Intelligent control integrated cabinet for energy storage power station

CN122659699APending Publication Date: 2026-08-28宁夏京能中卫新能源有限公司
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Patent Information

Application Number
CN202610868142.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-06-16
Publication Date
2026-08-28

AI Technical Summary

Technical Problem

[0003]目前,现有储能电站控制柜体通常直接放置于地面或采用固定式底座安装,当需要对控制柜进行位置调整、设备维护或场地重新规划时,往往需要借助外部吊装设备或叉车进行搬运,操作繁琐且成本较高,难以实现柜体的便捷移动;此外部分控制柜设置有脚轮,脚轮在长期运行过程中易附着灰尘、杂物及油污,影响移动顺畅性,甚至导致脚轮卡滞、磨损加剧

Benefits of technology

通过支撑组件中的辅助移动支撑件,储能电站智能控制柜体可在固定支撑状态与移动支撑状态之间便捷切换;这种可折叠的辅助移动结构无需借助外部吊装或搬运设备,提升了控制柜的场地适应性,此外,辅助移动支撑件的收缩不占用储能电站智能控制柜体的外部空间;通过辅助清洁组件与辅助移动支撑件的机械联动设计,在脚轮伸展和收缩的过程中,利用脚轮与海绵套的接触摩擦驱动第一转轴转动,进而通过齿轮啮合带动第二转轴及清洁刷旋转,实现对脚轮表面的自动刷扫清洁,该自清洁功能与移动操作同步触发,无需额外动力源和人工干预,减少了脚轮表面的杂物附着,延长了脚轮的使用寿命,降低了日常运维的工作量和维护成本。

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Abstract

The application discloses an energy storage power station intelligent control integrated cabinet, and relates to the technical field of energy storage power station control cabinets.The energy storage power station intelligent control integrated cabinet comprises an energy storage power station intelligent control cabinet body and a supporting assembly arranged at the lower end of the energy storage power station intelligent control cabinet body.The energy storage power station intelligent control cabinet body can be conveniently switched between a fixed supporting state and a movable supporting state through the auxiliary movable supporting member in the supporting assembly.The foldable auxiliary movable structure does not need to rely on external hoisting or carrying equipment, and the site adaptability of the control cabinet is improved.In addition, the contraction of the auxiliary movable supporting member does not occupy the external space of the energy storage power station intelligent control cabinet body.Through the mechanical linkage design of the auxiliary cleaning assembly and the auxiliary movable supporting member, the surface of the castor wheel is automatically brushed and cleaned in the process of stretching and contracting of the castor wheel.The self-cleaning function is synchronously triggered with the moving operation, and an additional power source and manual intervention are not needed, so that the attachment of sundries on the surface of the castor wheel is reduced, and the service life of the castor wheel is prolonged.
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Description

Technical Field

[0001] This invention belongs to the technical field of energy storage power station control cabinets, and particularly relates to an integrated intelligent control cabinet for energy storage power stations. Background Technology

[0002] The intelligent control integrated cabinet of an energy storage power station is the core control hub of the energy storage power station. It is an integrated special control device customized for energy storage scenarios. It integrates the functions required by the energy storage system, such as scheduling calculation, communication interaction, safety protection, and human-machine operation, into a standardized industrial cabinet. It is equivalent to the "brain" of the energy storage system, responsible for coordinating the operation of all units in the system and ensuring the safe, efficient and stable operation of the energy storage power station.

[0003] Currently, existing energy storage power station control cabinets are usually placed directly on the ground or installed using fixed bases. When the control cabinet needs to be repositioned, maintained, or the site needs to be replanned, it is often necessary to use external hoisting equipment or forklifts for transportation, which is cumbersome and costly, making it difficult to move the cabinet conveniently. In addition, some control cabinets are equipped with casters, which are prone to accumulating dust, debris, and oil stains during long-term operation, affecting the smoothness of movement and even causing the casters to jam and wear out.

[0004] To address this, we propose an integrated intelligent control cabinet for energy storage power stations. Summary of the Invention

[0005] To address the aforementioned problems, the purpose of this invention is to provide an integrated intelligent control cabinet for energy storage power stations.

[0006] To achieve the above objectives, the present invention proposes an integrated intelligent control cabinet for an energy storage power station, comprising an intelligent control cabinet body and a support component disposed at its lower end. The support component supports the intelligent control cabinet body and assists in its movement. The assisting movement is foldable. Furthermore, the assisting movement can self-clean during extension and folding. The support component includes an assisting movement support member and an assisting cleaning component. The assisting movement support member is disposed on the lower end face of the intelligent control cabinet body, and the assisting cleaning component is disposed on the assisting movement support member.

[0007] Preferably, the auxiliary moving support includes a support frame, a drive motor, a first gear, a gear plate, a transmission shaft, a limiting protrusion, a connecting plate, a push plate, casters, and a cross plate. The support frame is located on the lower end face of the intelligent control cabinet of the energy storage power station, and the cross-section of the support frame is U-shaped.

[0008] Preferably, the drive motor is fixedly mounted on one side wall of the support frame, the transmission shaft is rotatably connected to the inside of the support frame, the output end of the drive motor is connected to the transmission shaft, the first gear is fixedly mounted on both ends of the outer wall of the transmission shaft, the tooth plates are located on the upper and lower sides of the first gear, and the tooth plates on both sides of the first gear are meshed with the first gear.

[0009] Preferably, there are two sets of limiting protrusions, and the two sets of limiting protrusions are fixedly installed on two walls inside the support frame. Each set of limiting protrusions has two protrusions, and the two limiting protrusions are located on both sides of one wall inside the support frame. The connecting plate is located on both sides below the first gear. A limiting groove is formed on one side wall of the connecting plate, and the limiting groove on the connecting plate is slidably connected to the limiting protrusion on the inner wall of the support frame.

[0010] Preferably, the push plate is fixedly mounted on one end of the toothed plate, and the push plates at one end of the upper and lower toothed plates of the first gear are respectively rotatably connected to one end of the connecting plates on both sides below the first gear, and the caster is rotatably connected to one end of the connecting plate.

[0011] Preferably, there are two horizontal plates, which are rotatably connected to two connecting plates on the two inner walls of the support frame. A protective shell is provided on one side wall of the support frame, and the drive motor is located inside the protective shell. A heat dissipation vent is provided on the protective shell.

[0012] With the auxiliary movable support component in the support assembly, the intelligent control cabinet of the energy storage power station can easily switch between a fixed support state and a movable support state. When the cabinet needs to be moved, the drive motor drives the connecting plate to extend, so that the casters extend out from under the support frame, and the cabinet can be moved by the casters. When it needs to be fixed, the connecting plate retracts, the casters retract, and the bottom surface of the support frame directly contacts the ground to achieve stable support. This foldable auxiliary movable structure does not require external hoisting or handling equipment, which improves the site adaptability of the control cabinet.

[0013] Preferably, the auxiliary cleaning component includes a first rotating shaft, a second gear, a sponge sleeve, a cleaning brush, and a third gear. The first rotating shaft is rotatably connected to two walls inside the support frame and is located between two connecting plates. The second rotating shaft is rotatably connected to both sides above the first rotating shaft.

[0014] Preferably, the second gear and the sponge sleeve are both fixedly mounted on the first rotating shaft, with the sponge sleeve located outside the second gear and pressing against a caster at one end of a connecting plate.

[0015] Preferably, the cleaning brush and the third gear are both fixedly mounted on the second rotating shaft, the cleaning brush is located outside the third gear, and the third gear on the second rotating shaft on both sides above the first rotating shaft meshes with the second gear.

[0016] Through the mechanical linkage design of the auxiliary cleaning components and auxiliary moving support, the first rotating shaft is driven by the contact friction between the caster and the sponge sleeve during the extension and retraction of the caster. This, in turn, drives the second rotating shaft and cleaning brush to rotate via gear meshing, achieving automatic brushing and cleaning of the caster surface. This self-cleaning function is triggered synchronously with the movement operation, requiring no additional power source or manual intervention. It reduces the accumulation of debris on the caster surface, extends the service life of the casters, and reduces the workload and maintenance costs of daily operation and maintenance.

[0017] Preferably, the connecting plates that retract into the two walls inside the support frame are inclined downward at opposite ends, the horizontal base surface of the limiting protrusion is T-shaped, and the shape and size of the limiting groove are adapted to the limiting protrusion.

[0018] The intelligent control integrated cabinet for energy storage power stations proposed in this invention can bring the following beneficial effects: The intelligent control cabinet of the energy storage power station can easily switch between fixed and mobile support states through the auxiliary mobile support component in the support assembly. This foldable auxiliary mobile structure does not require external hoisting or handling equipment, improving the site adaptability of the control cabinet. In addition, the retraction of the auxiliary mobile support component does not occupy the external space of the intelligent control cabinet of the energy storage power station. Through the mechanical linkage design of the auxiliary cleaning component and the auxiliary mobile support component, during the extension and retraction of the casters, the contact friction between the casters and the sponge sleeve drives the first rotating shaft to rotate, which in turn drives the second rotating shaft and the cleaning brush to rotate through gear meshing, realizing automatic brushing and cleaning of the caster surface. This self-cleaning function is triggered synchronously with the movement operation, without the need for an additional power source or manual intervention, reducing the adhesion of debris on the caster surface, extending the service life of the casters, and reducing the workload and maintenance costs of daily operation and maintenance. Attached Figure Description

[0019] The accompanying drawings, which are provided to further illustrate the invention and constitute a part of this invention, are illustrative embodiments of the invention and their descriptions are used to explain the invention and do not constitute an undue limitation of the invention.

[0020] In the attached diagram: Figure 1 This is a first-view schematic diagram of the overall structure of the present invention; Figure 2 This is a second perspective view of the overall structure of the present invention; Figure 3 This is a perspective view of the support component of the present invention; Figure 4 This is a cross-sectional view of the support component of the present invention; Figure 5 This is a first-view cross-sectional and split view of the support component of the present invention; Figure 6This is a second perspective view of the cross-sectional and split diagram of the support component of the present invention.

[0021] In the picture: 1. Intelligent control cabinet for energy storage power station; 2. Support components; 21. Auxiliary moving support; 211. Support frame; 212. Drive motor; 213. First gear; 214. Gear plate; 215. Drive shaft; 216. Limiting protrusion; 217. Connecting plate; 218. Push plate; 219. Caster; 2110. Horizontal plate; 2111. Limiting groove; 2112. Protective shell; 22. Auxiliary cleaning components; 221. First rotating shaft; 222. Second gear; 223. Sponge sleeve; 224. Second rotating shaft; 225. Cleaning brush; 226. Third gear. Detailed Implementation

[0022] To more clearly illustrate the overall concept of the present invention, a detailed description will be provided below with reference to the accompanying drawings and examples.

[0023] like Figures 1-6 As shown, an embodiment of the present invention proposes an integrated intelligent control cabinet for an energy storage power station, including an intelligent control cabinet 1 and a support component 2 disposed at its lower end. The support component 2 is used to support the intelligent control cabinet 1 and can assist in its movement. The assisting movement is foldable. In addition, the assisting movement can perform self-cleaning during the extension and folding process. The support component 2 includes an assisting movement support 21 and an assisting cleaning component 22. The assisting movement support 21 is disposed on the lower end face of the intelligent control cabinet 1, and the assisting cleaning component 22 is disposed on the assisting movement support 21.

[0024] The auxiliary moving support 21 includes a support frame 211, a drive motor 212, a first gear 213, a toothed plate 214, a transmission shaft 215, a limiting protrusion 216, a connecting plate 217, a push plate 218, a caster 219, and a horizontal plate 2110. The support frame 211 is located on the lower end face of the intelligent control cabinet 1 of the energy storage power station, and the cross-section of the support frame 211 is U-shaped.

[0025] The drive motor 212 is fixedly mounted on one side wall of the support frame 211, and the transmission shaft 215 is rotatably connected to the inside of the support frame 211. The output end of the drive motor 212 is connected to the transmission shaft 215. The first gear 213 is fixedly mounted on both ends of the outer wall of the transmission shaft 215. The tooth plates 214 are located on the upper and lower sides of the first gear 213, and the tooth plates 214 on both sides of the first gear 213 mesh with the first gear 213.

[0026] When in use, the drive motor 212 starts running, and its output end drives the transmission shaft 215 to rotate inside the support frame 211. The first gear 213 at both ends of the transmission shaft 215 rotates synchronously. Since the first gear 213 has toothed plates 214 meshing on both the upper and lower sides, the rotation of the first gear 213 drives the toothed plates 214 on the upper and lower sides to move horizontally in opposite directions.

[0027] Two sets of limiting protrusions 216 are provided. The two sets of limiting protrusions 216 are fixedly installed on two walls inside the support frame 211. Each set of limiting protrusions 216 has two protrusions. The two limiting protrusions 216 are located on both sides of one wall inside the support frame 211. The connecting plate 217 is located on both sides below the first gear 213. A limiting groove 2111 is provided on one side wall of the connecting plate 217. The limiting groove 2111 on the connecting plate 217 is slidably connected to the limiting protrusions 216 on the inner wall of the support frame 211.

[0028] Push plate 218 is fixedly installed at one end of tooth plate 214. Push plate 218 at one end of tooth plate 214 on both sides of the first gear 213 is rotatably connected to one end of connecting plate 217 on both sides below the first gear 213. Caster 219 is rotatably connected to one end of connecting plate 217.

[0029] In use, the push plate 218 at one end of the toothed plate 214 moves synchronously with the toothed plate 214. The push plate 218 is rotatably connected to one end of the connecting plate 217, thereby pushing the connecting plate 217 to slide along the inner wall of the support frame 211. The limiting groove 2111 on one side wall of the connecting plate 217 slides and engages with the limiting protrusion 216 on the inner wall of the support frame 211, guiding and limiting the movement trajectory of the connecting plate 217, ensuring that the connecting plate 217 extends and retracts smoothly along the predetermined path.

[0030] There are two horizontal plates 2110. The two horizontal plates 2110 are rotatably connected to two connecting plates 217 on the two inner walls of the support frame 211. A protective shell 2112 is provided on one side wall of the support frame 211. The drive motor 212 is located inside the protective shell 2112. A heat dissipation vent is provided on the protective shell 2112.

[0031] The protective shell 2112 reduces the impact of external dust, moisture and foreign objects on the drive motor 212. At the same time, the heat dissipation vents on the protective shell 2112 can dissipate the heat generated by the drive motor 212 in a timely manner, preventing the motor from overheating.

[0032] In use, when the connecting plate 217 extends outward, the caster 219 at one end of the connecting plate 217 gradually extends outward from below the support frame 211, so that the cabinet is supported by the caster 219. When the connecting plate 217 is perpendicular to the ground, the intelligent control cabinet 1 of the energy storage power station is supported to the highest point, at which point the intelligent control cabinet 1 of the energy storage power station can be moved. When the connecting plate 217 retracts inward, the caster 219 retracts to the inside of the support frame 211, and the cabinet is directly supported by the bottom surface of the support frame 211, achieving stable placement. The horizontal plate 2110 is rotatably connected to the two connecting plates 217 on the two inner walls of the support frame 211, so that the distance between the connecting plates 217 connected to the horizontal plate 2110 is controlled at one end, and the movement and rotation of the connecting plates 217 connected to both ends of the horizontal plate 2110 are synchronized.

[0033] With the auxiliary movable support 21 in the support assembly 2, the intelligent control cabinet 1 of the energy storage power station can be easily switched between a fixed support state and a movable support state. When the cabinet needs to be moved, the drive motor 212 drives the connecting plate 217 to extend, so that the casters 219 extend out from under the support frame 211, and the cabinet can be moved by the casters 219. When it needs to be fixed, the connecting plate 217 retracts, the casters 219 retract, and the bottom surface of the support frame 211 directly contacts the ground to achieve stable support. This foldable auxiliary movable structure does not require external hoisting or handling equipment, which improves the site adaptability of the control cabinet.

[0034] The auxiliary cleaning component 22 includes a first rotating shaft 221, a second gear 222, a sponge sleeve 223, a second rotating shaft 224, a cleaning brush 225, and a third gear 226. The first rotating shaft 221 is rotatably connected to two walls inside the support frame 211 and is located between two connecting plates 217. The second rotating shaft 224 is rotatably connected to both sides above the first rotating shaft 221.

[0035] The second gear 222 and the sponge sleeve 223 are both fixedly mounted on the first rotating shaft 221. The sponge sleeve 223 is located outside the second gear 222 and presses against a caster 219 at one end of a connecting plate 217.

[0036] The cleaning brush 225 and the third gear 226 are both fixedly mounted on the second rotating shaft 224. The cleaning brush 225 is located outside the third gear 226. The third gear 226 on the second rotating shaft 224 above the first rotating shaft 221 meshes with the second gear 222.

[0037] During use, as the connecting plate 217 drives the caster 219 to extend and retract, when the caster 219 contacts and rubs against the sponge sleeve 223 on the first rotating shaft 221, the sponge sleeve 223 drives the first rotating shaft 221 to rotate on the inner wall of the support frame 211. The second gear 222 on the first rotating shaft 221 rotates accordingly. The second gear 222 meshes with the third gear 226 on the second rotating shaft 224, driving the second rotating shaft 224 to rotate synchronously. The cleaning brush 225 on the second rotating shaft 224 rotates with the shaft to brush and clean the surface of the caster 219, realizing the self-cleaning function of the caster 219 during extension and folding.

[0038] Through the mechanical linkage design of the auxiliary cleaning component 22 and the auxiliary moving support 21, during the extension and retraction of the caster 219, the contact friction between the caster 219 and the sponge sleeve 223 drives the first rotating shaft 221 to rotate. This, in turn, drives the second rotating shaft 224 and the cleaning brush 225 to rotate via gear meshing, achieving automatic brushing and cleaning of the surface of the caster 219. This self-cleaning function is triggered synchronously with the movement operation, requiring no additional power source or manual intervention. This reduces the accumulation of debris on the surface of the caster 219, extends its service life, and reduces the workload and maintenance costs of daily operation and maintenance.

[0039] The connecting plates 217, which retract into the inner walls of the support frame 211, are inclined downward at opposite ends. The horizontal base of the limiting protrusion 216 is T-shaped, and the shape and size of the limiting groove 2111 are adapted to the limiting protrusion 216.

[0040] The sliding engagement between the limiting protrusion 216 and the limiting groove 2111, along with the setting of the cross plate 2110, guides and limits the telescopic movement of the connecting plate 217, preventing the connecting plate 217 from shifting or wobbling during movement. The cross-section of the limiting protrusion 216 is T-shaped, and the shape and size of the limiting groove 2111 are adapted to the limiting protrusion 216, improving the stability of the movement of the connecting plate 217 and ensuring that the caster 219 can extend and retract smoothly.

[0041] Working principle: When the drive motor 212 starts running, its output end drives the transmission shaft 215 to rotate inside the support frame 211. The first gear 213 at both ends of the transmission shaft 215 rotates synchronously. Since the first gear 213 has toothed plates 214 meshing on both the upper and lower sides, the rotation of the first gear 213 drives the toothed plates 214 on the upper and lower sides to move horizontally in opposite directions. The push plate 218 at one end of the toothed plate 214 moves synchronously with the toothed plate 214. The push plate 218 is rotatably connected to one end of the connecting plate 217, thereby pushing the connecting plate 217 to slide along the inner wall of the support frame 211. The limiting groove 2111 on one side wall of the connecting plate 217 slides and engages with the limiting protrusion 216 on the inner wall of the support frame 211, guiding and limiting the movement trajectory of the connecting plate 217, ensuring that the connecting plate 217 extends and retracts smoothly along the predetermined path. When the connecting plate 217 extends outward, the caster 219 at one end of the connecting plate 217 gradually extends outward below the support frame 211. At this time, the angle between the connecting plate 217 and the ground gradually increases, so that the cabinet is supported by the caster 219. When the support frame 211 separates from the ground, the intelligent control cabinet 1 of the energy storage power station can be moved. When the connecting plate 217 is perpendicular to the ground, the intelligent control cabinet 1 of the energy storage power station is supported to the highest point. When the connecting plate 217 retracts inward, the caster 219 retracts to the inside of the support frame 211, and the cabinet is directly supported by the bottom surface of the support frame 211, achieving stable placement. The horizontal plate 2110 is rotatably connected to the two connecting plates 217 on the two inner walls of the support frame 211, so that the distance between the connecting plates 217 connected to the horizontal plate 2110 is controlled at one end, and the movement and rotation of the connecting plates 217 connected to both ends of the horizontal plate 2110 are synchronized. During the process of the connecting plate 217 driving the caster 219 to extend and retract, when the caster 219 contacts and rubs against the sponge sleeve 223 on the first rotating shaft 221, the sponge sleeve 223 drives the first rotating shaft 221 to rotate on the inner wall of the support frame 211. The second gear 222 on the first rotating shaft 221 rotates accordingly. The second gear 222 meshes with the third gear 226 on the second rotating shaft 224, driving the second rotating shaft 224 to rotate synchronously. The cleaning brush 225 on the second rotating shaft 224 rotates with the shaft and brushes and cleans the surface of the caster 219, realizing the self-cleaning function of the caster 219 during the extension and folding process. The protective shell 2112 is set on one side wall of the support frame 211, and the drive motor 212 is located inside the protective shell 2112. The protective shell 2112 is provided with heat dissipation vents to protect the drive motor 212 while ensuring heat dissipation.

[0042] The various embodiments in this specification are described in a progressive manner. Similar or identical parts between embodiments can be referred to interchangeably. Each embodiment focuses on describing the differences from other embodiments. In particular, the system embodiments are basically similar to the method embodiments, so the description is relatively simple; relevant parts can be referred to the descriptions in the method embodiments.

[0043] The above description is merely an embodiment of the present invention and is not intended to limit the invention. Various modifications and variations can be made to the present invention by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principle of the present invention should be included within the scope of the claims of the present invention.

Claims

1. An integrated intelligent control cabinet for an energy storage power station, characterized in that, The device includes an intelligent control cabinet (1) for an energy storage power station and a support component (2) disposed at its lower end. The support component (2) is used to support the intelligent control cabinet (1) for the energy storage power station and can assist in movement. The assist in movement is foldable. In addition, the assist in movement can perform self-cleaning during the extension and folding process. The support component (2) includes an assist in movement support (21) and an assist in cleaning component (22). The assist in movement support (21) is disposed on the lower end face of the intelligent control cabinet (1) for the energy storage power station, and the assist in cleaning component (22) is disposed on the assist in movement support (21).

2. The integrated intelligent control cabinet for an energy storage power station according to claim 1, characterized in that, The auxiliary moving support (21) includes a support frame (211), a drive motor (212), a first gear (213), a toothed plate (214), a transmission shaft (215), a limiting protrusion (216), a connecting plate (217), a push plate (218), a caster (219), and a horizontal plate (2110). The support frame (211) is located on the lower end face of the intelligent control cabinet (1) of the energy storage power station, and the cross-section of the support frame (211) is U-shaped.

3. The integrated intelligent control cabinet for an energy storage power station according to claim 2, characterized in that, The drive motor (212) is fixedly mounted on one side wall of the support frame (211), the transmission shaft (215) is rotatably connected to the inside of the support frame (211), the output end of the drive motor (212) is connected to the transmission shaft (215), the first gear (213) is fixedly mounted on both ends of the outer wall of the transmission shaft (215), the tooth plate (214) is located on the upper and lower sides of the first gear (213), and the tooth plates (214) on both sides of the first gear (213) are meshed with the first gear (213).

4. The integrated intelligent control cabinet for an energy storage power station according to claim 2, characterized in that, The limiting protrusions (216) are provided in two sets. The two sets of limiting protrusions (216) are respectively fixedly installed on two walls inside the support frame (211). Each set of limiting protrusions (216) has two protrusions. The two limiting protrusions (216) are located on both sides of one wall inside the support frame (211). The connecting plate (217) is located on both sides below the first gear (213). A limiting groove (2111) is opened on one side wall of the connecting plate (217). The limiting groove (2111) on the connecting plate (217) is slidably connected to the limiting protrusions (216) on the inner wall of the support frame (211).

5. The integrated intelligent control cabinet for an energy storage power station according to claim 2, characterized in that, The push plate (218) is fixedly installed at one end of the tooth plate (214). The push plate (218) at one end of the tooth plate (214) on both sides of the first gear (213) is rotatably connected to one end of the connecting plate (217) on both sides below the first gear (213). The caster (219) is rotatably connected to one end of the connecting plate (217).

6. The integrated intelligent control cabinet for an energy storage power station according to claim 1, characterized in that, Two horizontal plates (2110) are provided. The two horizontal plates (2110) are rotatably connected to two connecting plates (217) on the two inner walls of the support frame (211). A protective shell (2112) is provided on one side wall of the support frame (211). The drive motor (212) is located inside the protective shell (2112). A heat dissipation port is provided on the protective shell (2112).

7. The integrated intelligent control cabinet for an energy storage power station according to claim 2, characterized in that, The auxiliary cleaning component (22) includes a first rotating shaft (221), a second gear (222), a sponge sleeve (223), a second rotating shaft (224), a cleaning brush (225), and a third gear (226). The first rotating shaft (221) is rotatably connected to two walls inside the support frame (211), and the first rotating shaft (221) is located between two connecting plates (217). The second rotating shaft (224) is rotatably connected to both sides above the first rotating shaft (221).

8. The integrated intelligent control cabinet for an energy storage power station according to claim 7, characterized in that, The second gear (222) and the sponge sleeve (223) are both fixedly mounted on the first rotating shaft (221). The sponge sleeve (223) is located outside the second gear (222), and the sponge sleeve (223) presses against a caster (219) at one end of a connecting plate (217).

9. The integrated intelligent control cabinet for an energy storage power station according to claim 7, characterized in that, The cleaning brush (225) and the third gear (226) are both fixedly mounted on the second rotating shaft (224). The cleaning brush (225) is located outside the third gear (226). The third gear (226) on the second rotating shaft (224) above the first rotating shaft (221) meshes with the second gear (222).

10. The integrated intelligent control cabinet for an energy storage power station according to claim 4, characterized in that, The connecting plates (217) that retract into the inner walls of the support frame (211) are inclined downward at opposite ends. The horizontal base surface of the limiting protrusion (216) is T-shaped. The shape and size of the limiting groove (2111) are adapted to the limiting protrusion (216).