Intelligent lighting linkage control equipment for power plant

By combining air cooling and water cooling, the problem of insufficient heat dissipation in the intelligent lighting linkage control equipment of power plants is solved, achieving efficient heat dissipation and stable equipment operation, improving control accuracy and response speed, and providing physical protection.

CN224205494UActive Publication Date: 2026-05-05SHENHUA GUOHUA ZHOUSHAN POWER GENERATION CO LTD +1
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHENHUA GUOHUA ZHOUSHAN POWER GENERATION CO LTD
Filing Date
2025-05-28
Publication Date
2026-05-05

AI Technical Summary

Technical Problem

Existing smart lighting linkage control equipment for power plants has deficiencies in heat dissipation design, causing the internal temperature of the equipment to rise rapidly, affecting control accuracy and response speed. Furthermore, the existing heat dissipation methods are singular and ineffective.

Method used

It adopts a heat dissipation method that combines air cooling and water cooling. The motor drives the gear to rotate the fan blades for air cooling, and the heat is transferred to the coolant through the heat absorption plate and the serpentine tube. The coolant circulates in the serpentine tube and enters the refrigerator for cooling. It combines semiconductor cooling chip for efficient heat dissipation.

Benefits of technology

It achieves efficient heat dissipation, ensuring stable operation of the equipment under high load, improving control accuracy and response speed, while providing physical protection to prevent equipment damage.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to the technical field of lighting linkage control equipment, and particularly relates to intelligent lighting linkage control equipment for a power plant, which comprises a control equipment body. The motor drives the first gear to rotate through the rotating rod, the first gear drives the fan blades to rotate through the second gear to dissipate heat of electronic components in the control equipment body, and the first conveying pump conveys cooling liquid in the water tank into the coiled pipe. Heat generated in the operation process of electronic elements in the control equipment body can be absorbed by the heat absorption plate and transmitted to the cooling liquid in the coiled pipe, the cooling liquid continuously absorbs the heat transmitted by the heat absorption plate in the flowing process in the coiled pipe, the cooling liquid with the increased temperature enters the refrigerator for refrigeration under the action of the second conveying pump, and the cooling effect is improved. Low-temperature cooling liquid cooled by the refrigerator enters the water tank through the connecting pipe, the two heat dissipation modes of air cooling and water cooling are matched with each other, the advantages of the two heat dissipation modes are fully exerted, and the heat dissipation effect is improved.
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Description

Technical Field

[0001] This utility model relates to the technical field of lighting linkage control equipment, specifically a smart lighting linkage control equipment for power plants. Background Technology

[0002] In the operation system of power plants, intelligent lighting linkage control equipment plays a crucial role. It is responsible for the precise control of various lighting facilities to ensure that different areas of the power plant can obtain appropriate and efficient lighting under different operating conditions, providing reliable visual support for key tasks such as daily production, equipment maintenance, and safety inspections of the power plant.

[0003] However, current smart lighting control equipment for power plants suffers from significant deficiencies in heat dissipation design, severely restricting stable operation and lifespan. Some control devices lack dedicated heat dissipation structures, relying solely on ventilation holes on the casing for natural cooling. While this method may maintain basic operation under low loads and suitable ambient temperatures, it reveals numerous drawbacks in real-world power plant applications. To achieve centralized management and control of smart lighting systems, power plants typically integrate multiple controllers into a single control box, forming a compact control unit. This dense installation of controllers dramatically increases the number of electronic components within the control box. These components continuously generate heat during operation, causing the box temperature to rise rapidly. Lacking effective heat dissipation methods, heat accumulates within the control box, creating localized high-temperature environments. When exposed to such high temperatures for extended periods, the performance of electronic components gradually declines, and their electrical parameters drift, thereby affecting the control accuracy and response speed of the entire intelligent lighting linkage control equipment. Even if some control equipment is equipped with a heat dissipation structure, its heat dissipation method is often too simple, using only air cooling technology, resulting in poor heat dissipation effect. Therefore, we propose an intelligent lighting linkage control equipment for power plants to solve the above problems. Utility Model Content

[0004] (a) Technical problems to be solved

[0005] To address the shortcomings of existing technologies, this utility model provides a smart lighting linkage control device for power plants, which solves the problems mentioned in the background section.

[0006] (II) Technical Solution

[0007] To achieve the above objectives, this utility model specifically adopts the following technical solution:

[0008] A smart lighting linkage control device for power plants includes a control device body. Two rotating shafts are rotatably connected to the top inner wall of the control device body. Fan blades are welded to the bottom ends of the rotating shafts. Two rectangular blocks are welded to the top of the control device body, and a rotating rod is rotatably connected between the two rectangular blocks. Two first gears are welded to the rotating rod. The top end of the rotating shaft extends out of the control device body and is welded with a second gear. Two U-shaped plates are welded to the bottom of the control device body. A heat-absorbing plate is provided on the control device body, and a serpentine tube is provided at the bottom of the heat-absorbing plate. A water tank is welded to the bottom inner wall of one of the U-shaped plates. A first delivery pump is fixedly connected to the top of the water tank. The inlet pipe of the first delivery pump extends into the water tank. The outlet pipe of the first delivery pump is connected to and fixed to one end of the serpentine pipe. A cooler is welded to the bottom inner wall of the other of the two U-shaped plates. A second delivery pump is fixedly connected to the top of the cooler. The outlet pipe of the second delivery pump extends into the cooler. The inlet pipe of the second delivery pump is connected to and fixed to the other end of the serpentine pipe. A connecting pipe is connected to and fixed between the cooler and the water tank.

[0009] Furthermore, a motor is fixedly connected to one side of one of the two rectangular blocks, and the end of the rotating rod extends outside one of the two rectangular blocks and is fixedly connected to the output shaft of the motor.

[0010] Furthermore, four support rods are fixedly connected to the top of the control device body, and the top of the four support rods is fixedly connected to the same protective plate.

[0011] Furthermore, two switch doors are rotatably connected to the main body of the control device.

[0012] Furthermore, two mounting holes are provided on the top inner wall of the control device body, and bearings are fixedly connected to the inner walls of the mounting holes. The inner side of the inner ring of the bearing is welded to the outer side of the corresponding rotating shaft.

[0013] Furthermore, the refrigerator is equipped with a semiconductor cooling chip, the second gear meshes with the first gear, and multiple heat dissipation holes are provided on both sides of the inner wall of the control device body.

[0014] (III) Beneficial Effects

[0015] Compared with the prior art, this utility model provides a smart lighting linkage control device for power plants, which has the following beneficial effects:

[0016] This invention utilizes a motor that drives a first gear via a rotating rod. The first gear, in turn, drives a fan via a second gear to dissipate heat from the electronic components within the control device. A first delivery pump delivers coolant from the water tank to a serpentine tube. Heat generated by the electronic components during operation is absorbed by a heat-absorbing plate and transferred to the coolant within the serpentine tube. As the coolant flows through the tube, it continuously absorbs heat from the heat-absorbing plate. The heated coolant, under the action of the second delivery pump, enters a chiller for cooling. After being cooled by the chiller, the low-temperature coolant re-enters the water tank through a connecting pipe. By combining air cooling and water cooling methods, the advantages of each are fully utilized, improving the overall heat dissipation effect. Attached Figure Description

[0017] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0018] Figure 2 This is a schematic diagram of the three-dimensional structure of the protective plate of this utility model after it is concealed.

[0019] Figure 3 This is a schematic diagram of the three-dimensional structure of the concealed tilting door of this utility model;

[0020] Figure 4 This is a partial three-dimensional structural diagram of the present invention.

[0021] In the diagram: 1. Control device body; 2. Rotating shaft; 3. Fan blade; 4. Rectangular block; 5. Rotating rod; 6. Motor; 7. First gear; 8. Second gear; 9. Heat dissipation hole; 10. U-shaped plate; 11. Heat absorption plate; 12. Serpentine tube; 13. Water tank; 14. First delivery pump; 15. Refrigerator; 16. Second delivery pump; 17. Connecting pipe; 18. Support rod; 19. Protective plate; 20. Opening and closing door. Detailed Implementation

[0022] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0023] Example

[0024] like Figure 1-4As shown in the figure, an embodiment of the present invention discloses a smart lighting linkage control device for power plants, comprising a control device body 1. Two rotating shafts 2 are rotatably connected to the inner top wall of the control device body 1. Fan blades 3 are welded to the bottom ends of the rotating shafts 2. Two rectangular blocks 4 are welded to the top of the control device body 1, and a rotating rod 5 is rotatably connected between the two rectangular blocks 4. Two first gears 7 are welded to the rotating rod 5. The top end of the rotating shafts 2 extends outside the control device body 1 and is welded with second gears 8. Two spiral plates 10 are welded to the bottom of the control device body 1. A heat-absorbing plate 11 is provided on the control device body 1, and a serpentine tube 12 is provided at the bottom of the heat-absorbing plate 11. A water tank 13 is welded to the bottom inner wall of one of the U-shaped plates 10. A first delivery pump 14 is fixedly connected to the top of the water tank 13. The inlet pipe of the first delivery pump 14 extends into the water tank 13. The outlet pipe of the first delivery pump 14 is connected to and fixed to one end of the serpentine pipe 12. A cooler 15 is welded to the bottom inner wall of the other U-shaped plate 10. A second delivery pump 16 is fixedly connected to the top of the cooler 15. The outlet pipe of the second delivery pump 16 extends into the cooler 15. The inlet pipe of the second delivery pump 16 is connected to and fixed to the other end of the serpentine pipe 12. A connecting pipe 17 is connected and fixed between the cooler 15 and the water tank 13.

[0025] During use, the air cooling and water cooling methods work together to give full play to their respective advantages. The air cooling method has a simple structure and a fast response, and can quickly remove some heat in the early stage of equipment startup. The water cooling method has the characteristics of high heat dissipation efficiency and precise control of local temperature. Through the circulation of coolant in the serpentine tube 12, it can efficiently absorb the heat generated by electronic components and quickly cool it through the cooler 15.

[0026] In use, when the control device body 1 is started, the motor 6, the first delivery pump 14, and the second delivery pump 16 are activated. The motor 6 drives the rotating rod 5 to rotate, the rotating rod 5 drives the first gear 7 to rotate, the first gear 7 drives the meshing second gear 8 to rotate, and the second gear 8 drives the corresponding fan blade 3 to rotate. The rotation of the fan blade 3 dissipates heat from the electronic components inside the control device body 1, which is then discharged through the heat dissipation holes 9. The first delivery pump 14 delivers the coolant from the water tank 13 to the serpentine tube 12. The heat generated by the electronic components inside the control device body 1 during operation is absorbed by the heat absorption plate 11. Because the heat absorption plate 11 is in close contact with the serpentine tube 12, the heat is transferred to the coolant inside the serpentine tube 12. As the coolant flows within the serpentine tube 12, it continuously absorbs the heat transferred from the heat absorption plate 11. The heat transferred causes the coolant's temperature to gradually rise. Under the action of the second delivery pump 16, the coolant flows out from the other end of the serpentine tube 12 and enters the refrigerator 15. The refrigerator 15 is equipped with a semiconductor cooling chip, which uses the Peltier effect for cooling. After being cooled by the refrigerator 15, the low-temperature coolant enters the water tank 13 through the connecting pipe 17. By combining air cooling and water cooling, the advantages of each method are fully utilized. The air cooling method has a simple structure and a fast response, and can quickly remove some heat in the early stage of equipment startup. The water cooling method has the characteristics of high heat dissipation efficiency and precise control of local temperature. Through the circulation of coolant in the serpentine tube 12, the heat generated by electronic components can be efficiently absorbed and quickly cooled by the refrigerator 15.

[0027] In some embodiments, a motor 6 is fixedly connected to one side of one of the two rectangular blocks 4, and the end of the rotating rod 5 extends outside one of the two rectangular blocks 4 and is fixedly connected to the output shaft of the motor 6.

[0028] In some embodiments, four support rods 18 are fixedly connected to the top of the control device body 1, and the same protective plate 19 is fixedly connected to the top of the four support rods 18.

[0029] Various high-altitude operations may occur within power plants, such as equipment installation, maintenance, and cargo hoisting, posing a risk of falling objects. The protective plate 19 provides a physical barrier for the control equipment body 1. When an object falls, the protective plate 19 can withstand a certain impact force, buffering the impact and protecting the equipment from damage, ensuring its normal operation.

[0030] In some embodiments, two switch doors 20 are rotatably connected to the control device body 1.

[0031] In some embodiments, two mounting holes are provided on the top inner wall of the control device body 1, and bearings are fixedly connected to the inner walls of the mounting holes. The inner side of the inner ring of the bearing is welded to the outer side of the corresponding rotating shaft 2.

[0032] Welding makes the bearing and shaft 2 more securely fixed.

[0033] In some embodiments, the cooler 15 is provided with a semiconductor cooling chip, the second gear 8 meshes with the first gear 7, and multiple heat dissipation holes 9 are provided on both sides of the inner wall of the control device body 1.

[0034] Finally, it should be noted that the above description is merely a preferred embodiment of this utility model and is not intended to limit the utility model. Although the utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.

Claims

1. A smart lighting linkage control device for power plants, comprising a control device body (1), characterized in that: Two rotating shafts (2) are rotatably connected to the top inner wall of the control device body (1). A fan blade (3) is welded to the bottom end of the rotating shaft (2). Two rectangular blocks (4) are welded to the top of the control device body (1). A rotating rod (5) is rotatably connected between the two rectangular blocks (4). Two first gears (7) are welded to the rotating rod (5). The top end of the rotating shaft (2) extends to the outside of the control device body (1) and is welded with a second gear (8). Two spiral plates (10) are welded to the bottom of the control device body (1). A heat-absorbing plate (11) is provided on the control device body (1). A serpentine tube (12) is provided at the bottom of the heat-absorbing plate (11). The bottom inner wall of one of the spiral plates (10) A water tank (13) is welded on the top of the water tank (13). A first delivery pump (14) is fixedly connected to the top of the water tank (13). The inlet pipe of the first delivery pump (14) extends into the water tank (13). The outlet pipe of the first delivery pump (14) is connected to and fixed to one end of the serpentine pipe (12). A cooler (15) is welded to the bottom inner wall of the other serpentine plate (10) of the two serpentine plates (10). A second delivery pump (16) is fixedly connected to the top of the cooler (15). The outlet pipe of the second delivery pump (16) extends into the cooler (15). The inlet pipe of the second delivery pump (16) is connected to and fixed to the other end of the serpentine pipe (12). A connecting pipe (17) is connected and fixed between the cooler (15) and the water tank (13).

2. The intelligent lighting linkage control device for power plants according to claim 1, characterized in that: A motor (6) is fixedly connected to one side of one of the two rectangular blocks (4), and the end of the rotating rod (5) extends to the outside of one of the two rectangular blocks (4) and is fixedly connected to the output shaft of the motor (6).

3. The intelligent lighting linkage control device for power plants according to claim 2, characterized in that: The top of the control device body (1) is fixedly connected to four support rods (18), and the top of the four support rods (18) is fixedly connected to the same protective plate (19).

4. The intelligent lighting linkage control device for power plants according to claim 1, characterized in that: Two switch doors (20) are rotatably connected to the main body (1) of the control device.

5. The intelligent lighting linkage control device for power plants according to claim 4, characterized in that: Two mounting holes are provided on the top inner wall of the control device body (1). A bearing is fixedly connected to the inner wall of the mounting hole, and the inner side of the inner ring of the bearing is welded to the outer side of the corresponding rotating shaft (2).

6. The intelligent lighting linkage control device for power plants according to claim 5, characterized in that: The cooler (15) is equipped with a semiconductor cooling chip, the second gear (8) meshes with the first gear (7), and multiple heat dissipation holes (9) are opened on both sides of the inner wall of the control device body (1).