Intelligent heat dissipation and ventilation equipment for high-voltage power distribution cabinet

By setting up auxiliary mechanisms in the intelligent heat dissipation and ventilation equipment of the high-voltage distribution cabinet, the generator generates electricity to power the internal lighting lamps, the problem of single functions of the existing equipment is solved, and efficient energy utilization and cost reduction are achieved.

CN120341737APending Publication Date: 2025-07-18SHANDONG LUYAO CONSTR CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202510655001.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-21
Publication Date
2025-07-18

AI Technical Summary

Technical Problem

The existing high-voltage distribution cabinet intelligent heat dissipation and ventilation equipment has a single function and cannot use the energy generated during the operation of the equipment to provide electricity to the internal lighting, which increases the energy consumption and operation costs of the power system and reduces the energy utilization efficiency.

Method used

The intelligent heat dissipation and ventilation equipment of the high-voltage distribution cabinet is equipped with auxiliary mechanisms, including generators, gears, batteries, charging controllers and discharge controllers. The energy generated by the operation of the equipment is used to generate electrical energy through the generator, stored in the battery, and power the internal lighting through the charging controller and discharge controller.

Benefits of technology

It reduces energy consumption of the power system, improves energy utilization efficiency, reduces operating costs, and realizes intelligent heat dissipation and ventilation functions.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120341737A_ABST
    Figure CN120341737A_ABST
Patent Text Reader

Abstract

The invention discloses intelligent heat dissipation and ventilation equipment for a high-voltage power distribution cabinet, and relates to the technical field of power distribution cabinet equipment, the intelligent heat dissipation and ventilation equipment comprises a power distribution cabinet shell, the power distribution cabinet shell is provided with an equipment body and an auxiliary mechanism, and the auxiliary mechanism comprises a first gear, a generator, a storage battery, a charging controller, a discharging controller, a mounting groove and an illuminating lamp. A second gear is fixedly connected to the input shaft end of the generator in a sleeving mode, a switch button is installed in the installation groove, and by arranging an auxiliary mechanism, the intelligent heat dissipation and ventilation equipment of the high-voltage power distribution cabinet can achieve the heat dissipation and ventilation functions; and the energy generated in the operation process of the equipment can be used for providing electric energy for the illuminating lamp installed in the high-voltage power distribution cabinet, so that the energy consumption of the whole power system is reduced, the utilization efficiency of the energy is improved, and the use effect of the intelligent heat dissipation and ventilation equipment of the high-voltage power distribution cabinet is improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of distribution cabinet equipment, specifically to an intelligent heat dissipation and ventilation device for high-voltage distribution cabinets. Background Technique

[0002] In modern power systems, as a key hub for power distribution and transmission, high-voltage distribution cabinets carry a huge electrical load. However, prolonged high-load operation will generate a large amount of heat inside the cabinets. If heat dissipation and ventilation cannot be carried out in time, it will affect the performance of the electrical equipment inside the distribution cabinets. At this time, in order to ensure the safe and reliable operation of the power system, people generally install an intelligent heat dissipation and ventilation device for high-voltage distribution cabinets on the high-voltage distribution cabinets.

[0003] Existing intelligent heat dissipation and ventilation devices for high-voltage distribution cabinets have the following deficiencies: The intelligent heat dissipation and ventilation device for high-voltage distribution cabinets has a single function and can only achieve the functions of heat dissipation and ventilation. It cannot use the energy generated during the operation of the device to provide electrical energy for the lighting lamps installed inside the high-voltage distribution cabinet. At this time, the lighting lamps need to obtain electrical energy separately from the power grid. This not only increases the energy consumption of the entire power system, thus increasing the operating cost, but also reduces the energy utilization efficiency, that is, reduces the use effect of the intelligent heat dissipation and ventilation device for high-voltage distribution cabinets.

[0004] Therefore, we propose an intelligent heat dissipation and ventilation device for high-voltage distribution cabinets to solve the problems raised in the above background technique. Summary of the Invention

[0005] The purpose of the present invention is to provide an intelligent heat dissipation and ventilation device for high-voltage distribution cabinets. By setting an auxiliary mechanism, the intelligent heat dissipation and ventilation device for high-voltage distribution cabinets can not only achieve the functions of heat dissipation and ventilation, but also use the energy generated during the operation of the device to provide electrical energy for the lighting lamps installed inside the high-voltage distribution cabinet. This not only reduces the energy consumption of the entire power system, but also improves the energy utilization efficiency, that is, improves the use effect of the intelligent heat dissipation and ventilation device for high-voltage distribution cabinets, so as to solve the problems raised in the above background technique.

[0006] To achieve the above purpose, the present invention provides the following technical solution: An intelligent heat dissipation and ventilation device for high-voltage distribution cabinets, including a distribution cabinet housing, and an equipment body and an auxiliary mechanism are arranged on the distribution cabinet housing; The auxiliary mechanism includes a first gear, a generator, a storage battery, a charging controller, a discharging controller, an installation groove, and a lighting lamp. A second gear is fixedly sleeved at the input shaft end of the generator. A switch button is installed inside the installation groove. The teeth of the first gear mesh with the teeth of the second gear.

[0007] Preferably, the device body includes a housing, a cylindrical hole is formed on one side of the housing, a housing cover is installed on the other side of the housing, and a mounting hole is formed on one side of the inner wall of the housing.

[0008] Preferably, a temperature sensor is installed inside the mounting hole, a diversion shell is installed on one side of the inner wall of the housing, a mounting plate is fixed to the bottom of the inner wall of the housing, and a dual-axis motor is installed on the top of the mounting plate.

[0009] Preferably, a mounting rod is installed at one output end of the dual-axis motor, a fan blade is installed at one end of the mounting rod, an auxiliary frame is fixed inside the diversion shell, and a controller body is installed on the front surface of the inner wall of the housing.

[0010] Preferably, the inside of the cylindrical hole is communicated with the inside of the diversion shell, the temperature sensor is electrically connected to the controller body, and the dual-axis motor is electrically connected to the controller body.

[0011] Preferably, the detection end of the temperature sensor movably penetrates the surface of the power distribution cabinet housing, and the air outlet end of the diversion shell movably penetrates the rear surface of the inner wall of the housing.

[0012] Preferably, one output end of the dual-axis motor movably penetrates the outer wall of the diversion shell, the mounting rod is movably sleeved inside the auxiliary frame, and the fan blade is located inside the cylindrical hole.

[0013] Preferably, the inside of the plurality of air outlet holes of the power distribution cabinet housing is communicated with the inside of the cylindrical hole, one side of the housing is fixed to the surface of the power distribution cabinet housing, and the generator is installed on the top of the mounting plate.

[0014] Preferably, the first gear is fixedly sleeved on the other output end of the dual-axis motor, the storage battery is placed in the inner groove of the housing, and the charging controller is installed on one side of the inner wall of the housing.

[0015] Preferably, the discharge controller is installed on one side of the inner wall of the housing, the installation groove is formed on the front surface of the inner wall of the housing, and the lighting lamp is installed on the top of the inner wall of the power distribution cabinet housing.

[0016] Compared with the prior art, the beneficial effects of the present invention are: By setting up auxiliary mechanisms, the present invention can enable the intelligent heat dissipation and ventilation equipment of the high-voltage distribution cabinet to not only realize the heat dissipation and ventilation functions, but also use the energy generated during the operation of the equipment to provide electrical energy for the lighting lamps installed inside the high-voltage distribution cabinet. This not only reduces the energy consumption of the entire power system, but also improves the energy utilization efficiency, that is, improves the use effect of the intelligent heat dissipation and ventilation equipment of the high-voltage distribution cabinet. When the dual-axis motor is started, the cooperation of the started dual-axis motor, the mounting plate and the first gear can be used to drive the second gear to rotate, and then the cooperation of the rotating second gear can be used to make the generator generate electrical energy.

[0017] The present invention then utilizes the cooperation of the generator and the charging controller to process the electric energy generated by the generator and transmit the processed electric energy to the inside of the battery, that is, to safely charge the battery. When the lighting lamp is needed, the shell cover and the mounting groove are first used to press the switch button, and then the pressed switch button and the discharge controller are used to transmit the electric energy inside the battery to the inside of the lighting lamp, so that the lighting lamp emits light. When the lighting lamp is not needed, the switch button can be directly pressed.

[0018] The present invention can perform intelligent heat dissipation and ventilation operations on the high-voltage distribution cabinet by setting the equipment body. When the high-voltage distribution cabinet needs to be intelligently heat-dissipated and ventilated, the dual-axis motor can be started by first utilizing the cooperation of the mounting hole, the shell, the temperature sensor, the controller body and a temperature threshold set in advance. Subsequently, the fan blades can be driven to rotate by utilizing the cooperation of the started dual-axis motor, the mounting plate, the guide shell, the auxiliary frame and the mounting rod. Afterwards, the heat and air inside the distribution cabinet shell can be extracted and transported to the environment by utilizing the cooperation of the rotating fan blades, the cylindrical holes, the guide shell and multiple air outlets on the distribution cabinet shell. When the temperature inside the distribution cabinet shell is within the temperature threshold range set in advance, the fan blades can be stopped by directly utilizing the cooperation of the controller body, the temperature sensor, the dual-axis motor and the mounting rod. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 A three-dimensional diagram of the intelligent heat dissipation and ventilation equipment for a high-voltage power distribution cabinet of the present invention; Figure 2 A partially cutaway perspective view of the intelligent heat dissipation and ventilation equipment for a high-voltage power distribution cabinet according to the present invention; Figure 3 It is a partially cutaway stereoscopic view from an upward angle of the intelligent heat dissipation and ventilation device for a high-voltage power distribution cabinet of the present invention; Figure 4 It is a partially cutaway perspective view of the intelligent heat dissipation and ventilation equipment for a high-voltage power distribution cabinet of the present invention; Figure 5Partial sectional perspective view of the equipment body of the intelligent heat dissipation and ventilation equipment for high-voltage switchgear cabinets of the present invention; Figure 6 Partial structural schematic diagram of the intelligent heat dissipation and ventilation equipment for high-voltage switchgear cabinets of the present invention; Figure 7 Partial perspective view of the intelligent heat dissipation and ventilation equipment for high-voltage switchgear cabinets of the present invention; Figure 8 Perspective view of the equipment body of the intelligent heat dissipation and ventilation equipment for high-voltage switchgear cabinets of the present invention.

[0020] In the figure: 1, switchgear cabinet housing; 2, equipment body; 201, housing; 202, housing cover; 203, cylindrical hole; 204, mounting hole; 205, temperature sensor; 206, diversion housing; 207, mounting plate; 208, biaxial motor; 209, mounting rod; 210, fan blade; 211, auxiliary frame; 212, controller body; 3, auxiliary mechanism; 301, first gear; 302, generator; 303, second gear; 304, storage battery; 305, charging controller; 306, discharging controller; 307, mounting groove; 308, switch button; 309, lighting lamp. Detailed implementation manners

[0021] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0022] Embodiment 1: Please refer to Figures 1-8 As shown, the present invention provides a technical solution: an intelligent heat dissipation and ventilation equipment for high-voltage switchgear cabinets, including a switchgear cabinet housing 1, and an equipment body 2 and an auxiliary mechanism 3 are arranged on the switchgear cabinet housing 1; The auxiliary mechanism 3 includes a first gear 301, a generator 302, a storage battery 304, a charging controller 305, a discharging controller 306, a mounting groove 307, and a lighting lamp 309. A second gear 303 is fixedly sleeved on the input shaft end of the generator 302. A switch button 308 is installed inside the mounting groove 307. The teeth of the first gear 301 mesh with the teeth of the second gear 303. A housing cover 202 is installed on the other side of the housing 201. A dual-axis motor 208 is installed on the top of the mounting plate 207. The generator 302 is installed on the top of the mounting plate 207. The first gear 301 is fixedly sleeved on the other output end of the dual-axis motor 208. The storage battery 304 is placed in the inner groove of the housing 201. The charging controller 305 is installed on one side of the inner wall of the housing 201. The discharging controller 306 is installed on one side of the inner wall of the housing 201. The mounting groove 307 is opened on the front surface of the inner wall of the housing 201. The lighting lamp 309 is installed on the top of the inner wall of the power distribution cabinet housing 1.

[0023] In this embodiment, when the dual-axis motor 208 is started, the started dual-axis motor 208 will drive the first gear 301 to rotate with the cooperation of the mounting plate 207. The rotating first gear 301 will drive the second gear 303 to rotate. At this time, the rotating second gear 303 will cause the generator 302 to generate electric energy. Subsequently, the generator 302 will transmit the generated electric energy to the inside of the charging controller 305. Then, the charging controller 305 will process and regulate the electric energy transmitted to its inside and transmit the processed electric energy to the inside of the storage battery 304, that is, perform a safe charging operation on the storage battery 304. When the dual-axis motor 208 is turned off, the charging operation on the storage battery 304 can be stopped at this time. When the lighting lamp 309 needs to be used, first remove the housing cover 202, and then press the switch button 308 with the cooperation of the mounting groove 307. At this time, the pressed switch button 308 will connect the entire discharging circuit. Then, the discharging controller 306 will transmit the electric energy inside the storage battery 304 to the inside of the lighting lamp 309 according to various preset parameters, causing the lighting lamp 309 to emit light. When the lighting lamp 309 does not need to be used, directly press the switch button 308 to turn it off. At this time, the pressed-off switch button 308 will directly disconnect the discharging circuit, causing the lighting lamp 309 to go out. Then, reset the housing cover 202 to its original position.

[0024] Embodiment 2: According to Figures 1-8As shown in the figure, the device body 2 includes a housing 201. One side of the housing 201 is provided with a cylindrical hole 203. A housing cover 202 is installed on the other side of the housing 201. An installation hole 204 is provided on one side of the inner wall of the housing 201. A temperature sensor 205 is installed inside the installation hole 204. A diversion shell 206 is installed on one side of the inner wall of the housing 201. An installation plate 207 is fixed at the bottom of the inner wall of the housing 201. A dual-axis motor 208 is installed on the top of the installation plate 207. One output end of the dual-axis motor 208 is installed with an installation rod 209. One end of the installation rod 209 is installed with a fan blade 210. An auxiliary frame 211 is fixed inside the diversion shell 206. A controller body 212 is installed on the front surface of the inner wall of the housing 201. The inside of the cylindrical hole 203 is communicated with the inside of the diversion shell 206. The temperature sensor 205 is electrically connected to the controller body 212. The dual-axis motor 208 is electrically connected to the controller body 212. The detection end of the temperature sensor 205 movably penetrates the surface of the power distribution cabinet housing 1. The air outlet end of the diversion shell 206 movably penetrates the rear surface of the inner wall of the housing 201. One output end of the dual-axis motor 208 movably penetrates the outer wall of the diversion shell 206. The installation rod 209 is movably sleeved inside the auxiliary frame 211. The fan blade 210 is located inside the cylindrical hole 203. The inside of the plurality of air outlet holes of the power distribution cabinet housing 1 is communicated with the inside of the cylindrical hole 203. One side of the housing 201 is fixed to the surface of the power distribution cabinet housing 1.

[0025] In this embodiment, when intelligent heat dissipation and ventilation operations are required for the high-voltage power distribution cabinet, the temperature sensor 205 will, under the cooperation of the mounting hole 204 and the housing 201, continuously detect the temperature inside the power distribution cabinet housing 1, and transmit the detected temperature data to the controller body 212 in the form of an electrical signal. The controller body 212 will compare the received temperature data with the pre-set temperature threshold. When the temperature data received by the controller body 212 is within the pre-set temperature threshold range, the controller body 212 will not start the biaxial motor 208. When the temperature data received by the controller body 212 is higher than the pre-set temperature threshold, the controller body 212 will directly start the biaxial motor 208. At this time, the started biaxial motor 208 will drive the mounting rod 209 to rotate under the cooperation of the mounting plate 207, the guide shell 206 and the auxiliary frame 211. The rotating mounting rod 209 will drive the fan blade 210 to rotate. Subsequently, the rotating fan blade 210 will, under the cooperation of the cylindrical hole 203 and multiple air outlet holes on the power distribution cabinet housing 1, extract the heat and air inside the power distribution cabinet housing 1 together and transport them into the interior of the guide shell 206. Then, the air and heat inside the guide shell 206 will be directly transported to the environment. At the same time, multiple air inlet holes on the power distribution cabinet housing 1 will draw the air in the environment into its interior. When the temperature inside the power distribution cabinet housing 1 is within the pre-set temperature threshold range, the controller body 212 will directly turn off the biaxial motor 208. At this time, the turned-off biaxial motor 208 will cause the fan blade 210 to stop rotating. Subsequently, the operation can be carried out according to the above operation steps.

[0026] The effects and working principles achieved by its entire mechanism are as follows: In the preparation stage, first remove the shell cover 202 and open the cabinet door on the power distribution cabinet housing 1. Then, connect the output end of the generator 302 to the input end of the charge controller 305 using a wire. Next, connect the output end of the charge controller 305 to the input end of the storage battery 304 using a wire. After that, connect the output end of the storage battery 304 to the input end of the discharge controller 306 using a wire. Then, connect the output end of the discharge controller 306 to the input end of the lighting lamp 309 using a wire. Then, connect the switch button 308 and the lighting lamp 309 in series in the circuit to control the on / off of the circuit, thereby controlling the lighting and extinguishing of the lighting lamp 309. Then, turn on the charge controller 305 and the discharge controller 306, and set parameters such as the charging current, charging voltage, charging mode, over-discharge protection voltage, discharge current, and recovery voltage according to the actual situation. Then, connect the controller body 212 to an external power supply and turn on the controller body 212 to set the temperature threshold. Finally, reset the shell cover 202 and the cabinet door on the power distribution cabinet housing 1 to their original positions; Intelligent heat dissipation and ventilation stage: When intelligent heat dissipation and ventilation operations need to be performed on the high-voltage switchgear cabinet, the temperature sensor 205 will, in cooperation with the mounting hole 204 and the housing 201, continuously detect the temperature inside the switchgear cabinet housing 1 and transmit the detected temperature data to the controller body 212 in the form of an electrical signal. The controller body 212 will compare the received temperature data with the pre-set temperature threshold. When the temperature data received by the controller body 212 is within the pre-set temperature threshold range, the controller body 212 will not start the dual-axis motor 208. When the temperature data received by the controller body 212 is higher than the pre-set temperature threshold, the controller body 212 will directly start the dual-axis motor 208. At this time, the started dual-axis motor 208 will drive the mounting rod 209 to rotate in cooperation with the mounting plate 207, the guide shell 206, and the auxiliary frame 211. The rotating mounting rod 209 will drive the fan blade 210 to rotate. Subsequently, the rotating fan blade 210 will, in cooperation with the cylindrical hole 203 and multiple air outlet holes on the switchgear cabinet housing 1, extract the heat and air inside the switchgear cabinet housing 1 and transport them into the interior of the guide shell 206. Then, the air and heat inside the guide shell 206 will be directly transported to the environment. At the same time, multiple air inlet holes on the switchgear cabinet housing 1 will draw air from the environment into its interior. When the temperature inside the switchgear cabinet housing 1 is within the pre-set temperature threshold range, the controller body 212 will directly turn off the dual-axis motor 208. At this time, the turned-off dual-axis motor 208 will cause the fan blade 210 to stop rotating. Then, just operate according to the above operation steps; Charging stage: When the dual-axis motor 208 is started, the started dual-axis motor 208 will drive the first gear 301 to rotate in cooperation with the mounting plate 207. The rotating first gear 301 will drive the second gear 303 to rotate. At this time, the rotating second gear 303 will cause the generator 302 to generate electrical energy. Subsequently, the generator 302 will transport the generated electrical energy into the interior of the charging controller 305. Then, the charging controller 305 will process and regulate the electrical energy transported into its interior and transport the processed electrical energy into the interior of the storage battery 304, that is, perform a safe charging operation on the storage battery 304. When the dual-axis motor 208 is turned off, the charging operation on the storage battery 304 can be stopped at this time; During the discharging stage, when the lighting lamp 309 needs to be used, first remove the shell cover 202, and then use the cooperation of the installation groove 307 to press the switch button 308. At this time, the pressed switch button 308 will connect the entire discharging circuit. Then, the discharging controller 306 will deliver the electrical energy inside the storage battery 304 to the inside of the lighting lamp 309 according to the pre-set parameters, making the lighting lamp 309 emit light. When the lighting lamp 309 does not need to be used, just press the switch button 308 to turn it off. At this time, the pressed-off switch button 308 will directly disconnect the discharging circuit, turning off the lighting lamp 309. Then, reset the shell cover 202 to its original position.

[0027] Among them, the distribution cabinet housing 1 is composed of a cabinet body and a cabinet door.

[0028] Among them, the controller body 212 (PLC controller), temperature sensor 205, biaxial motor 208, generator 302, storage battery 304, charging controller 305, discharging controller 306, switch button 308, and lighting lamp 309 are all prior arts. Their working principles are all publicly known technologies, and their models can be selected according to the actual situation and will not be elaborated here.

[0029] Among them, the working principle of the generator 302: The input shaft end of the generator 302 rotates, which makes the rotor of the generator 302 rotate. Since a permanent magnet is installed on the rotor, when the rotor rotates, the magnetic field generated by the permanent magnet also rotates. The stator of the generator 302 is wound with a stator winding. When the rotating magnetic field of the permanent magnet and the stator winding have relative motion, the stator winding will continuously cut the magnetic force lines generated by the permanent magnet. According to the electromagnetic induction law, when the stator winding cuts the magnetic force lines, an induced electromotive force will be generated in the stator winding. Since the stator winding is a closed circuit, an induced current will be generated in the stator winding under the action of the induced electromotive force. This current will be delivered to the external circuit through the output end of the generator 302, thus realizing the process of converting mechanical energy into electrical energy.

[0030] Among them, during both the charging and discharging processes, the charging controller 305 and the discharging controller 306 will closely monitor the state of the storage battery 304. When abnormal situations such as overcharging, over-discharging, and overheating occur in the storage battery 304, the corresponding controller will take measures for protection, such as cutting off the charging or discharging circuit to prevent damage to the storage battery 304.

[0031] Although the present invention has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions described in the foregoing embodiments or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.

Claims

1. Intelligent heat dissipation and ventilation equipment for high-voltage switchgear, characterized in that: It includes a power distribution cabinet housing (1), and a device body (2) and an auxiliary mechanism (3) are arranged on the power distribution cabinet housing (1); The auxiliary mechanism (3) includes a first gear (301), a generator (302), a storage battery (304), a charging controller (305), a discharging controller (306), a mounting groove (307) and a lighting lamp (309). A second gear (303) is fixedly sleeved at the input shaft end of the generator (302). A switch button (308) is installed inside the mounting groove (307). The teeth of the first gear (301) are meshed with the teeth of the second gear (303).

2. The intelligent heat dissipation and ventilation equipment for high-voltage switchgear according to claim 1, characterized in that: The device body (2) includes a housing (201). A cylindrical hole (203) is formed on one side of the housing (201). A housing cover (202) is installed on the other side of the housing (201). A mounting hole (204) is formed on one side of the inner wall of the housing (201).

3. The intelligent heat dissipation and ventilation equipment for high-voltage switchgear cabinets according to claim 2, wherein: A temperature sensor (205) is installed inside the mounting hole (204). A diversion shell (206) is installed on one side of the inner wall of the housing (201). A mounting plate (207) is fixed at the bottom of the inner wall of the housing (201). A double-shaft motor (208) is installed on the top of the mounting plate (207).

4. The intelligent heat dissipation and ventilation device for high-voltage switchgear according to claim 3, wherein: One output end of the double-shaft motor (208) is installed with a mounting rod (209). One end of the mounting rod (209) is installed with a fan blade (210). An auxiliary frame (211) is fixed inside the diversion shell (206). A controller body (212) is installed on the front surface of the inner wall of the housing (201).

5. The intelligent heat dissipation and ventilation equipment for high-voltage switchgear cabinets according to claim 4, wherein: The inside of the cylindrical hole (203) is communicated with the inside of the diversion shell (206). The temperature sensor (205) is electrically connected to the controller body (212). The double-shaft motor (208) is electrically connected to the controller body (212).

6. The intelligent heat dissipation and ventilation equipment for high-voltage switchgear cabinets according to claim 3, wherein: The detection end of the temperature sensor (205) movably penetrates through the surface of the power distribution cabinet housing (1). The air outlet end of the diversion shell (206) movably penetrates through the rear surface of the inner wall of the housing (201).

7. The intelligent heat dissipation and ventilation equipment for high-voltage switchgear according to claim 4, characterized in that: One output end of the double-shaft motor (208) movably penetrates through the outer wall of the diversion shell (206). The mounting rod (209) is movably sleeved inside the auxiliary frame (211). The fan blade (210) is located inside the cylindrical hole (203).

8. The intelligent heat dissipation and ventilation equipment for high-voltage switchgear cabinets according to claim 3, characterized in that: The inside of the multiple air outlet holes of the power distribution cabinet housing (1) is communicated with the inside of the cylindrical hole (203). One side of the housing (201) is fixed to the surface of the power distribution cabinet housing (1). The generator (302) is installed on the top of the mounting plate (207).

9. The intelligent heat dissipation and ventilation equipment for high-voltage switchgear according to claim 3, characterized in that: The first gear (301) is fixedly sleeved on the other output end of the double-shaft motor (208). The storage battery (304) is placed in the inner groove of the housing (201). The charging controller (305) is installed on one side of the inner wall of the housing (201).

10. The intelligent heat dissipation and ventilation equipment for high-voltage switchgear according to claim 2, wherein: The discharge controller (306) is installed on one side of the inner wall of the housing (201), the installation groove (307) is formed on the front surface of the inner wall of the housing (201), and the lighting lamp (309) is installed on the top of the inner wall of the power distribution cabinet housing (1).