Satellite communication container heat dissipation structure

By introducing temperature sensors and an automatic cooling system into the satellite communication container, the problems of uneven heat dissipation and low efficiency are solved, and efficient equipment heat dissipation and communication quality assurance are achieved.

CN223142368UActive Publication Date: 2025-07-22HAMI TIANCAO TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422316326.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-20
Publication Date
2025-07-22
Estimated Expiration
2034-09-20

AI Technical Summary

Technical Problem

The existing satellite communication container cooling system is inefficient when dealing with high heat generation, resulting in a decline in equipment performance and communication quality, and uneven heat dissipation of different equipment.

Method used

A heat dissipation structure including temperature sensors, heat dissipation pipes, heat dissipation fins and cooling racks is designed. The speed of the heat dissipation fan is adjusted through the temperature sensor to achieve automatic heat distribution and efficient export of heat dissipation pipes.

Benefits of technology

The overall circulation temperature control inside the container is realized, the equipment performance and communication quality are ensured, and the heat dissipation efficiency and uniformity are improved.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model provides a heat dissipation structure of a satellite communication container, and belongs to the technical field of heat dissipation systems of movable distributed computing power containers. The satellite communication container heat dissipation structure comprises a container body, an equipment bin, an external hanging bin, an equipment frame, a heat dissipation pipe and a cooling frame, the equipment bin is formed in the container body, the external hanging bin is fixedly connected to the exterior of the container body, the equipment frame is fixedly connected to the interior of the equipment bin, and the heat dissipation pipe is fixedly connected to the exterior of the container body. The cooling frame is movably connected outside the equipment frame, a conveying pipe is fixedly connected inside the equipment bin, a liquid discharging pipe is fixedly connected inside the equipment bin, a connecting valve is fixedly connected outside the conveying pipe and the liquid discharging pipe, a partition plate is fixedly connected inside the equipment frame, and a connecting groove is formed outside the heat dissipation pipe. The utility model has the advantages that the rotating speed can be automatically adjusted according to the signal of the temperature sensor, and the heat dissipation pipeline guides the heat to the heat dissipation fins for dissipation.
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Description

Technical Field

[0001] The utility model relates to the technical field of heat dissipation systems for movable distributed computing power containers, and particularly relates to a heat dissipation structure for satellite communication containers. Background Art

[0002] When the movable computing power container conducts satellite communication data transmission, a large amount of heat will be generated. If the heat dissipation is poor, it will affect the device performance and communication quality. The current heat dissipation systems have limited effects in dealing with the high heat generated related to satellite communication. Most of them cool the devices through fans. However, the temperatures generated by different devices during operation are different, and the same fan operation efficiency will lead to uneven heat dissipation of each device. Moreover, the cooling surface is mostly the bottom surface of the device, with low cooling efficiency, and the cooling pipes occupy a large external space, and part of the heat is repeatedly absorbed at the connection part with the container, thus reducing the heat dissipation efficiency. Therefore, this application provides a heat dissipation structure for satellite communication containers. Summary of the Utility Model

[0003] To solve the above technical problems, the utility model proposes a heat dissipation structure for satellite communication containers that can automatically adjust the rotation speed according to the signal of the temperature sensor, and the heat dissipation pipes guide the heat to the heat sinks for dissipation.

[0004] The technical solution of the utility model is realized as follows:

[0005] A heat dissipation structure for satellite communication containers includes a container main body, an equipment compartment, an external hanging compartment, an equipment rack, heat dissipation pipes, and a cooling rack. Among them, the equipment compartment is opened inside the container main body, the external hanging compartment is fixedly connected to the outside of the container main body, the equipment rack is fixedly connected inside the equipment compartment, the heat dissipation pipes are fixedly connected to the outside of the container main body, the cooling rack is movably connected to the outside of the equipment rack, a delivery pipe is fixedly connected inside the equipment compartment, a drain pipe is fixedly connected inside the equipment compartment, a connection valve is fixedly connected to the outside of the delivery pipe and the drain pipe, a partition is fixedly connected inside the equipment rack, a connection groove is opened on the outside of the heat dissipation pipe, a heat dissipation fin is movably connected inside the connection groove, and a hatch is movably connected to the outside of the container main body.

[0006] Furthermore, a ventilation device is fixedly connected inside the equipment compartment, a protective net is fixedly connected to the outside of the equipment compartment. There are two groups of equipment compartments symmetrically distributed on the outside of the container main body, two groups of ventilation devices symmetrically distributed inside the external hanging compartment, and multiple groups of protective nets evenly distributed on the outside of the external hanging compartment.

[0007] Furthermore, the delivery pipe and the heat dissipation pipe are fixedly connected with an angle valve at the corners, there are two groups of drain pipes and they are symmetrically distributed inside the equipment compartment, the delivery pipe is F-shaped as a whole, the delivery pipe branch and the drain pipe are parallel to each other, and the angle valve on the outside of the far end of the delivery pipe is fixedly connected to the compressor.

[0008] Furthermore, the equipment racks are provided in two groups and are symmetrically distributed inside the equipment warehouse, the partitions are provided in multiple groups and are evenly distributed inside the equipment racks, a support net is provided inside the partition, a cooling fan is fixedly connected inside the support net, ventilation slots are provided outside the partition, and the support nets are provided in two groups and are symmetrically distributed outside the partition.

[0009] Furthermore, a connecting bolt is fixedly connected to the outside of the cooling rack, a cavity is opened inside the cooling rack and the left and right sides are interconnected, the left side of the connecting bolt is movably connected to the connecting valve outside the delivery pipe, and the right side of the connecting bolt is movably connected to the connecting valve outside the drain pipe. There are multiple groups of connecting valves and they are evenly distributed outside the drain pipe and the delivery pipe branches, and a communication device is movably connected inside the cooling rack.

[0010] Furthermore, the heat dissipation part of the heat dissipation pipe is in a Japanese shape, the angle valve outside one diagonal end of the heat dissipation pipe is connected to each other, and the bottom of the heat dissipation part of the heat dissipation pipe is connected to each other and connected to the compressor.

[0011] Furthermore, a movable connecting pipe is fixedly connected to the outside of the heat dissipation fin, an embedded pipe is opened inside the heat dissipation fin, the movable connecting pipe and the embedded pipe are interconnected, and there are multiple groups of connecting grooves that are symmetrically distributed outside the heat dissipation part of the heat dissipation pipe.

[0012] Furthermore, the equipment rack and the bottom of the partition are fixedly connected with temperature sensors, there are multiple groups of temperature sensors and they are evenly distributed on the equipment rack and the bottom of the partition, and the outside of the equipment rack is provided with through pipe grooves, there are two groups of through pipe grooves and they are symmetrically distributed on the outside of the equipment rack.

[0013] The utility model has the following beneficial effects:

[0014] 1. By setting up partitions, temperature sensors, cooling fans and ventilation slots, the device can perform overall circulation temperature control inside the container, and automatically adjust the cooling fan speed according to the signal of the temperature sensor to ensure equipment performance and communication quality.

[0015] 2. By setting up a conveying rack, a drain pipe, a heat dissipation pipe, a heat dissipation fin and a cooling rack, the device forms a cooling cycle inside the container, transports the heat inside the container to the outside for heat dissipation, and increases the heat dissipation area through the heat dissipation fins, greatly improving the heat dissipation efficiency of the device. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 is the overall structural schematic diagram of the present utility model;

[0017] Figure 2 is the present utility model Figure 1 from another perspective;

[0018] Figure 3 is the present utility model Figure 1 internal structural dissection diagram;

[0019] Figure 4 is the present utility model Figure 3 partial structural schematic diagram;

[0020] Figure 5 is the present utility model Figure 2 from another perspective;

[0021] Figure 6 is the present utility model Figure 3 partial structural schematic diagram;

[0022] Figure 7 is the present utility model Figure 6 partial structural schematic diagram;

[0023] Figure 8 is the present utility model Figure 2 partial structural schematic diagram.

[0024] Wherein: 1, container main body; 2, equipment compartment; 3, external hanging compartment; 4, equipment rack; 5, conveying pipe; 6, corner valve; 7, drain pipe; 8, connection valve; 9, heat dissipation pipe; 10, connection groove; 11, movable connecting pipe; 12, heat dissipation fin; 13, embedded pipe; 14, through pipe groove; 15, partition board; 16, temperature sensor; 17, support net; 18, heat dissipation fan; 19, ventilation groove; 20, cooling rack; 21, connecting bolt; 22, hatch door; 23, protection net; 24, ventilation equipment; 25, communication equipment; 26, compressor. Detailed implementation manners

[0025] The technical solutions in the embodiments of the present utility model will be clearly and completely described below. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present utility model without making creative efforts shall fall within the protection scope of the present utility model.

[0026] Please refer to Figures 1 to 8As shown in the figure, a satellite communication container heat dissipation structure provided by the utility model includes a container main body 1, an equipment compartment 2, an external hanging compartment 3, an equipment rack 4, a heat dissipation pipe 9, and a cooling rack 20. Among them, the equipment compartment 2 is arranged inside the container main body 1, the external hanging compartment 3 is fixedly connected to the outside of the container main body 1, the equipment rack 4 is fixedly connected to the inside of the equipment compartment 2, the heat dissipation pipe 9 is fixedly connected to the outside of the container main body 1, the cooling rack 20 is movably connected to the outside of the equipment rack 4, a delivery pipe 5 is fixedly connected to the inside of the equipment compartment 2, a drain pipe 7 is fixedly connected to the inside of the equipment compartment 2, and a connection valve 8 is fixedly connected to the outside of the delivery pipe 5 and the drain pipe 7. A partition 15 is fixedly connected to the inside of the equipment rack 4, a connection groove 10 is formed on the outside of the heat dissipation pipe 9, and a heat dissipation fin 12 is movably connected to the inside of the connection groove 10. A hatch 22 is movably connected to the outside of the container main body 1;

[0027] A ventilation device 24 is fixedly connected to the inside of the equipment compartment 2, a protective net 23 is fixedly connected to the outside of the equipment compartment 2. There are two groups of equipment compartments 2 and they are symmetrically distributed on the outside of the container main body 1. There are two groups of ventilation devices 24 and they are symmetrically distributed inside the external hanging compartment 3. There are multiple groups of protective nets 23 and they are evenly distributed on the outside of the external hanging compartment 3. Angle valves 6 are fixedly connected to the corners of the delivery pipe 5 and the heat dissipation pipe 9. There are two groups of drain pipes 7 and they are symmetrically distributed inside the equipment compartment 2. The delivery pipe 5 is generally in an F shape, and the branches of the delivery pipe 5 are parallel to the drain pipe 7. A compressor 26 is fixedly connected to the angle valve 6 at the distal end of the delivery pipe 5. There are two groups of equipment racks 4 and they are symmetrically distributed inside the equipment compartment 2. There are multiple groups of partitions 15 and they are evenly distributed inside the equipment rack 4. A support net 17 is formed inside the partition 15, a heat dissipation fan 18 is fixedly connected to the inside of the support net 17, a ventilation slot 19 is formed on the outside of the partition 15, and there are two groups of support nets 17 and they are symmetrically distributed on the outside of the partition 15.

[0028] Specifically, when the device is in use, first place the cooling rack 20 outside the partition 15, connect the connecting bolts 21 on the left side of the cooling rack 20 to the connection valve 8 outside the branch of the delivery pipe 5, and at the same time connect the connecting bolts 21 on the right side of the cooling rack 20 to the connection valve 8 outside the drain pipe 7. Then place the communication device 25 inside the cooling rack 20 to complete the connection. During the operation of the equipment, part of the generated heat is collected by the heat dissipation fan 18 and discharged from the ventilation slot 19. At the same time, the overall temperature of the space inside the equipment compartment 2 is cyclically adjusted by the ventilation device 24, and the temperature sensors 16 outside the equipment rack 4 and the partition 15 monitor the temperature of the communication device 25 in real time, so as to control the rotation speed of the heat dissipation fan 18 to adjust the heat dissipation efficiency, greatly improving the convenience of the device.

[0029] Furthermore, a connecting bolt 21 is fixedly connected to the outside of the cooling rack 20. A cavity is formed inside the cooling rack 20 and is interconnected left and right. The left side of the connecting bolt 21 is movably connected to the connecting valve 8 outside the conveying pipe 5, and the right side of the connecting bolt 21 is movably connected to the connecting valve 8 outside the drain pipe 7. There are multiple groups of connecting valves 8, which are evenly distributed outside the branches of the drain pipe 7 and the conveying pipe 5. A communication device 25 is movably connected inside the cooling rack 20. The heat dissipation part of the heat dissipation pipe 9 is in the shape of a Chinese character 'ri'. The corner valve 6 outside one diagonal end of the heat dissipation pipe 9 is connected to the corner valve 6 outside the drain pipe 7. The bottoms of the heat dissipation parts of the heat dissipation pipe 9 are interconnected and are connected to the compressor 26. An activity connecting pipe 11 is fixedly connected to the outside of the heat dissipation fin 12. An embedded pipe 13 is formed inside the heat dissipation fin 12. The activity connecting pipe 11 is interconnected with the embedded pipe 13. There are multiple groups of connecting grooves 10, which are symmetrically distributed outside the heat dissipation parts of the heat dissipation pipe 9. Temperature sensors 16 are fixedly connected to the bottoms of both the equipment rack 4 and the partition 15. There are multiple groups of temperature sensors 16, which are evenly distributed at the bottoms of the equipment rack 4 and the partition 15. Through pipes slots 14 are formed outside the equipment rack 4. There are two groups of through pipes slots 14, which are symmetrically distributed outside the equipment rack 4.

[0030] By making the above settings, during the operation of the equipment, except for the heat discharged by the heat dissipation fan 18, the remaining heat is transferred to the inside of the cooling rack 20. The coolant flows in through the connecting bolt 21 on the left side of the cooling rack 20. After absorbing the heat of the communication device 25, it is discharged through the connecting bolt 21 on the right side of the cooling rack 20 and via the drain pipe 7, and then enters the inside of the heat dissipation pipe 9 through the drain pipe 7. The coolant inside the heat dissipation pipe 9 enters the embedded pipe 13 through the activity connecting pipe 11 for heat dissipation. After converging in the heat dissipation pipe 9, it flows into the compressor 26 for re-cooling and then returns to the cooling cycle, greatly improving the heat dissipation and cooling efficiency of the device.

[0031] The above are only the preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principles of the present invention shall be included within the protection scope of the present invention.

Claims

1. A heat dissipation structure for a satellite communication container, characterized in that It includes a container body (1), an equipment compartment (2), an external hanging compartment (3), an equipment rack (4), a heat dissipation pipe (9), and a cooling rack (20). Among them, the equipment compartment (2) is opened inside the container body (1), the external hanging compartment (3) is fixedly connected to the outside of the container body (1), the equipment rack (4) is fixedly connected to the inside of the equipment compartment (2), the heat dissipation pipe (9) is fixedly connected to the outside of the container body (1), the cooling rack (20) is movably connected to the outside of the equipment rack (4), a delivery pipe (5) is fixedly connected inside the equipment compartment (2), a drain pipe (7) is fixedly connected inside the equipment compartment (2), a connection valve (8) is fixedly connected to the outside of the delivery pipe (5) and the drain pipe (7), a partition (15) is fixedly connected inside the equipment rack (4), a connection groove (10) is opened on the outside of the heat dissipation pipe (9), a heat dissipation fin (12) is movably connected inside the connection groove (10), and a hatch door (22) is movably connected to the outside of the container body (1).

2. The heat dissipation structure of a satellite communication container according to claim 1, wherein, A ventilation device (24) is fixedly connected inside the equipment compartment (2), a protective net (23) is fixedly connected to the outside of the equipment compartment (2), there are two groups of the equipment compartments (2) and they are symmetrically distributed on the outside of the container body (1), there are two groups of the ventilation devices (24) and they are symmetrically distributed inside the external hanging compartment (3), and there are multiple groups of the protective nets (23) and they are evenly distributed on the outside of the external hanging compartment (3).

3. The heat dissipation structure of a satellite communication container according to claim 1, wherein, Corner valves (6) are fixedly connected at the corners of the delivery pipe (5) and the heat dissipation pipe (9), there are two groups of the drain pipes (7) and they are symmetrically distributed inside the equipment compartment (2), the delivery pipe (5) is overall in an F shape, the branches of the delivery pipe (5) are parallel to the drain pipe (7), and a compressor (26) is fixedly connected to the corner valve (6) at the distal end of the delivery pipe (5).

4. A satellite communication container heat dissipation structure according to claim 3, characterized in that, There are two groups of the equipment racks (4) and they are symmetrically distributed inside the equipment compartment (2), there are multiple groups of the partitions (15) and they are evenly distributed inside the equipment rack (4), a support net (17) is opened inside the partition (15), a heat dissipation fan (18) is fixedly connected inside the support net (17), a ventilation slot (19) is opened on the outside of the partition (15), and there are two groups of the support nets (17) and they are symmetrically distributed on the outside of the partition (15).

5. A satellite communication container heat dissipation structure according to claim 1, characterized in that, A connection bolt (21) is fixedly connected to the outside of the cooling rack (20), a cavity is opened inside the cooling rack (20) and is connected to each other left and right, the left side of the connection bolt (21) is movably connected to the connection valve (8) on the outside of the delivery pipe (5), the right side of the connection bolt (21) is movably connected to the connection valve (8) on the outside of the drain pipe (7), there are multiple groups of the connection valves (8) and they are evenly distributed on the branches of the drain pipe (7) and the delivery pipe (5), and a communication device (25) is movably connected inside the cooling rack (20).

6. The heat dissipation structure of a satellite communication container according to claim 1, characterized in that, The heat dissipation part of the heat dissipation pipe (9) is in the shape of a Chinese character 'Ri', the angle valve (6) outside one diagonal end of the heat dissipation pipe (9) is connected to the angle valve (6) outside the liquid discharge pipe (7), and the bottom of the heat dissipation part of the heat dissipation pipe (9) is communicated with each other and connected to the compressor (26).

7. A satellite communication container heat dissipation structure according to claim 1, characterized in that, An active connecting pipe (11) is fixedly connected to the outside of the heat dissipation fin (12), an embedded pipe (13) is arranged inside the heat dissipation fin (12), the active connecting pipe (11) is communicated with the embedded pipe (13), and there are multiple groups of connecting grooves (10) which are symmetrically distributed outside the heat dissipation part of the heat dissipation pipe (9).

8. A satellite communication container heat dissipation structure according to claim 1, characterized in that, Temperature sensors (16) are fixedly connected to the bottoms of the equipment rack (4) and the partition board (15), there are multiple groups of temperature sensors (16) which are evenly distributed at the bottoms of the equipment rack (4) and the partition board (15), through pipe grooves (14) are arranged outside the equipment rack (4), and there are two groups of through pipe grooves (14) which are symmetrically distributed outside the equipment rack (4).