Driving device based on power distribution network engineering data
By introducing a coolant circulation system and a heat dissipation fan into the distribution network engineering data drive device, the problem that traditional air-cooling methods cannot meet the high-density calculation heat dissipation needs is solved, and efficient heat dissipation of the driving main parts is achieved.
Patent Information
- Application Number
- CN202422145697.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-02
- Publication Date
- 2025-07-11
- Estimated Expiration
- 2034-09-02
AI Technical Summary
The traditional air-cooling method cannot meet the heat dissipation needs of distribution network engineering data drive devices under the background of high-density computing.
The flowing coolant in the first bent pipe, the second bent pipe, the first copper pipe, the second copper pipe, the third copper pipe, and the fourth copper pipe are adopted, and combined with the design of the heat dissipation plate and the heat dissipation fan, circulating heat dissipation on the surface of the driving main part is achieved.
The cooling effect of the driving main component is improved and efficient heat dissipation on the surface of the driving main component is achieved.
Smart Images

Figure CN223094090U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of distribution network engineering equipment, and particularly relates to a data-driven device based on distribution network engineering. Background Technique
[0002] A data-driven device for distribution network engineering is a device that uses data-driven technology to optimize and monitor the operation of the distribution network. This device usually involves using technologies such as data mining and machine learning to perform real-time analysis on the operation data of the distribution network to achieve efficient, safe, and reliable operation of the distribution network.
[0003] With the development of technology, the scale and performance of data centers have been continuously improved, and the heat dissipation problem has become increasingly important. Especially in the context of the rise of high-density computing, continuous improvement of chip and server performance, and single cabinet power density, the traditional air-cooling method can no longer meet the requirements. Therefore, we propose a data-driven device based on distribution network engineering. Summary of the Utility Model
[0004] The purpose of the utility model is to provide a data-driven device based on distribution network engineering to solve the problem of poor heat dissipation of the existing data-driven device for distribution network engineering mentioned in the above background technique.
[0005] To achieve the above purpose, the utility model provides the following technical solution: A data-driven device based on distribution network engineering includes a driving main part. A heat collector is provided on the surface of the driving main part. An installation groove is provided inside the heat collector. A first elbow pipe is provided inside the installation groove. A first copper pipe is provided on one side of the first elbow pipe. A micro water pump is provided at one end of the first copper pipe. A third copper pipe is provided on one side of the micro water pump. A base is provided on one side of the micro water pump. A heat dissipation plate and a second elbow pipe are provided on the top of the base. A second copper pipe is provided at one end of the second elbow pipe. Heat dissipation holes are provided at the bottom of the base. A heat dissipation fan is provided inside the heat dissipation holes. A dust-proof net is provided at the bottom of the heat dissipation holes. A fourth copper pipe is provided on one side of the micro water pump.
[0006] Preferably, an installation groove is penetrated and opened inside the heat collector, and thermal conductive silicone grease is applied between the bottom surface of the first elbow pipe and the top surface of the driving main part.
[0007] Preferably, one end of the first elbow pipe is fixedly connected to the first copper pipe, one end of the first copper pipe extends to the outside of the heat collector and is fixedly connected to one side of the micro water pump, and the other side of the micro water pump is fixedly connected to the third copper pipe.
[0008] Preferably, multiple groups of heat dissipation plates are fixedly installed on the top surface of the base, the second elbow pipe is fixedly penetrated and connected to the surface of the heat dissipation plate, and one end of the second elbow pipe is fixedly connected to one side of the third copper pipe.
[0009] Preferably, one end of the second elbow pipe is fixedly connected with a second copper pipe, one end of the second copper pipe is fixedly connected with one side of the micro water pump, heat dissipation holes are formed in the bottom surface of the base, and a heat dissipation fan is fixedly installed inside the heat dissipation holes.
[0010] Preferably, a dust-proof net is fixedly connected to the bottom of the heat dissipation hole, a fourth copper pipe is fixedly connected to one side of the micro water pump, and one end of the fourth copper pipe is fixedly connected to one end of the first elbow pipe.
[0011] Compared with the prior art, the beneficial effects of the present utility model are as follows:
[0012] Cooling liquid flows inside the first elbow pipe, the second elbow pipe, the first copper pipe, the second copper pipe, the third copper pipe, and the fourth copper pipe arranged. With the cooling effect of the heat dissipation plate and the heat dissipation fan, the effect of circulating heat dissipation on the surface of the driving main part is achieved, and the cooling effect on the driving main part is improved. BRIEF DESCRIPTION OF THE DRAWINGS
[0013] Figure 1 is a schematic diagram of the overall structure of the present utility model;
[0014] Figure 2 is a schematic top view structure diagram of the present utility model;
[0015] Figure 3 is a schematic bottom view structure diagram of the present utility model.
[0016] In the figure: 1, driving main part; 2, collector; 3, installation groove; 4, first elbow pipe; 5, first copper pipe; 6, micro water pump; 7, base; 8, heat dissipation plate; 9, second elbow pipe; 10, second copper pipe; 11, heat dissipation hole; 12, heat dissipation fan; 13, dust-proof net; 14, third copper pipe; 15, fourth copper pipe. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0017] The technical solutions in the embodiments of the present utility model will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.
[0018] Please refer to Figures 1-3, the present utility model provides a technical solution: a power distribution network engineering data-driven device, including a driving main component 1. A heat collector 2 is provided on the surface of the driving main component 1. An installation groove 3 is provided inside the heat collector 2. A first elbow pipe 4 is provided inside the installation groove 3. A first copper pipe 5 is provided on one side of the first elbow pipe 4. A micro water pump 6 is provided at one end of the first copper pipe 5. A third copper pipe 14 is provided on one side of the micro water pump 6. A base 7 is provided on one side of the micro water pump 6. A heat dissipation plate 8 and a second elbow pipe 9 are provided on the top of the base 7. A second copper pipe 10 is provided at one end of the second elbow pipe 9. A heat dissipation hole 11 is provided at the bottom of the base 7. A heat dissipation fan 12 is provided inside the heat dissipation hole 11. A dust-proof net 13 is provided at the bottom of the heat dissipation hole 11. A fourth copper pipe 15 is provided on one side of the micro water pump 6.
[0019] Specifically, an installation groove 3 is penetrated and opened inside the heat collector 2. Thermal conductive silicone grease is applied between the bottom surface of the first elbow pipe 4 and the top surface of the driving main component 1. One end of the first elbow pipe 4 is fixedly connected to a first copper pipe 5. One end of the first copper pipe 5 extends to the outside of the heat collector 2 and is fixedly connected to one side of the micro water pump 6. The other side of the micro water pump 6 is fixedly connected to a third copper pipe 14. Multiple heat dissipation plates 8 are fixedly installed on the top surface of the base 7. The second elbow pipe 9 is fixedly penetrated and connected to the surface of the heat dissipation plate 8. One end of the second elbow pipe 9 is fixedly connected to one side of the third copper pipe 14. One end of the second elbow pipe 9 is fixedly connected to a second copper pipe 10. One end of the second copper pipe 10 is fixedly connected to one side of the micro water pump 6. A heat dissipation hole 11 is opened on the bottom surface of the base 7. The heat dissipation fan 12 is fixedly installed inside the heat dissipation hole 11. The dust-proof net 13 is fixedly connected to the bottom of the heat dissipation hole 11. One side of the micro water pump 6 is fixedly connected to a fourth copper pipe 15. One end of the fourth copper pipe 15 is fixedly connected to one end of the first elbow pipe 4.
[0020] In this embodiment, a coolant is provided inside the first elbow pipe 4, the second elbow pipe 9, the first copper pipe 5, the second copper pipe 10, the third copper pipe 14 and the fourth copper pipe 15. When heat generated on the surface of the driving main component 1 during operation enters the inside of the heat collector 2, the operation of the micro water pump 6 can drive the coolant to circulate. When the coolant in the first elbow pipe 4 flows into the inside of the second elbow pipe 9, it will absorb the heat in the heat collector 2 and carry it to the inside of the second elbow pipe 9. Through the provided multiple heat dissipation plates 8, the heat carried by the coolant in the second elbow pipe 9 can be absorbed. Then, through the heat dissipation fan 12 rotating at the bottom end, the heat on the surface of the heat dissipation plate 8 can be discharged from the inside of the heat dissipation hole 11 to the outside, so as to achieve the cooling effect on the coolant inside the second elbow pipe 9. And the cooled coolant will enter the heat collector 2 again to achieve the effect of circulating heat dissipation on the surface of the driving main component 1.
[0021] Although embodiments of the present utility model have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principle and spirit of the present utility model. The scope of the present utility model is defined by the appended claims and their equivalents.
Claims
1. A device driven by distribution network engineering data, comprising a driving main component (1), characterized in that: A heat collector (2) is provided on the surface of the driving main part (1). An installation groove (3) is provided inside the heat collector (2). A first elbow pipe (4) is provided inside the installation groove (3). A first copper pipe (5) is provided on one side of the first elbow pipe (4). A micro water pump (6) is provided at one end of the first copper pipe (5). A third copper pipe (14) is provided on one side of the micro water pump (6). A base (7) is provided on one side of the micro water pump (6). A heat dissipation plate (8) and a second elbow pipe (9) are provided on the top of the base (7). A second copper pipe (10) is provided at one end of the second elbow pipe (9). Heat dissipation holes (11) are provided at the bottom of the base (7). A heat dissipation fan (12) is provided inside the heat dissipation holes (11). A dust-proof net (13) is provided at the bottom of the heat dissipation holes (11). A fourth copper pipe (15) is provided on one side of the micro water pump (6).
2. The data-driven device based on the distribution network project according to claim 1, characterized in that: An installation groove (3) is penetrated and provided inside the heat collector (2). Thermal grease is applied between the bottom surface of the first elbow pipe (4) and the top surface of the driving main part (1).
3. The data-driven device based on the distribution network project according to claim 1, wherein: One end of the first elbow pipe (4) is fixedly connected to a first copper pipe (5). One end of the first copper pipe (5) extends to the outside of the heat collector (2) and is fixedly connected to one side of the micro water pump (6). The other side of the micro water pump (6) is fixedly connected to a third copper pipe (14).
4. A data-driven device based on distribution network engineering according to claim 1, characterized in that: Multiple heat dissipation plates (8) are fixedly installed on the top surface of the base (7). The second elbow pipe (9) is fixedly penetrated and connected through the surface of the heat dissipation plate (8). One end of the second elbow pipe (9) is fixedly connected to one side of the third copper pipe (14).
5. A data-driven device based on distribution network engineering according to claim 1, characterized in that: One end of the second elbow pipe (9) is fixedly connected to a second copper pipe (10). One end of the second copper pipe (10) is fixedly connected to one side of the micro water pump (6). Heat dissipation holes (11) are provided on the bottom surface of the base (7). A heat dissipation fan (12) is fixedly installed inside the heat dissipation holes (11).
6. The data-driven device based on the distribution network engineering according to claim 1, characterized in that: A dust-proof net (13) is fixedly connected to the bottom of the heat dissipation holes (11). A fourth copper pipe (15) is fixedly connected to one side of the micro water pump (6). One end of the fourth copper pipe (15) is fixedly connected to one end of the first elbow pipe (4).