Supporting mechanism for high-altitude operation and maintenance of photovoltaic power station

By designing a support mechanism for high-altitude operation and maintenance of photovoltaic power plants, and utilizing components such as mobile wheels, adjustable climbing frames, and anti-slip sleeves, the safety hazards and low efficiency of traditional photovoltaic power plant operation and maintenance equipment have been solved, achieving efficient and convenient high-altitude operation and maintenance and reducing operation and maintenance costs.

CN224228602UActive Publication Date: 2026-05-12HUNAN XINGYE SOLAR ENERGY SCI & TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
HUNAN XINGYE SOLAR ENERGY SCI & TECH CO LTD
Filing Date
2025-05-27
Publication Date
2026-05-12

AI Technical Summary

Technical Problem

传统光伏电站运维设备存在安全隐患、搭建耗时长、需多人协作,导致停机维护成本增加,难以满足高效便捷的高处运维需求。

Method used

A support mechanism for high-altitude operation and maintenance of photovoltaic power plants was designed, including components such as a load-bearing frame, moving wheels, adjustable climbing frame, load-bearing column, and anti-slip sleeve. The moving wheels and threaded adjustment pads enable flexible movement and fixation of the device, while the adjustable telescopic column and load-bearing rod enable height adjustment and stable support. The anti-slip pads and limit grooves ensure safety and stability.

Benefits of technology

It achieves safety, stability and convenience for high-altitude operations. The support device can be flexibly moved and retrieved, adapting to different terrains and component installation heights, reducing the safety risks and costs of operation and maintenance.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to the technical field of supporting structures, and particularly relates to a supporting mechanism for high-altitude operation and maintenance of a photovoltaic power station, which comprises a bearing frame. Moving wheels are rotationally arranged at the bottom of the bearing frame. The moving wheels are symmetrically arranged at the bottom of the bearing frame; the bottom of the bearing frame is in threaded connection with a threaded adjusting cushion block. The thread adjusting cushion block is arranged on one side of the moving wheel; an adjusting climbing frame is arranged at the top of the bearing frame; the adjusting climbing frame is arranged on the top of the bearing frame in a rotating and adjusting mode. The middle part of the adjustable climbing frame is fixedly connected with a bearing column; the bearing columns are arranged in the adjusting climbing frame in a linear array mode. An anti-skid sleeve is fixedly connected to the side wall of the bearing column; by means of the structure, the requirements for safety, stability, convenience and the like of high-altitude operation can be effectively met, the supporting device can be flexibly moved and recycled, and people can use the supporting device more conveniently.
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Description

Technical Field

[0001] This utility model belongs to the field of support structure technology, specifically a support structure for high-altitude operation and maintenance of photovoltaic power stations. Background Technology

[0002] As an important component of clean energy, photovoltaic power plants have driven the transformation of the energy structure through large-scale application, and their operation and maintenance work requires personnel to complete the work in a high-altitude environment.

[0003] Traditional operation and maintenance relies on scaffolding, suspended platforms, or aerial work platforms, which pose safety hazards such as falls and equipment tipping. In addition, traditional equipment is time-consuming to set up and requires multiple people to work together, which increases downtime maintenance costs.

[0004] Therefore, developing a safe, reliable, portable, efficient, and adaptable high-altitude operation and maintenance support structure has become a key requirement for the intelligent operation and maintenance of photovoltaic power plants.

[0005] Therefore, this utility model provides a support structure for high-altitude operation and maintenance of photovoltaic power plants. Utility Model Content

[0006] To overcome the shortcomings of existing technologies and solve at least one of the problems mentioned in the background art, a support structure for high-altitude operation and maintenance of photovoltaic power plants is proposed.

[0007] The technical solution adopted by this utility model to solve its technical problem is as follows: A support mechanism for high-altitude operation and maintenance of a photovoltaic power station, comprising a load-bearing frame; a movable wheel rotatably mounted at the bottom of the load-bearing frame; the movable wheel is symmetrically arranged at the bottom of the load-bearing frame; a threaded adjusting pad is threadedly connected to the bottom of the load-bearing frame; the threaded adjusting pad is located on one side of the movable wheel; an adjustable climbing frame is provided at the top of the load-bearing frame; the adjustable climbing frame is rotatably adjustable at the top of the load-bearing frame; a load-bearing column is fixedly connected to the middle of the adjustable climbing frame; the load-bearing columns are arranged in a linear array inside the adjustable climbing frame; anti-slip sleeves are fixedly connected to the side walls of the load-bearing columns; this effectively meets the safety, stability, and convenience requirements of high-altitude operations, and the support device can be flexibly moved and retracted, making it more convenient for personnel to use.

[0008] Preferably, a rotating frame is fixedly connected to the side wall of the adjustable climbing frame; the rotating frames are symmetrically arranged on the side wall of the adjustable climbing frame and are fixedly connected to each other by connecting rods; an adjustable telescopic column is rotatably arranged in the middle of the rotating frame; the adjustable telescopic column is symmetrically arranged in the middle of the rotating frame; a load-bearing rod is telescopically arranged at the bottom of the adjustable telescopic column; this is a core component that can effectively realize the height adjustment of the device and adapt to different terrains and component installation heights, and its design directly affects the stability, ease of operation and applicability of the device.

[0009] Preferably, an anti-slip pad is fixed to the bottom of the load-bearing rod; the anti-slip pad is located at the bottom of multiple load-bearing rods; this can increase the friction coefficient between the support column and the contact surface, ensuring that the device remains stationary on smooth roofs or soft ground, and avoiding displacement due to external forces.

[0010] Preferably, a support frame is fixedly connected to the side wall of the adjustable climbing frame; the support frame is located at the top of the rotating frame; a support pad is rotatably installed on the connecting column of the support frame; this can effectively realize the adjustable support treatment of the climbing frame and other support surfaces, and can achieve treatment in a variety of situations.

[0011] Preferably, the bottom of the support pad is provided with anti-slip texture; the anti-slip texture is arranged in a linear array on the bottom of the support pad; it can effectively increase the micro-roughness of the object surface, and the interlocking effect of the rough surface can significantly improve static friction and dynamic friction, preventing relative sliding between objects.

[0012] Preferably, a limiting groove is provided on the side wall of the adjustable climbing frame; the limiting groove is symmetrically arranged on the side wall of the adjustable climbing frame; a fixing hook is slidably arranged inside the limiting groove; this allows personnel to effectively connect with a safety rope during climbing, enabling personnel to take safety protection measures.

[0013] Preferably, a fixing block is fixedly connected to the side wall of the load-bearing frame; the fixing block is internally threaded with a rotating threaded pad; it can effectively support the structure by being integrated with the threaded adjusting pad, making the overall support structure more robust and preventing the climbing frame from tilting.

[0014] The beneficial effects of this utility model are as follows:

[0015] 1. The support mechanism for high-altitude operation and maintenance of photovoltaic power stations described in this utility model allows the moving wheels to drive the support structure to move by slightly tilting the load-bearing frame. When it reaches a specific position, it can be adjusted by threaded adjustment pads to fix the climbing frame in a suitable position, preventing the entire device from tilting when personnel are climbing. Anti-slip sleeves can also be used to prevent personnel from slipping. This effectively meets the safety, stability, and convenience requirements of high-altitude operations. Furthermore, the support device can be flexibly moved and retracted, making it more convenient for personnel to use.

[0016] 2. The photovoltaic power station high-altitude operation and maintenance support mechanism described in this utility model uses a rotating frame to drive the adjustable telescopic column 22 for adjustment, and then uses a load-bearing column for appropriate height adjustment and support treatment, making the climbing ladder support more solid and stable. It is a core component that can effectively realize device height adjustment and adapt to different terrains and component installation heights. Its design directly affects the stability, ease of operation and applicability of the device. Attached Figure Description

[0017] The present invention will be further described below with reference to the accompanying drawings.

[0018] Figure 1 This is a perspective view of the present invention;

[0019] Figure 2 This is a side view of the support mechanism in this utility model;

[0020] Figure 3 This is a schematic diagram of the auxiliary support mechanism in this utility model;

[0021] Figure 4 This is a schematic diagram of the movable support structure in this utility model.

[0022] In the diagram: 11. Load-bearing frame; 12. Casters; 13. Threaded adjusting pad; 14. Adjustable climbing frame; 15. Load-bearing column; 16. Anti-slip sleeve; 21. Rotating frame; 22. Adjustable telescopic column; 23. Load-bearing rod; 31. Anti-slip pad; 41. Support frame; 42. Support pad; 51. Anti-slip texture; 61. Limiting groove; 62. Fixing hook; 71. Fixing block; 72. Rotating threaded pad. Detailed Implementation

[0023] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.

[0024] Specific implementation examples are given below.

[0025] like Figures 1 to 4As shown in the figure, a support mechanism for high-altitude operation and maintenance of a photovoltaic power station according to an embodiment of the present invention includes a load-bearing frame 11; a movable wheel 12 is rotatably provided at the bottom of the load-bearing frame 11; the movable wheel 12 is symmetrically arranged at the bottom of the load-bearing frame 11; a threaded adjusting pad 13 is threadedly connected to the bottom of the load-bearing frame 11; the threaded adjusting pad 13 is located on one side of the movable wheel 12; an adjustable climbing frame 14 is provided at the top of the load-bearing frame 11; the adjustable climbing frame 14 is rotatably adjustable at the top of the load-bearing frame 11; a load-bearing column 15 is fixedly connected to the middle of the adjustable climbing frame 14; the load-bearing columns 15 are arranged in a linear array inside the adjustable climbing frame 14; and the side walls of the load-bearing columns 15 are... The structure is fixed with anti-slip sleeves 16. When working at height, if a support device is needed, personnel can slightly tilt the entire structure to allow the moving wheels 12 to move the entire structure. When the desired position is reached, the threaded adjusting pads 13 can be used for balanced support, making the climbing frame 14 more stable and preventing personnel from being unstable while climbing. The load-bearing column 15 and anti-slip sleeves 16 provide more stable support for personnel during climbing. Through the above structure, the safety, stability, and convenience requirements of high-altitude operations can be effectively met, and the support device can be flexibly moved and retrieved, making it more convenient for personnel to use.

[0026] like Figures 1 to 3 As shown, a rotating frame 21 is fixedly connected to the side wall of the adjustable climbing frame 14; the rotating frames 21 are symmetrically arranged on the side wall of the adjustable climbing frame 14 and are fixedly connected to each other by connecting rods; an adjustable telescopic column 22 is rotatably arranged in the middle of the rotating frame 21; the adjustable telescopic column 22 is symmetrically arranged in the middle of the rotating frame 21; a load-bearing rod 23 is telescopically arranged at the bottom of the adjustable telescopic column 22; during operation, the adjustable telescopic column 22 can be adjusted by rotating the rotating frame 21, so that the adjustable climbing frame 14 can provide auxiliary support when supporting, and the load-bearing rod 23 can provide support at different heights; through the above structure, the core component that can effectively adjust the height of the device and adapt to different terrains and component installation heights can be effectively realized. Its design directly affects the stability, ease of operation and applicability of the device.

[0027] like Figures 1 to 3 As shown, an anti-slip pad 31 is fixed to the bottom of the load-bearing rod 23; the anti-slip pad 31 is located at the bottom of multiple load-bearing rods 23; during operation, the anti-slip pad 31 can provide better support for the load-bearing rod 23 and prevent accidental displacement that could lead to support failure; through the above structure, the friction coefficient between the support column and the contact surface can be increased, ensuring that the device remains stationary on smooth roofs or soft ground and avoiding displacement due to external forces.

[0028] like Figure 1As shown, a support frame 41 is fixedly connected to the side wall of the adjustable climbing frame 14; the support frame 41 is located at the top of the rotating frame 21; a support pad 42 is rotatably mounted on the connecting column of the support frame 41; during operation, the support pad 42 can be adjusted through the support frame 41, so that the adjustable climbing frame 14 can be better fixed and supported when it reaches the support position; through the above structure, the climbing frame can be effectively adjusted and supported with other support surfaces, and can be handled in a variety of situations.

[0029] like Figure 1 As shown, the bottom of the support pad 42 is provided with anti-slip texture 51; the anti-slip texture 51 is arranged in a linear array on the bottom of the support pad 42; during operation, the anti-slip texture 51 can make the support pad 42 more secure with the contact surface, preventing the overall device from failing to support itself when slipping; through the above structure, the micro-roughness of the object surface can be effectively increased, and the interlocking effect of the rough surface can significantly improve the static friction and dynamic friction, preventing relative sliding between objects.

[0030] like Figure 1 and Figure 2 As shown, a limiting groove 61 is provided on the side wall of the adjustable climbing frame 14; the limiting groove 61 is symmetrically arranged on the side wall of the adjustable climbing frame 14; a fixing hook 62 is slidably arranged inside the limiting groove 61; during operation, personnel can connect a safety rope to the fixing hook 62, and the fixing hook 62 slides inside the limiting groove 61, allowing personnel to slide while climbing, thus protecting their safety; through the above structure, personnel can effectively take safety precautions by connecting with a safety rope during climbing.

[0031] like Figure 2 and Figure 4 As shown, a fixing block 71 is fixedly connected to the side wall of the load-bearing frame 11; a rotating threaded pad 72 is connected to the internal thread of the fixing block 71; during operation, personnel can support the ground by rotating the threaded pad 72, and adjust it synchronously with the threaded adjusting pad 13 to make the whole structure more stable, prevent accidental movement and provide anti-slip treatment; through the above structure, the support treatment can be effectively carried out in conjunction with the threaded adjusting pad 13, making the overall support structure more stable and preventing the climbing frame from tilting, and can also be used for support and fixation treatment.

[0032] When working at heights and requiring support devices, personnel can slightly tilt the overall structure, causing the moving wheels 12 to move the entire structure to the desired position. Adjusting the support with threaded pads 13 provides balance, making the adjustable climbing frame 14 more stable and preventing instability during climbing. The load-bearing column 15 and anti-slip sleeve 16 further enhance stability during climbing. The adjustable telescopic column 22 can be adjusted via the rotating frame 21, providing auxiliary support for the adjustable climbing frame 14. The load-bearing rod 23 allows for support at different heights. Anti-slip pads 31 further support the load-bearing rod 23. To provide better support and prevent accidental displacement leading to support failure, the support pad 42 can be adjusted via the support frame 41, allowing the climbing frame 14 to be better fixed and supported when it reaches the support position. The anti-slip texture 51 makes the support pad 42 more secure with the contact surface, preventing slippage and overall device support failure. Personnel can connect the safety rope to the fixing hook 62, and the fixing hook 62 slides inside the limiting groove 61, allowing personnel to slide while climbing, protecting their safety. Personnel can support the ground by rotating the threaded pad 72, and adjust it synchronously with the threaded adjusting pad 13, making the whole structure more stable, preventing accidental movement and providing anti-slip treatment.

[0033] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.

Claims

1. A support structure for high-altitude operation and maintenance of a photovoltaic power station, comprising a load-bearing frame (11); characterized in that: The bottom of the load-bearing frame (11) is rotatably equipped with a movable wheel (12); the movable wheel (12) is symmetrically arranged at the bottom of the load-bearing frame (11); the bottom of the load-bearing frame (11) is threadedly connected with a threaded adjusting pad (13); the threaded adjusting pad (13) is located on one side of the movable wheel (12); the top of the load-bearing frame (11) is equipped with an adjustable climbing frame (14); the adjustable climbing frame (14) is located at the top of the load-bearing frame (11) and is rotatably adjustable; a load-bearing column (15) is fixedly connected to the middle of the adjustable climbing frame (14); the load-bearing column (15) is arranged in a linear array inside the adjustable climbing frame (14); and an anti-slip sleeve (16) is fixedly connected to the side wall of the load-bearing column (15).

2. The support structure for high-altitude operation and maintenance of a photovoltaic power station according to claim 1, characterized in that: A rotating frame (21) is fixedly connected to the side wall of the adjustable climbing frame (14); the rotating frame (21) is symmetrically arranged on the side wall of the adjustable climbing frame (14) and a connecting rod is fixedly connected between them; an adjustable telescopic column (22) is rotatably arranged in the middle of the rotating frame (21); the adjustable telescopic column (22) is symmetrically arranged in the middle of the rotating frame (21); a load-bearing rod (23) is telescopically arranged at the bottom of the adjustable telescopic column (22).

3. The support structure for high-altitude operation and maintenance of a photovoltaic power station according to claim 2, characterized in that: The bottom of the load-bearing rod (23) is fixed with an anti-slip pad (31); the anti-slip pad (31) is located at the bottom of multiple load-bearing rods (23).

4. The support structure for high-altitude operation and maintenance of a photovoltaic power station according to claim 3, characterized in that: A support frame (41) is fixedly connected to the side wall of the adjustable climbing frame (14); the support frame (41) is located at the top of the rotating frame (21); a support pad (42) is rotatably installed on the connecting column of the support frame (41).

5. A support structure for high-altitude operation and maintenance of a photovoltaic power station according to claim 4, characterized in that: The bottom of the support pad (42) is provided with anti-slip texture (51); the anti-slip texture (51) is arranged in a linear array on the bottom of the support pad (42).

6. The support structure for high-altitude operation and maintenance of a photovoltaic power station according to claim 5, characterized in that: The adjustable climbing frame (14) has a limiting groove (61) on its side wall; the limiting groove (61) is symmetrically arranged on the side wall of the adjustable climbing frame (14); a fixing hook (62) is slidably arranged inside the limiting groove (61).

7. A support structure for high-altitude operation and maintenance of a photovoltaic power station according to claim 6, characterized in that: A fixing block (71) is fixedly connected to the side wall of the load-bearing frame (11); a rotating threaded pad (72) is threadedly connected inside the fixing block (71).