A new moisture-proof power distribution cabinet device

By combining intelligent analysis and processing components with electric telescopic poles, along with cooling fans and semiconductor temperature plates, precise management and efficient moisture prevention of the internal environment of the power distribution cabinet are achieved, solving the problem of poor moisture prevention in extreme environments and improving management efficiency and convenience.

CN224288915UActive Publication Date: 2026-05-26NANTONG YISHUNPENG ELECTRIC CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
NANTONG YISHUNPENG ELECTRIC CO LTD
Filing Date
2025-06-03
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

Existing new moisture-proof distribution cabinet devices have limited moisture-proof effects in environments with extreme humidity or large temperature variations, and cannot effectively guarantee the dryness of the inside of the distribution cabinet.

Method used

It employs intelligent analysis and processing components combined with intelligent control of electric telescopic rods and baffles. By monitoring the environment in real time and automatically adjusting, it combines cooling fans and semiconductor temperature plates for precise moisture management, including heat dissipation, dehumidification, and air condensation treatment.

Benefits of technology

It enables precise management and efficient moisture prevention of the internal environment of the power distribution cabinet, simplifies the maintenance process, improves management efficiency and convenience, and ensures that it remains dry even in extreme environments.

✦ Generated by Eureka AI based on patent content.

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Abstract

This utility model discloses a novel moisture-proof power distribution cabinet device, relating to the field of power distribution cabinet technology. The device includes a power distribution cabinet, with an intelligent analysis and processing component installed on one side for monitoring the cabinet's working environment. A moisture-proof component for ventilation is installed on the inner wall of the cabinet, including a cooling fan. A collecting pipe is installed on one side of the cooling fan, and an air duct is installed on one side of the collecting pipe. A dehumidification pipe is provided on one side of the air duct. The dehumidification pipe is divided into an air inlet, an upward air duct, and a dehumidification channel. A semiconductor temperature plate and an inclined plate are installed on the inner wall of the dehumidification channel. This utility model achieves precise management and efficient moisture-proofing of the internal environment of the power distribution cabinet through real-time monitoring and automatic adjustment of the intelligent analysis and processing component, combined with intelligent control of the electric telescopic rod and baffle.
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Description

Technical Field

[0001] This utility model relates to the field of power distribution cabinet technology, specifically a novel moisture-proof power distribution cabinet device. Background Technology

[0002] The new moisture-proof power distribution cabinet uses advanced moisture-proof technology and materials, which can significantly reduce the humidity inside the cabinet and ensure the stable operation of power equipment.

[0003] Existing new moisture-proof distribution cabinet devices may rely mainly on simple desiccants, ventilation or heating devices for moisture protection. These methods have limited effectiveness in environments with extreme humidity or large temperature variations and cannot effectively guarantee the dryness inside the distribution cabinet. Utility Model Content

[0004] This invention provides a novel moisture-proof distribution cabinet device with the advantage of intelligent moisture protection, which solves the problem that existing moisture-proof distribution cabinet devices may mainly rely on simple desiccants, ventilation or heating devices. These methods have limited effectiveness in environments with extreme humidity or large temperature changes and cannot effectively ensure the dryness of the inside of the distribution cabinet.

[0005] To achieve intelligent moisture prevention, this utility model provides the following technical solution: A novel moisture-proof power distribution cabinet device, comprising a power distribution cabinet, wherein an intelligent analysis and processing component for monitoring the working environment of the power distribution cabinet is installed on one side of the power distribution cabinet, and a moisture-proof component for moisture prevention and ventilation is installed on the inner wall of the power distribution cabinet, wherein: the moisture-proof component includes a cooling fan, a collecting pipe is installed on one side of the cooling fan, an air duct is installed on one side of the collecting pipe, a dehumidification pipe is provided on one side of the air duct, the dehumidification pipe is divided into an air inlet, an upward air duct and a dehumidification channel, a semiconductor temperature plate is installed on the inner wall of the dehumidification channel, and an inclined plate is installed on the inner wall of the dehumidification channel.

[0006] As a preferred embodiment of this utility model, the intelligent analysis and processing component includes a processor, which is installed on one side of the power distribution cabinet. A controller is provided on one side of the processor, and a temperature sensor is provided on one side of the controller. The processor is connected to an electric telescopic rod, and a baffle is connected to one end of the electric telescopic rod.

[0007] As a preferred embodiment of this utility model, the top surface of the inner wall of the power distribution cabinet is fixedly connected to the top surface of the cooling fan, and the air duct of the cooling fan is connected to a manifold.

[0008] As a preferred embodiment of this utility model, air ducts are symmetrically installed on both sides of the collecting pipe, the inner wall of the air duct is in communication with the inner wall of the collecting pipe, and a baffle for closing and opening the air duct connection is installed at the connection between the collecting pipe and the air duct.

[0009] As a preferred technical solution of this utility model, the electric telescopic rod is used to drive the baffle to open and close. The air inlet and the upward air duct are interconnected. The upward air duct and the dehumidification channel are interconnected. A number of semiconductor temperature plates are installed at equal intervals on the inner wall of the dehumidification channel. The semiconductor temperature plates are fixedly installed on the inner wall of the dehumidification channel at a 30° angle.

[0010] As a preferred embodiment of this utility model, the bottom surface of the inclined plate is fixedly connected to the bottom surface of the inner wall of the dehumidification channel, and the two sides of the inclined plate are fixedly connected to the two sides of the inner wall of the dehumidification channel. The inclined plate is used to guide the liquid falling from the semiconductor temperature plate to the outside.

[0011] In a preferred embodiment of this invention, the processor and the controller are electrically connected to each other, the temperature sensor and the processor are electrically connected to each other, the electric telescopic rod and the controller are electrically connected to each other, and the cooling fan and the controller are electrically connected to each other.

[0012] Compared with the prior art, this utility model provides a novel moisture-proof power distribution cabinet device, which has the following beneficial effects:

[0013] 1. This new type of moisture-proof distribution cabinet device achieves precise management and efficient moisture prevention of the internal environment of the distribution cabinet through real-time monitoring and automatic adjustment of intelligent analysis and processing components, combined with intelligent control of electric telescopic rods and baffles.

[0014] 2. Through real-time monitoring and automatic adjustment of intelligent analysis and processing components, combined with intelligent control of electric telescopic rods and baffles, precise management and efficient moisture prevention of the internal environment of the power distribution cabinet are achieved.

[0015] 3. The inclined plate design simplifies the maintenance process, while the integrated management of intelligent analysis and processing components improves management efficiency and convenience. Intelligent control of the electric telescopic rod and baffle enables precise regulation of the condensation and moisture-proofing process for outside air entering the distribution cabinet. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of the external structure of this utility model;

[0017] Figure 2 This is a schematic diagram of the external structure of this utility model from another angle;

[0018] Figure 3 This is a schematic diagram of the moisture-proof component structure of this utility model;

[0019] Figure 4 This is a schematic diagram of the internal structure of the dehumidification pipe of this utility model;

[0020] Figure 5 This utility model provides Figure 4 Enlarged schematic diagram of part A in the middle.

[0021] In the diagram: 1. Distribution cabinet; 2. Intelligent analysis and processing component; 20. Processor; 21. Controller; 22. Temperature sensor; 23. Electric telescopic rod; 24. Baffle; 3. Moisture-proof component; 300. Cooling fan; 301. Manifold; 302. Air duct; 303. Dehumidification duct; 304. Air inlet; 305. Upward air duct; 306. Dehumidification channel; 307. Semiconductor temperature plate; 308. Inclined plate. 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. Example 1

[0023] Please see Figures 1-2 This utility model discloses a novel moisture-proof power distribution cabinet device, including a power distribution cabinet 1. An intelligent analysis and processing component 2 for monitoring the working environment of the power distribution cabinet is installed on one side of the power distribution cabinet 1. A moisture-proof component 3 for moisture-proof ventilation is installed on the inner wall of the power distribution cabinet 1. The moisture-proof component 3 includes a cooling fan 300. A manifold 301 is installed on one side of the cooling fan 300. An air duct 302 is installed on one side of the manifold 301. A dehumidification pipe 303 is provided on one side of the air duct 302. The dehumidification pipe 303 is divided into an air inlet 304, an upward air duct 305, and a dehumidification channel 306. A semiconductor temperature plate 307 is installed on the inner wall of the dehumidification channel 306. An inclined plate 308 is installed on the inner wall of the dehumidification channel 306.

[0024] The intelligent analysis and processing component 2 includes a processor 20, which is installed on one side of the power distribution cabinet 1. A controller 21 is provided on one side of the processor 20, and a temperature sensor 22 is provided on one side of the controller 21. The processor 20 is connected to an electric telescopic rod 23, and a baffle 24 is connected to one end of the electric telescopic rod 23.

[0025] The top surface of the inner wall of the distribution cabinet 1 is fixedly connected to the top surface of the cooling fan 300, and the air duct of the cooling fan 300 is connected to the manifold 301.

[0026] When the power distribution cabinet 1 starts working, the temperature sensor 22 in the intelligent analysis and processing component 2 begins to monitor the working environment temperature inside the power distribution cabinet in real time. Simultaneously, the processor 20 also considers the working status of the semiconductor temperature plate 307 and its resulting heating and cooling effects. Based on the data from the temperature sensor 22 and the heating and cooling status of the semiconductor temperature plate 307, the processor 20 determines whether condensation and moisture-proofing treatment using outside air is necessary. When ventilation and moisture-proofing are required, the processor 20 sends a start signal to the cooling fan 300 via the controller 21, and simultaneously controls the electric telescopic rod 23 to move the baffle 24 to open the air inlet 304 suitable for condensation and moisture-proofing. After the cooling fan 300 starts, it draws air from inside the power distribution cabinet or from outside air entering through the air inlet 304 into the air duct. The air first enters the air duct 302 through the manifold 301, and then enters the upward-moving air duct 305 through the air inlet 304 of the dehumidification pipe 303. Example 2

[0027] Based on the above embodiment 1, please refer to Figures 3-5 A duct pipe 302 is symmetrically installed on both sides of the manifold 301. The inner wall of the duct pipe 302 is connected to the inner wall of the manifold 301. A baffle 24 for closing and opening the air duct connection is installed at the connection between the manifold 301 and the duct pipe 302.

[0028] The electric telescopic rod 23 is used to drive the baffle 24 to open and close. The air inlet 304 and the upper air duct 305 are interconnected. The upper air duct 305 and the dehumidification channel 306 are interconnected. Several semiconductor temperature plates 307 are installed at equal intervals on the inner wall of the dehumidification channel 306. The semiconductor temperature plates 307 are fixedly installed on the inner wall of the dehumidification channel 306 at a 30° angle.

[0029] The bottom surface of the inclined plate 308 is fixedly connected to the bottom surface of the inner wall of the dehumidification channel 306, and the two sides of the inclined plate 308 are fixedly connected to the two sides of the inner wall of the dehumidification channel 306. The inclined plate 308 is used to guide the liquid falling from the semiconductor temperature plate 307 to the outside.

[0030] The processor 20 and the controller 21 are electrically connected to each other, the temperature sensor 22 and the processor 20 are electrically connected to each other, the electric telescopic rod 23 and the controller 21 are electrically connected to each other, and the cooling fan 300 and the controller 21 are electrically connected to each other.

[0031] When the processor 20 determines that the internal environment of the power distribution cabinet has reached a preset safe range, it shuts down the cooling fan 300 and the semiconductor temperature plate 307 via the controller 21. Simultaneously, the processor 20 controls the electric telescopic rod 23 to move the baffle 24 to close the air inlet 304, preventing external moisture from entering the power distribution cabinet unnecessarily. When the power distribution cabinet is not in operation, the intelligent analysis and processing component 2 ensures that components such as the cooling fan 300 and the semiconductor temperature plate 307 are turned off via the controller 21, and closes the air duct via the electric telescopic rod 23 and the baffle 24, achieving energy saving and protection.

[0032] The working principle and usage process of this utility model are as follows: When the power distribution cabinet 1 starts working, the temperature sensor 22 in the intelligent analysis and processing component 2 begins to monitor the working environment temperature inside the power distribution cabinet in real time. At the same time, the processor 20 also considers the working state of the semiconductor temperature plate 307 and the resulting heating and cooling effects.

[0033] Intelligent adjustment and ventilation: The processor 20 determines whether condensation and moisture prevention treatment is needed by allowing outside air to pass through, based on the data from the temperature sensor 22 and the hot / cold state of the semiconductor temperature plate 307. When ventilation and moisture prevention are required, the processor 20 sends a start signal to the cooling fan 300 through the controller 21, and at the same time controls the electric telescopic rod 23 to move the baffle 24 to open the air inlet 304 suitable for condensation and moisture prevention.

[0034] Air dehumidification: After the cooling fan 300 starts, it draws air from inside the distribution cabinet or from the outside through the air inlet 304 into the air duct. The air first enters the air duct 302 through the manifold 301, and then enters the upward air duct 305 through the air inlet 304 of the dehumidification pipe 303. Within the upward air duct 305 and the dehumidification channel 306, the semiconductor temperature plate 307 performs cooling or heating operations according to the instructions of the processor 20 to dehumidify the air. The condensed moisture is guided to the outside along the inclined plate 308.

[0035] Intelligent enclosure: When the processor 20 determines that the internal environment of the power distribution cabinet has reached the preset safe range, it shuts down the cooling fan 300 and the semiconductor temperature plate 307 via the controller 21. At the same time, the processor 20 controls the electric telescopic rod 23 to drive the baffle 24 to close the air inlet 304 to prevent external moisture from entering the power distribution cabinet unnecessarily.

[0036] Energy saving and protection: When the power distribution cabinet is not in operation, the intelligent analysis and processing component 2 ensures that components such as the cooling fan 300 and the semiconductor temperature plate 307 are in the off state through the controller 21, and closes the air duct through the electric telescopic rod 23 and the baffle 24 to achieve energy saving and protection.

Claims

1. A novel moisture-proof power distribution cabinet device, comprising a power distribution cabinet (1), a side of the power distribution cabinet (1) is provided with an intelligent analysis and processing assembly (2) for monitoring the working environment of the power distribution cabinet, characterized in that: The inner wall of the distribution cabinet (1) is equipped with a moisture-proof component (3) for moisture prevention and ventilation, wherein: The moisture-proof component (3) includes a cooling fan (300), a manifold (301) is installed on one side of the cooling fan (300), an air duct (302) is installed on one side of the manifold (301), a dehumidification pipe (303) is provided on one side of the air duct (302), the dehumidification pipe (303) is divided into an air inlet (304), an upward air duct (305) and a dehumidification channel (306), a semiconductor temperature plate (307) is installed on the inner wall of the dehumidification channel (306), and an inclined plate (308) is installed on the inner wall of the dehumidification channel (306).

2. The novel moisture-proof power distribution cabinet device according to claim 1, characterized in that: The intelligent analysis and processing component (2) includes a processor (20), which is installed on one side of the power distribution cabinet (1). A controller (21) is provided on one side of the processor (20), and a temperature sensor (22) is provided on one side of the controller (21). The processor (20) is connected to an electric telescopic rod (23), and a baffle (24) is connected to one end of the electric telescopic rod (23).

3. The novel moisture-proof distribution cabinet device according to claim 1, characterized in that: The top surface of the inner wall of the power distribution cabinet (1) is fixedly connected to the top surface of the cooling fan (300), and the air duct of the cooling fan (300) is connected to a manifold (301).

4. The novel moisture-proof power distribution cabinet device according to claim 1, characterized in that: The two sides of the collecting pipe (301) are symmetrically equipped with air duct pipes (302). The inner wall of the air duct pipe (302) is in communication with the inner wall of the collecting pipe (301). A baffle (24) for closing and opening the air duct communication is installed at the connection between the collecting pipe (301) and the air duct pipe (302).

5. A novel moisture-proof power distribution cabinet device according to claim 2, characterized in that: The electric telescopic rod (23) is used to drive the baffle (24) to open and close. The air inlet (304) and the upper air duct (305) are interconnected. The upper air duct (305) and the dehumidification channel (306) are interconnected. Several semiconductor temperature plates (307) are installed at equal intervals on the inner wall of the dehumidification channel (306). The semiconductor temperature plates (307) are fixedly installed at 30° on the inner wall of the dehumidification channel (306).

6. The novel moisture-proof power distribution cabinet device according to claim 1, characterized in that: The bottom surface of the inclined plate (308) is fixedly connected to the bottom surface of the inner wall of the dehumidification channel (306), and the two sides of the inclined plate (308) are fixedly connected to the two sides of the inner wall of the dehumidification channel (306). The inclined plate (308) is used to guide the liquid falling from the semiconductor temperature plate (307) to the outside.

7. A novel moisture-proof power distribution cabinet device according to claim 2, characterized in that: The processor (20) and the controller (21) are electrically connected to each other, the temperature sensor (22) and the processor (20) are electrically connected to each other, the electric telescopic rod (23) and the controller (21) are electrically connected to each other, and the cooling fan (300) and the controller (21) are electrically connected to each other.