Large-scale data center power supply system wiring using solar energy
By installing a heat dissipation mechanism inside the busbar trunking, and utilizing the combination of fins and cooling fans, the heat problem caused by high current in the busbar trunking is solved, achieving efficient heat dissipation and structural stability, extending service life and reducing safety risks.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- TBEA INT ENG CO LTD
- Filing Date
- 2025-03-20
- Publication Date
- 2026-04-28
AI Technical Summary
When large data centers use solar power, the busbars generate a lot of heat due to the large current, which affects performance and lifespan, and may even cause safety accidents.
A heat dissipation mechanism is installed inside the busbar trunking, including side slots, inner partitions, fins, double-bend connecting plates, perforated plates, insulating base plates, ring frames, and cooling fans. Through the cooperation of the fins and cooling fans, heat can be effectively dissipated.
It effectively solves the heat dissipation problem of busbar trunking, improves the heat dissipation effect and structural stability of busbar trunking, extends the service life of busbar trunking and reduces safety hazards.
Smart Images

Figure CN224177883U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of wiring technology for power supply systems of large data centers, and in particular to a wiring method for power supply systems of large data centers utilizing solar energy. Background Technology
[0002] Large-scale data centers refer to large-scale locations used to centrally house computing, storage, and network equipment. They typically possess a large number of servers, storage devices, and network infrastructure to meet the needs of large-scale data storage, processing, and transmission. With the development trend of solar power generation, large-scale data centers are increasingly choosing to utilize solar power for their power supply.
[0003] Currently, when large data centers use solar power systems for power supply, busbars are typically used as power supply connections between the solar power system and the data center's power distribution terminals. However, large data centers have dense equipment and high power density, and the busbars carry a large current, which generates a lot of heat, causing the busbar temperature to rise, affecting its performance and lifespan, and may even lead to safety accidents. Therefore, we propose a wiring method for large data center power supply systems that utilizes solar energy. Utility Model Content
[0004] The main objective of this invention is to provide a wiring method for a large data center power supply system utilizing solar energy. By improving the busbar trunking used for wiring the solar power generation system and the large data center power supply system and incorporating a heat dissipation mechanism, when the busbar trunking is used for wiring the solar power generation system and the large data center power supply system, the heat inside the busbar trunking can be discharged outwards from the screen plate and double-bend connecting plate of the heat dissipation mechanism along the recessed groove of the inner partition to the fins. At this time, the cooling fan can blow away the heat between the fins. This allows the auxiliary busbar trunking to have a better heat dissipation effect when used for wiring in a large data center power supply system, effectively solving the problems in the background art.
[0005] To achieve the above objectives, the technical solution adopted by this utility model is as follows:
[0006] A wiring diagram for a large data center power supply system utilizing solar energy includes a wiring busbar and a heat dissipation mechanism. The heat dissipation mechanism includes a side slot, an inner partition, fins, a double-bend connecting plate, a perforated plate, an insulating base plate, a ring frame, a cooling fan, and an outer limiting plate. The wiring busbar has a side slot on its side plate, and an inner partition plate with an inner shielding the side slot is inserted into the wiring busbar. The surface of the inner partition plate has fins protruding for passing through the side slot, and the surface of the inner partition plate between the fins has a through groove. The side plate surface of the inner partition plate away from the fins is connected to the perforated plate by a double-bend connecting plate. An insulating base plate is fixed to the outer surface of the wiring busbar on the side of the through groove, and a ring frame is fixed between the base plates of the insulating base plate. A cooling fan is installed on the surface of the ring frame, and an outer limiting plate is fixed to the outer surface of the base plate of the insulating base plate to guide the airflow towards the fins.
[0007] Furthermore, the double-bend connecting plate has C-shaped bends on both sides, and a through-plate groove is provided on the surface of the middle plate of the double-bend connecting plate.
[0008] By adopting the above technical solution, the double-bend connecting plate can connect the screen plate and the inner partition plate respectively with the C-shaped bending plate, and the heat in the wiring busbar groove can be discharged outward from the through groove of the double-bend connecting plate along the concave through groove.
[0009] Furthermore, the surface of the perforated plate has protruding feet, and the feet of the perforated plate are fixed to the outer end of the double-bend connecting plate. The surface of the perforated plate is provided with ventilation holes.
[0010] By adopting the above technical solution, the perforated plate is fixed to the outer end of the double-bend connecting plate by the plate feet. At the same time, the venting perforations of the perforated plate allow for ventilation positions on its own plate body, ensuring that the heat in the wiring busbar groove can be discharged outward from the perforated plate along the through-plate groove and the concave through-groove.
[0011] Furthermore, an air vent is provided between the seat body of the insulating seat plate and the plate body of the outer limiting plate for air passage, and the two side seats of the insulating seat plate are bonded and fixed to the plate body of the outer limiting plate.
[0012] By adopting the above technical solution, after the outer limiting plate is fixed on the outside of the insulating base plate, the air seat between the insulating base plate and the outer limiting plate can be blown stably between the fins by the air force of the cooling fan.
[0013] Furthermore, the surface of the ring frame is provided with mounting holes, and the mounting holes of the ring frame are locked to the outer casing of the cooling fan by bolts;
[0014] By adopting the above technical solution, the mounting holes of the ring frame and the outer casing of the cooling fan can be connected by screws.
[0015] Furthermore, the fin body surface is recessed with grooves, and the fin body is arranged on the surface of the inner partition plate;
[0016] By adopting the above technical solution, grooves are set on the surface of the fins as ribs to improve the strength of the fins, and the inner partition with more fins can help the heat in the wiring busbar groove to dissipate outward.
[0017] Compared with the prior art, the present invention has the following beneficial effects:
[0018] This utility model improves the busbar trunking used for connecting solar power generation systems and large data center power supply systems by adding a heat dissipation mechanism. When the busbar trunking is used for connecting solar power generation systems and large data center power supply systems, the heat inside the busbar trunking can be discharged outward from the screen plate and double-bend connecting plate of the heat dissipation mechanism along the concave groove of the inner partition to the fins. At this time, the cooling fan can blow away the heat between the fins, thus enabling the busbar trunking to have a better heat dissipation effect when used for connecting to large data center power supply systems.
[0019] Furthermore, the internal baffle, double-bend connecting plate, and perforated plate are interconnected through ingenious design, which not only ensures the stability of the structure but also facilitates the conduction and dissipation of heat. At the same time, the grooves on the fin surface not only increase the heat dissipation area but also serve as ribs to enhance the strength of the fins. Attached Figure Description
[0020] Figure 1 This is a schematic diagram of the overall wiring structure of a large data center power supply system utilizing solar energy, according to this utility model.
[0021] Figure 2 This is an exploded view of the heat dissipation mechanism for wiring in a large data center power supply system utilizing solar energy, according to this utility model.
[0022] Figure 3 This is a schematic diagram showing the internal partition, double-bend connecting plate, and perforated plate of a large data center power supply system utilizing solar energy, according to this utility model.
[0023] In the diagram: 1. Busbar trunking; 2. Heat dissipation mechanism; 3. Side slot; 4. Inner partition; 5. Fins; 6. Recessed through slot; 7. Double-bend connecting plate; 8. Perforated plate; 9. Insulating base plate; 10. Ring frame; 11. Heat dissipation fan; 12. Outer limiting plate; 13. Through slot. Detailed Implementation
[0024] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.
[0025] like Figure 1-3As shown, a wiring diagram for a large data center power supply system utilizing solar energy includes a wiring busbar 1 and a heat dissipation mechanism 2. The heat dissipation mechanism 2 includes a side slot 3, an inner partition 4, fins 5, a double-bend connecting plate 7, a perforated plate 8, an insulating base plate 9, a ring frame 10, a cooling fan 11, and an outer limiting plate 12. The wiring busbar 1 has a side slot 3 on its side plate, and an inner partition 4 with an inner shielding side slot 3 is inserted into the wiring busbar 1. The surface of the inner partition 4 has protrusions for passage. The fins 5 with side slots 3 have recessed grooves 6 through the inner partition 4 between the fins 5. The inner partition 4 is connected to a screen plate 8 on the side away from the fins 5 by a double-bend connecting plate 7. An insulating seat plate 9 is fixed on the outer surface of the wiring busbar groove 1 on the side of the recessed groove 6. A ring frame 10 is fixed between the seats of the insulating seat plate 9. A cooling fan 11 is installed on the surface of the ring frame 10. An outer limiting plate 12 for guiding the airflow to the fins 5 is fixed on the outer surface of the insulating seat plate 9.
[0026] The double-bend connecting plate 7 has C-shaped bends on both sides, and the middle plate of the double-bend connecting plate 7 has a through-plate groove 13.
[0027] By adopting the above technical solution, the double-bend connecting plate 7 can connect the screen plate 8 and the inner partition plate 4 respectively with the C-shaped bending plate, and the heat in the wiring busbar groove 1 can be discharged outward from the through-plate groove 13 of the double-bend connecting plate 7 along the concave through-groove 6.
[0028] The screen plate 8 has raised feet on its surface, and the feet of the screen plate 8 are fixed to the outer end of the double-bend connecting plate 7. The screen plate 8 has ventilation holes on its surface.
[0029] By adopting the above technical solution, the perforated plate 8 is fixed to the outer end of the double-bend connecting plate 7 with the plate feet for connection. At the same time, the venting perforations of the perforated plate 8 allow for ventilation positions on its own plate body, ensuring that the heat in the wiring busbar trough 1 can be discharged outward from the perforated plate 8 along the through-plate groove 13 and the concave through-groove 6.
[0030] Wherein, an air seat opening for air passage is reserved between the seat body of the insulating seat plate 9 and the plate body of the outer limiting plate 12, and the double-sided seat plates of the insulating seat plate 9 are bonded and fixed to the plate body of the outer limiting plate 12.
[0031] By adopting the above technical solution, after the outer limiting plate 12 is fixed on the outside of the insulating base plate 9, the air seat between the insulating base plate 9 and the outer limiting plate 12 can be blown stably between the fins 5 by the air force of the cooling fan 11.
[0032] The ring frame 10 has mounting holes on its surface, and the mounting holes of the ring frame 10 are locked to the outer casing of the cooling fan 11 by bolts.
[0033] By adopting the above technical solution, the mounting holes of the ring frame 10 and the outer casing of the cooling fan 11 can be connected by screws.
[0034] The fin 5 has a recessed groove on its surface, and the fins 5 are arranged on the surface of the inner partition 4.
[0035] By adopting the above technical solution, grooves are provided on the surface of the fin 5 as rib grooves to improve the strength of the fin 5, and the inner partition 4 with more fins 5 can help the heat in the wiring busbar groove 1 to dissipate outward.
[0036] It should be noted that this utility model is a wiring diagram for a large data center power supply system utilizing solar energy. When the solar power generation system is connected to the busbar 1 used for wiring the large data center power supply system, a side slot 3 of the heat dissipation mechanism 2 is provided at the wiring busbar 1. Then, the inner partition 4 is bolted into the wiring busbar 1. At the same time, the double-bend connecting plate 7 and the perforated plate 8 of the inner partition 4 can remain inside the wiring busbar 1, while the fins 5 on the surface of the inner partition 4 can pass through the cavity of the side slot 3. Meanwhile, the insulating base plate 9 can be glued and fixed to the connection. Outside the plate of the busbar 1, the frame 10 of the insulating base plate 9 can be fitted with a cooling fan 11 to connect to an external controllable power supply. When the busbar 1 is used for wiring between the solar power generation system and the power supply system of the large data center and generates heat, the heat in the busbar 11 can be discharged outward from the screen plate 8 and the double-bend connecting plate 7 along the recessed groove 6 of the inner partition plate 4 to the fins 5. At this time, the cooling fan 11 can blow away the heat between the fins 5, thus enabling the busbar 1 to have a better heat dissipation effect when used for wiring in the power supply system of the large data center.
[0037] It should be noted that this utility model is a wiring diagram for a large data center power supply system utilizing solar energy. All components in this utility model are known to those skilled in the art, and their structure and principles can be learned by those skilled in the art through technical manuals or conventional experimental methods.
[0038] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claims. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. A wiring system for a large data center power supply system utilizing solar energy, comprising a wiring busbar (1), characterized in that: It also includes a heat dissipation mechanism (2), which includes a side slot (3), an inner partition (4), fins (5), a double-bend connecting plate (7), a perforated plate (8), an insulating base plate (9), a ring frame (10), a heat dissipation fan (11), and an outer limiting plate (12). The side plate of the wiring busbar groove (1) has a side slot (3), and the inner partition (4) with the inner side slot (3) is inserted into the wiring busbar groove (1). The inner partition (4) has fins (5) protruding from its surface for passing through the side slot (3), and the fins (5) The inner partition (4) between the fins (5) has a through groove (6) through it. The inner partition (4) is connected to a screen plate (8) by a double-bend connecting plate (7) on the side away from the fins (5). An insulating seat plate (9) is fixed on the outer surface of the wiring busbar groove (1) on the side of the through groove (6). A ring frame (10) is fixed between the seats of the insulating seat plate (9). A cooling fan (11) is installed on the surface of the ring frame (10). An outer limiting plate (12) for guiding the airflow to the fins (5) is fixed on the outer surface of the insulating seat plate (9).
2. The wiring diagram of a large data center power supply system utilizing solar energy according to claim 1, characterized in that: The double-bend connecting plate (7) has C-shaped bends on both sides, and a through-plate groove (13) is provided on the surface of the middle plate of the double-bend connecting plate (7).
3. The wiring diagram of a large data center power supply system utilizing solar energy according to claim 1, characterized in that: The sieve plate (8) has raised feet on its surface, and the feet of the sieve plate (8) are fixed to the outer end of the double-bend connecting plate (7). The sieve plate (8) has ventilation holes on its surface.
4. The wiring diagram of a large data center power supply system utilizing solar energy according to claim 1, characterized in that: The insulating seat plate (9) has a pre-reserved air seat opening between its seat body and the outer limiting plate (12), and the two side seats of the insulating seat plate (9) are bonded and fixed to the outer limiting plate (12).
5. The wiring diagram of a large data center power supply system utilizing solar energy according to claim 1, characterized in that: The frame (10) has mounting holes on its surface, and the mounting holes of the frame (10) are locked to the outer shell of the cooling fan (11) by bolts.
6. The wiring diagram of a large data center power supply system utilizing solar energy according to claim 1, characterized in that: The fins (5) have grooves recessed on their surfaces, and the fins (5) are arranged on the surface of the inner partition (4).