1635. Fifth branch sub-pipe. DETAILED DESCRIPTION

[0034] In order to make the technical problems solved by the present invention, the technical solutions adopted and the technical effects achieved more clear, the technical solutions of the present invention are further explained below with reference to the accompanying drawings and through specific implementation methods.

[0035] In the description of this utility model, unless otherwise specified or limited, the terms "connected," "connect," and "fixed" should be understood in a broad sense. For example, they can refer to fixed connection, detachable connection, or integration; mechanical connection or electrical connection; direct connection or indirect connection through an intermediate medium; internal communication between two components or interaction between two components. Those skilled in the art will understand the specific meanings of the above terms in this utility model based on the specific circumstances.

[0036] In the present invention, unless otherwise expressly specified or limited, a first feature being "above" or "below" a second feature may include the first and second features being in direct contact, or may include the first and second features being in contact not directly but through another feature between them. Furthermore, a first feature being "above," "above," and "above" a second feature may include the first feature being directly above or diagonally above the second feature, or may simply mean that the first feature is at a higher level than the second feature. A first feature being "below," "below," and "below" a second feature may include the first feature being directly below or diagonally below the second feature, or may simply mean that the first feature is at a lower level than the second feature. In the description of this embodiment, the terms "above," "below," "left," and "right" and other orientations or positional relationships are based on the orientations or positional relationships shown in the accompanying drawings and are intended solely for ease of description and simplification of operation. They are not intended to indicate or imply that the devices or components referred to must have, be constructed, or operate in a specific orientation, and therefore should not be construed as limitations on the present invention. Furthermore, the terms "first" and "second" are used solely for descriptive purposes and do not have any special meaning.

[0037] The inventors have found through research that container data centers in related technologies usually dissipate heat through centralized cooling using a computer room temperature control system. This heat dissipation method is ineffective and can easily lead to data damage and reduced service life of the container data center.

[0038] In order to solve the above problems, Figure 1 and Figure 2As shown, this embodiment provides a container data center, which includes: a container 110, multiple cabinet groups 120, multiple first heat dissipation modules 130, a first temperature sensor 140, and a processor 150. Specifically, the container 110 is divided into multiple isolated cabinet areas 111, and the multiple cabinet groups 120 are respectively arranged in the multiple cabinet areas 111. The multiple first heat dissipation modules 130 correspond to the multiple cabinet groups 120, and each first heat dissipation module 130 provides cooling to the corresponding cabinet group 120 via a heat dissipation pipe 160. For example, the first heat dissipation module A provides cooling to the cabinet group A, the first heat dissipation module B provides cooling to the cabinet group B, and the first heat dissipation module C provides cooling to the cabinet group C. In this embodiment, the multiple cabinets 121 in the container 110 are arranged in the form of cabinet groups 120 in multiple isolated cabinet areas 111, and multiple first heat dissipation modules 130 are used to dissipate heat for the multiple cabinet groups 120, thereby achieving independent heat dissipation of the multiple cabinet groups 120 and avoiding the problem of poor heat dissipation effect caused by the existing centralized refrigeration method.

[0039] In a specific implementation, continue to refer to Figure 2 As shown, each cabinet group 120 includes multiple cabinets 121. The number of cabinets 121 contained in each cabinet group 120 can be the same or different. For example, the number of cabinets contained in cabinet group A, cabinet group B and cabinet group C is 3; the number of cabinets contained in cabinet group A, cabinet group B and cabinet group C are 3, 4 and 5 respectively.

[0040] Further, refer to Figure 3 As shown, the heat dissipation pipe 160 includes a main pipe 161, multiple first branch pipes 162 and multiple second branch pipes 163 corresponding to the multiple first branch pipes 162. The multiple second branch pipes 163 are respectively located in the multiple cabinets 121 of the corresponding cabinet group 120. The main pipe 161 is connected to the corresponding first heat dissipation module 130. One end of the first branch pipe 162 is connected to the main pipe 161, and the other end of the first branch pipe 162 is connected to the corresponding second branch pipe 163. A pipe valve is provided on the first branch pipe 162.

[0041] It should be noted that the number of the plurality of first branch pipes 162 and the plurality of second branch pipes 163 is the same as the number of cabinets 121 included in the corresponding cabinet group 120. For example, if cabinet group A corresponding to heat dissipation pipe A includes three cabinets, heat dissipation pipe A includes a main pipe, three first branch pipes, and three second branch pipes corresponding to the three first branch pipes; if cabinet group B corresponding to heat dissipation pipe B includes four cabinets, heat dissipation pipe B includes a main pipe, four first branch pipes, and four second branch pipes corresponding to the four first branch pipes.

[0042] In one specific implementation, the processor 150 is connected to the first temperature sensor 140. The first temperature sensor 140 is configured to collect the temperature of each cabinet 121 in the plurality of cabinet groups 120. The processor 150 is configured to control the pipe valve on the first branch pipe 162 to rotate between a closed position and a maximum open position based on the temperature of each cabinet 121 collected by the first temperature sensor 140. In this embodiment, the temperature of each cabinet 121 in each cabinet group 120 is collected by the first temperature sensor 140, and then the processor 150 controls the pipe valve on the first branch pipe 162 to rotate between a closed position and a maximum open position based on the temperature of each cabinet 121 collected by the first temperature sensor 140. This can provide cooling capacity according to the heat dissipation requirements of each cabinet 121 in the container data center, thereby improving the heat dissipation efficiency of the container data center and reducing the energy consumption of the container data center.

[0043] Specifically, the first temperature sensor 140 can collect the temperature of each cabinet 121 in each cabinet group 120 in real time, or collect the temperature of each cabinet 121 in each cabinet group 120 at preset time intervals, for example, collect the temperature of each cabinet 121 in each cabinet group 120 every 10 minutes.

[0044] In a specific implementation, the side wall of the second branch pipe 163 is provided with multiple pipe holes. The cold energy provided by the first heat dissipation module 130 will pass through the main pipe 161 through the first branch pipe 162, and then enter the corresponding cabinet 121 through the multiple pipe holes on the side wall of the second branch pipe 163. The cold energy provided by the first heat dissipation module 130 is conducted to the cabinet 121 through the multiple pipe holes. The cold energy can be dispersedly conducted to various positions inside the cabinet 121, thereby improving the heat dissipation effect of the container data center.

[0045] The arrangement of multiple pipe holes on the side wall of the second branch pipe 163 can be set as needed. In a specific implementation, in order to improve the heat dissipation effect of the container data center, multiple pipe holes are evenly distributed on the side wall of the second branch pipe 163. For example, 10 pipe holes are set on the second branch pipe 163, and the 10 pipe holes are evenly distributed on the side wall of the second branch pipe 163.

[0046] In a specific implementation, the main pipe 161 extends along the arrangement direction of the multiple cabinets 121 of the corresponding cabinet group 120, and the multiple first branch pipes 162 are equidistantly arranged on the same side of the main pipe 161. For example, when the multiple cabinets 121 of the cabinet group 120 are arranged along the Y direction, the main pipe 161 extends along the Y direction, and the multiple first branch pipes 162 are equidistantly arranged on the side of the main pipe 161 close to the cabinet group 120.

[0047] In a specific implementation, continue to refer to Figure 3 As shown, the second branch pipe 163 includes a first branch pipe 1631, a second branch pipe 1632, a third branch pipe 1633, a fourth branch pipe 1634, and a fifth branch pipe 1635. The first branch pipe 1631, the third branch pipe 1633, and the fifth branch pipe 1635 extend along a first direction, while the second branch pipe 1632 and the fourth branch pipe 1634 extend along a second direction. The first direction and the second direction are perpendicular to each other. For example, the first branch pipe 1631, the third branch pipe 1633, and the fifth branch pipe 1635 extend along the Y direction, while the second branch pipe 1632 and the fourth branch pipe 1634 extend along the X direction. This arrangement allows the pipe holes on the sidewalls of the second branch pipe 163 to be evenly distributed within the corresponding cabinet 121, thereby further improving the heat dissipation effect of the cabinet 121.

[0048] Further, continue to refer to Figure 3 As shown, one end of the first branch sub-tube 1631 is connected to the corresponding first branch pipe 162, the other end of the first branch sub-tube 1631 is connected to the second branch sub-tube 1632, one end of the second branch sub-tube 1632 is connected to the first branch sub-tube 1631, the other end of the second branch sub-tube 1632 is connected to the third branch sub-tube 1633, one end of the third branch sub-tube 1633 is connected to the second branch sub-tube 1632, the other end of the third branch sub-tube 1633 is connected to the fourth branch sub-tube 1634, one end of the fourth branch sub-tube 1634 is connected to the third branch sub-tube 1633, and the other end of the fourth branch sub-tube 1634 is connected to the fifth branch sub-tube 1635.

[0049] In one specific implementation, the container data center further includes multiple image sensors corresponding to the multiple first branch pipelines. The multiple image sensors are connected to a processor, and the multiple image sensors are configured to capture positional rotation images of the pipeline valves on the corresponding first branch pipelines and transmit the positional rotation images to the processor. After receiving the positional rotation images, the processor can determine whether the pipeline valves have rotated to a specified position based on the positional rotation images. If the pipeline valves have not rotated to the specified position, the position of the pipeline valves can be adjusted promptly to avoid heat dissipation anomalies in the container data center.

[0050] In a specific implementation, the container data center also includes multiple valve knobs, which are arranged on the outer surface of the container. The multiple valve knobs correspond to multiple first branch pipes, and the torsion positions of the multiple valve knobs correspond to the positions of the pipe valves on the corresponding first branch pipes. The multiple valve knobs correspond to the processor, and the multiple valve knobs are configured to send the torsion positions to the processor. The processor is also configured to control the rotation of the corresponding pipe valve according to the torsion position. In this embodiment, by setting a rotary valve on the outer surface of the container, in the event of an abnormality in the first temperature sensor, the normal operation of the container data center can be ensured by manually rotating the pipe valve.

[0051] In a specific implementation, referring to Figure 4 As shown, the container data center further includes a second heat dissipation module 170, a second temperature sensor 180, and multiple adjustable air outlet modules 190. The multiple adjustable air outlet modules 190 correspond to the multiple cabinet groups 120. The multiple adjustable air outlet modules 190 are configured to transfer the cooling energy provided by the second heat dissipation module 170 to the corresponding cabinet groups 120. The second temperature sensor 180 is configured to collect the temperature of each cabinet group 120. The processor 150 is further configured to control the operation of the multiple adjustable air outlet modules 190 based on the temperature of each cabinet group 120 collected by the second temperature sensor 180 and the temperature of each cabinet 121 collected by the first temperature sensor 140.

[0052] This embodiment further improves the heat dissipation effect of the container data center by dissipating heat from the multiple cabinet groups 120 through the second heat dissipation module 170. Furthermore, when the second heat dissipation module 170 dissipates heat from the multiple cabinet groups 120, the second temperature sensor 180 collects the temperature of each cabinet group 120. The processor 150 then controls the operation of the multiple adjustable air outlet modules 190 based on the temperature of each cabinet group 120 collected by the second temperature sensor 180 and the temperature of each cabinet 121 collected by the first temperature sensor 140. This allows the cabinet groups 120 to be cooled according to their heat dissipation requirements, thereby improving the heat dissipation effect of the container data center while reducing its energy consumption.

[0053] In a specific implementation, the adjustable air outlet module 190 includes a transmission unit and an air outlet unit, the air outlet unit is connected to the second heat dissipation module 170, and the transmission unit is connected to the processor 150. Figure 5As shown, the air outlet unit includes a first air outlet plate 191 and a second air outlet plate 192. The first air outlet plate 191 is provided with a plurality of ventilation holes 193. The processor 150 is also configured to send a control instruction to the transmission unit according to the temperature of each cabinet group 120 collected by the second temperature sensor 180 and the temperature of each cabinet 121 collected by the first temperature sensor 140. The transmission unit is configured to control the movement of the second air outlet plate 192 according to the control instruction, so as to realize the opening and closing of the plurality of ventilation holes 193 on the first air outlet plate 191 through the movement of the second air outlet plate 192, thereby adjusting the amount of cooling entering each cabinet group 120.

[0054] In a specific implementation, continue to refer to Figure 2 As shown, multiple cabinet groups 120 are arranged along the length direction of the container 110, and multiple cabinets 121 corresponding to each cabinet group 120 are arranged along the width direction of the container 110. For example, the length direction of the container 110 is the X direction, and the width direction of the container 110 is the Y direction. Multiple cabinet groups 120 are arranged along the X direction, and multiple cabinets 121 corresponding to each cabinet group 120 are arranged along the Y direction.

[0055] In a specific implementation, referring to Figure 6 As shown, the container data center also includes multiple first sensing elements 210, which are disposed on the outer surface of the container 110. The multiple first sensing elements 210 correspond to multiple cabinet groups 120 and are connected to the second temperature sensor 180. The multiple first sensing elements 210 are configured to emit different color warnings based on the temperatures of the corresponding cabinet groups 120 detected by the second temperature sensor 180. The different color warnings emitted by the multiple first sensing elements 210 allow users to promptly identify cabinet groups 120 with abnormal heat dissipation. For example, when the temperature of cabinet group A detected by the second temperature sensor 180 is no higher than 20°C, the first sensing element A corresponding to cabinet group A emits purple light; when the temperature of cabinet group A detected by the second temperature sensor 180 is higher than 50°C, the first sensing element A emits red light.

[0056] In a specific implementation, continue to refer to Figure 6 As shown, the container data center also includes a plurality of second sensing elements 220, which are arranged on the outer surface of the container 110, and the plurality of second sensing elements 220 correspond to the plurality of cabinets 121 in the plurality of cabinet groups 120, and the plurality of second sensing elements 220 are connected to the first temperature sensor 140. The plurality of second sensing elements 220 are configured to issue different color warnings according to the temperature of the corresponding cabinet 121 collected by the first temperature sensor 140. Through the different color warnings issued by the plurality of second sensing elements 220, the user can promptly discover the cabinet 121 with abnormal heat dissipation.

[0057] The above is a detailed introduction to the embodiments of the present invention. Specific examples are used in this article to illustrate the principles and implementation methods of the present invention. The description of the above embodiments is only used to help understand the method and core idea of ​​the present invention. At the same time, for those skilled in the art, based on the idea of ​​the present invention, there will be changes in the specific implementation methods and application scope. In summary, the contents of this specification should not be understood as limiting the present invention.

Claims

1. A container data center, characterized in that: The system comprises a container, a plurality of cabinet groups, a plurality of first heat dissipation modules, a first temperature sensor, and a processor. The container is divided into a plurality of cabinet areas isolated from each other. The plurality of cabinet groups are respectively arranged in the plurality of cabinet areas. The plurality of first heat dissipation modules correspond to the plurality of cabinet groups, respectively. Each first heat dissipation module provides cooling to the corresponding cabinet group through a heat dissipation pipe. The heat dissipation pipeline includes a main pipeline, a plurality of first branch pipelines, and a plurality of second branch pipelines corresponding to the plurality of first branch pipelines, wherein the plurality of second branch pipelines are respectively located in a plurality of cabinets of a corresponding cabinet group, the main pipeline is connected to the corresponding first heat dissipation module, one end of the first branch pipeline is in communication with the main pipeline, and the other end of the first branch pipeline is in communication with the corresponding second branch pipeline, and a pipeline valve is provided on the first branch pipeline; The processor is connected to the first temperature sensor, which is configured to collect the temperature of each cabinet in the multiple cabinet groups. The processor is configured to control the pipe valve on the first branch pipe to rotate between a closed position and a maximum open position based on the temperature of each cabinet collected by the first temperature sensor.

2. The container data center according to claim 1, characterized in that: It also includes multiple image sensors, which correspond to multiple first branch pipes. The multiple image sensors are connected to the processor and are configured to obtain position rotation images of the pipe valves on the corresponding first branch pipes and send the position rotation images to the processor.

3. The container data center according to claim 1, characterized in that: It also includes multiple valve knobs, which are arranged on the outer surface of the container, and the multiple valve knobs correspond to the multiple first branch pipes. The torsional positions of the multiple valve knobs correspond to the positions of the pipeline valves on the corresponding first branch pipes. The multiple valve knobs correspond to the processor, and the multiple valve knobs are configured to send the torsional positions to the processor. The processor is also configured to control the rotation of the corresponding pipeline valve according to the torsional positions.

4. The container data center according to claim 1, characterized in that: It also includes a second heat dissipation module, a second temperature sensor and a plurality of adjustable air outlet modules; Multiple adjustable air outlet modules correspond to multiple cabinet groups, and multiple adjustable air outlet modules are configured to transfer the cooling capacity provided by the second heat dissipation module to the corresponding cabinet groups. The second temperature sensor is configured to collect the temperature of each cabinet group. The processor is also configured to control the operation of the multiple adjustable air outlet modules based on the temperature of each cabinet group collected by the second temperature sensor and the temperature of each cabinet collected by the first temperature sensor.

5. The container data center according to claim 4, characterized in that: Also included are a plurality of first sensing elements and a plurality of second sensing elements; A plurality of first sensing elements are disposed on an outer surface of the container, the plurality of first sensing elements correspond to the plurality of cabinet groups, the plurality of first sensing elements are connected to the second temperature sensor, and the plurality of first sensing elements are configured to emit different color warnings according to the temperature of the corresponding cabinet group collected by the second temperature sensor; Multiple second sensing elements are arranged on the outer surface of the container, multiple second sensing elements correspond to multiple cabinets in the multiple cabinet groups, multiple second sensing elements are connected to the first temperature sensor, and multiple second sensing elements are configured to issue different color warnings according to the temperature of the corresponding cabinet collected by the first temperature sensor.

6. The container data center according to any one of claims 1 to 5, characterized in that: The side wall of the second branch pipe is provided with a plurality of pipe holes, and the plurality of pipe holes are evenly distributed on the side wall of the second branch pipe.

7. The container data center according to claim 6, characterized in that: The main pipeline extends along the arrangement direction of the multiple cabinets of the corresponding cabinet group, and the multiple first branch pipelines are arranged at equal distances on the same side of the main pipeline.

8. The container data center according to claim 7, characterized in that: The second branch pipe includes a first branch sub-pipe, a second branch sub-pipe, a third branch sub-pipe, a fourth branch sub-pipe and a fifth branch sub-pipe, wherein the first branch sub-pipe, the third branch sub-pipe and the fifth branch sub-pipe extend along a first direction, and the second branch sub-pipe and the fourth branch sub-pipe extend along a second direction, and the first direction is perpendicular to the second direction. One end of the first branch sub-tube is connected to the corresponding first branch pipe, the other end of the first branch sub-tube is connected to the second branch sub-tube, one end of the second branch sub-tube is connected to the first branch sub-tube, the other end of the second branch sub-tube is connected to the third branch sub-tube, one end of the third branch sub-tube is connected to the second branch sub-tube, the other end of the third branch sub-tube is connected to the fourth branch sub-tube, one end of the fourth branch sub-tube is connected to the third branch sub-tube, and the other end of the fourth branch sub-tube is connected to the fifth branch sub-tube.

9. The container data center according to claim 4, characterized in that: The adjustable air outlet module includes a transmission unit and an air outlet unit, the air outlet unit is connected to the second heat dissipation module, the transmission unit is connected to the processor, the air outlet unit includes a first air outlet plate and a second air outlet plate, and the first air outlet plate is provided with a plurality of ventilation holes; The processor is further configured to send a control instruction to the transmission unit according to the temperature of each cabinet group collected by the second temperature sensor and the temperature of each cabinet collected by the first temperature sensor; The transmission unit is configured to control the movement of the second air outlet plate according to the control instruction, so as to realize the opening and closing of the plurality of ventilation holes through the movement of the second air outlet plate.

10. The container data center according to any one of claims 1 to 5, characterized in that: The plurality of cabinet groups are arranged along the length direction of the container, and the plurality of cabinets corresponding to each cabinet group are arranged along the width direction of the container.