Photovoltaic panel suspension mounting platform

By designing a suspended installation platform and utilizing winches and motors, the photovoltaic panels can be transported and installed efficiently, solving the problems of high cost and low efficiency in existing technologies. This approach adapts to various photovoltaic panel installation sites and improves installation efficiency and safety.

CN224298853UActive Publication Date: 2026-05-29THREE GORGES NEW ENERGY YONGSHENG COUNTY CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
THREE GORGES NEW ENERGY YONGSHENG COUNTY CO LTD
Filing Date
2025-07-29
Publication Date
2026-05-29

AI Technical Summary

Technical Problem

In existing technologies, scissor lifts or articulated boom lifts are expensive and difficult to adapt to photovoltaic panel installation sites. Manual climbing or scaffolding methods are inefficient, time-consuming, labor-intensive, and difficult to reach the required installation height.

Method used

The suspended installation platform, including brackets, lifting suspension platform, operating platform and telescopic ladder, is used to achieve efficient transportation and installation of photovoltaic panels through winch and motor drive. Combined with primary and secondary lifting mechanisms, it can adapt to complex scenarios.

Benefits of technology

It reduces installation costs, improves installation efficiency, avoids the risks of working at heights, adapts to various photovoltaic panel installation sites, and speeds up the installation process.

✦ Generated by Eureka AI based on patent content.

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    Figure CN224298853U_ABST
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Abstract

The utility model provides a photovoltaic panel suspension formula installation platform for, including support, support one side is equipped with the suspension platform of lifting, be equipped with operating table on the suspension platform, and operating table includes the platen, and the platen is relative to the suspension platform and lifts, operating table one side is equipped with the regulation and control mechanism, and the platen one side is equipped with the retractable ladder, and the retractable ladder bottom bears on the suspension platform. Through operating table lifting quick adaptation specific installation point, to make overall structure adapt complex installation scene, do not need to drive winch adjustment whole suspension platform's height again, reduced the suspension platform's start -stop frequency and waiting time, improved installation rhythm greatly. Overall structure installation cost is lower, can adapt photovoltaic panel installation site, avoid artificial climbing to reach the height required for installation, simultaneously avoid scaffold erection and dismantling time -consuming, low efficiency, time -consuming and laborious phenomenon occurs, have greater popularization value.
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Description

Technical Field

[0001] This utility model relates to the field of panel installation, and in particular to a suspended installation platform for photovoltaic panels. Background Technology

[0002] When installing photovoltaic (PV) panels, the panels are mounted on row-and-column support structures. Current technology uses scissor lifts or articulated boom lifts for installation, but this requires workers to operate the lifts themselves. However, scissor lifts and articulated boom lifts are expensive, require licensed operators, are bulky, and are unsuitable for PV installation sites with limited space and high ground hardness requirements.

[0003] Secondly, photovoltaic panels are installed by manual climbing or simple scaffolding. The erection and dismantling of scaffolding is time-consuming and inefficient. After the project is completed, the components need to be dismantled one by one. During the process, it is necessary to avoid the components falling slowly. Manual climbing is risky. Sometimes, manual climbing cannot reach the height required for installation. At the same time, it is difficult to transport the panels from low to high places, which is time-consuming and labor-intensive. Utility Model Content

[0004] This utility model provides a suspended installation platform for photovoltaic panels, solving the problems of high cost and difficulty in adapting to photovoltaic panel installation sites when using scissor lifts or articulated boom lifts; and the time-consuming, inefficient, and labor-intensive methods of manual climbing or scaffolding, which cannot reach the required installation height.

[0005] To solve the above-mentioned technical problems, the technical solution adopted by this utility model is: a photovoltaic panel suspended installation platform, including a bracket, a lifting suspended platform on one side of the bracket, an operating table on the suspended platform, the operating table including a table plate, the table plate being lifted and lowered relative to the suspended platform, an adjustment mechanism on one side of the operating table, and a telescopic ladder on one side of the table plate, the bottom of the telescopic ladder abutting against the suspended platform.

[0006] In the preferred embodiment, the support includes a frame, with two side rails on one side of the frame, multiple rollers at the bottom of the frame, and multiple support crossbars between the side rails and the frame.

[0007] In the preferred embodiment, a seed box is provided on one side of the frame, and multiple winches are provided on the top of the frame. The winches are connected to the suspended platform via steel cables.

[0008] In the preferred embodiment, the suspended platform includes a platform, a side plate on one side of the platform, multiple guide frames on the side plate, the guide frames having a U-shaped structure, a guide wheel at one end of the guide frame, and a lateral wheel at the other end of the guide frame.

[0009] In the preferred embodiment, multiple diagonal braces are provided between the side plate and the platform, guide wheels and lateral wheels abut against the side rails, and the side plate is connected to the winch via steel cables.

[0010] In the preferred embodiment, the operating table includes a platform and two vertical rails. The bottom of the platform is provided with two rotatably connected rotating rods, one end of which is provided with a rotatably connected slider. Two sleeves are provided on one side of the platform, and the sleeves slide against the vertical rails.

[0011] In the preferred embodiment, a connecting column is provided on one side of the platform, and a base plate is provided at the bottom of the vertical rail, with the base plate installed on the platform.

[0012] In a preferred embodiment, the control mechanism includes a connecting rod and two slide rails. The slider rests against the slide rails, the connecting rod connects the two sliders, the sliders are provided with threaded holes, and the sliders are provided with a lead screw that is rotatably connected. One end of the lead screw is provided with a first motor, which is mounted on the platform.

[0013] In the preferred embodiment, the top of the telescopic ladder is equipped with multiple hooks, which are hung on the connecting columns of the platform.

[0014] The beneficial effects of this utility model are as follows: by driving multiple winches, multiple guide wheels on one side of the suspended platform are rolled, so that the suspended platform moves along the side rail, so that the suspended platform is raised and lowered, so that the staff can transport the photovoltaic panels from a low place to a high place. The raising and lowering of the suspended platform allows the staff to reach different installation heights, while transporting the photovoltaic panels to a high place to adapt to the installation position required by the photovoltaic panels. As a primary lifting mechanism, the suspended platform avoids excessive lifting height, which would cause the operating platform to sway more and make it easy for the staff to lose balance when standing or carrying the photovoltaic panels.

[0015] After the staff places the photovoltaic panels on the suspended platform, the first motor of the control mechanism is driven to move the connecting rod horizontally, thereby raising and lowering the platform. One end of the telescopic ladder is connected to the connecting column, allowing the staff to climb the telescopic ladder to reach the top of the platform. The operating platform, as the secondary lifting mechanism, performs small-range raising and lowering from the stable foundation height of the suspended platform. The operating platform can be raised and lowered to quickly adapt to specific installation points, making the overall structure adaptable to complex installation scenarios. There is no need to re-drive the winch to adjust the height of the entire suspended platform, reducing the number of times the suspended platform is started and stopped and the waiting time, and significantly improving the installation speed.

[0016] The overall structure has a low installation cost, can adapt to photovoltaic panel installation sites, avoids the inability of manual climbing to reach the required installation height, and avoids the time-consuming, inefficient, and labor-intensive process of scaffolding erection and dismantling, making it highly valuable for promotion. Attached Figure Description

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

[0018] Figure 1 This is a side view of the overall structure of this utility model;

[0019] Figure 2 This is an axonometric view of the overall structure of this utility model;

[0020] Figure 3 This is an axonometric view of the bracket of this utility model;

[0021] Figure 4 This is an axonometric view of a partial structure of this utility model;

[0022] Figure 5 This is an axonometric view of the suspension platform of this utility model;

[0023] Figure 6 This is an axonometric view of the operating console of this utility model;

[0024] Figure 7 This is an axonometric view of the operating console of this utility model from another perspective;

[0025] In the diagram: 1. Frame; 101. Side rail; 102. Roller; 103. Insemination box; 104. Support crossbar; 105. Suspension platform; 2. Side plate; 201. Platform; 202. Guide frame; 203. Guide wheel; 204. Diagonal bar; 205. Control mechanism; 3. Slide rail; 301. Connecting rod; 302. Lead screw; 303. First motor; 304. Operating table; 4. Platform; 401. Connecting column; 4011. Rotating seat; 4012. Sleeve; 4013. Rotating rod; 402. Sliding block; 403. Vertical rail; 404. Base plate; 4041. Telescopic ladder; 5. Winch; 6. Detailed Implementation

[0026] Example 1:

[0027] like Figure 1-7 The photovoltaic panel suspension installation platform includes a bracket 1, a lifting suspension platform 2 on one side of the bracket 1, an operating platform 4 on the suspension platform 2, and an operating platform 4 including a platform 401 that is raised and lowered relative to the suspension platform 2. An adjustment mechanism 3 is located on one side of the operating platform 4, and a telescopic ladder 5 is located on the other side of the platform 401, with the bottom of the telescopic ladder 5 resting against the suspension platform 2. With this structure, the bracket 1 rests against the ground where the photovoltaic panels are to be installed. The bracket 1 is positioned between two row-type brackets for installing photovoltaic panels. By pushing the bracket 1, the position of the overall structure can be adjusted, thereby allowing the installation of photovoltaic panels at different locations.

[0028] By driving multiple winches 6, multiple guide wheels 204 on one side of the suspended platform 2 are rolled, causing the suspended platform 2 to move along the side rail 102, thereby raising and lowering the suspended platform 2. This allows workers to transport photovoltaic panels from low to high places. The raising and lowering of the suspended platform 2 allows workers to reach different installation heights while transporting photovoltaic panels to higher locations to suit the required installation positions of the photovoltaic panels. As a primary lifting mechanism, the suspended platform 2 avoids excessively high lifting heights that could increase the swaying amplitude of the operating platform 4, making it easy for workers to lose balance when standing or moving photovoltaic panels.

[0029] After the staff places the photovoltaic panel on the suspended platform 2, the first motor 304 of the drive control mechanism 3 is activated to move the connecting rod 302 horizontally, thereby raising and lowering the platform 401. One end of the telescopic ladder 5 is connected to the connecting column 4011. The staff can climb the telescopic ladder 5 to reach the top of the platform 401. The operating platform 4, as a secondary lifting mechanism, performs small-range lifting and lowering on the suspended platform 2 at a stable base height. The lifting and lowering of the operating platform 4 can quickly adapt to specific installation points, making the overall structure adaptable to complex installation scenarios. There is no need to re-drive the winch 6 to adjust the height of the entire suspended platform 2, reducing the number of starts and stops of the suspended platform 2 and the waiting time, and greatly improving the installation pace.

[0030] The overall structure has a low installation cost, can adapt to photovoltaic panel installation sites, avoids the inability of manual climbing to reach the required installation height, and avoids the time-consuming, inefficient, and labor-intensive process of scaffolding erection and dismantling.

[0031] In a preferred embodiment, the support 1 includes a frame 101, with two side rails 102 on one side of the frame 101, multiple rollers 103 at the bottom of the frame 101, and multiple support crossbars 105 between the side rails 102 and the frame 101.

[0032] In a preferred embodiment, a seed-mixing box 104 is provided on one side of the frame 101, and multiple winches 6 are provided on the top of the frame 101. The winches 6 are connected to the suspension platform 2 via steel cables. With this structure, the support 1 rests against the ground where the photovoltaic panels are to be installed. The support 1 is located between two row-type supports for installing photovoltaic panels. By pushing the support 1, the position of the overall structure can be adjusted, thereby allowing the installation of photovoltaic panels at different locations. The winches 6 are installed on top of the support 1. Multiple counterweights are provided in the seed-mixing box 104 to maintain the stability of the overall structure.

[0033] In a preferred embodiment, the suspended platform 2 includes a platform 202, with a side plate 201 on one side. Multiple guide frames 203 are mounted on the side plate 201. Each guide frame 203 has a U-shaped structure, with a guide wheel 204 at one end and a lateral wheel at the other. This U-shaped structure allows the guide frames 203 to slide relative to the side rail 102. The guide frames 203 and lateral wheels on both sides limit the movement of the suspended platform 2.

[0034] In a preferred embodiment, multiple diagonal braces 205 are provided between the side plate 201 and the platform 202, guide wheels 204 and lateral wheels abut against the side rail 102, and the side plate 201 is connected to the winch 6 via steel cables. This structure ensures the stability of the side plate 201 and platform 202, and the side plate 201 is connected to the winch 6 via steel cables.

[0035] In the preferred embodiment, the operating table 4 includes a table plate 401 and two vertical rails 404. Two rotatably connected rotating rods 402 are provided at the bottom of the table plate 401, and a rotatably connected slider 403 is provided at one end of each rotating rod 402. Two sleeves 4013 are provided on one side of the table plate 401, and the sleeves 4013 slide against the vertical rails 404. With this structure, the slide rail 301 has an L-shaped cross-section.

[0036] In the preferred embodiment, a connecting column 4011 is provided on one side of the platform 401, and a base plate 4041 is provided at the bottom of the vertical rail 404, with the base plate 4041 mounted on the platform 202. With this structure, two vertical rails 404 are mounted on the platform 202.

[0037] In a preferred embodiment, the control mechanism 3 includes a connecting rod 302 and two slide rails 301. A slider 403 rests against the slide rails 301. The connecting rod 302 connects the two sliders 403. Each slider 403 has a threaded hole and a rotatably connected lead screw 303. One end of the lead screw 303 is equipped with a first motor 304, which is mounted on the platform 202. This structure drives the first motor 304 of the control mechanism 3, causing the lead screw 303 to rotate, which in turn causes the connecting rod 302 to move horizontally, allowing the slider 403 to slide relative to the slide rails 301, and causing the rotating rod 402 to rotate, thus raising and lowering the platform 401.

[0038] After the platform 401 has been raised and lowered, workers can climb to the top of the platform 401 using the telescopic ladder 5. One end of the telescopic ladder 5 is connected to the connecting column 4011. Workers can climb the telescopic ladder 5 to reach the top of the platform 401.

[0039] In the preferred embodiment, the top of the telescopic ladder 5 is provided with multiple hooks, which are hung on the connecting column 4011 of the platform 401.

[0040] The above embodiments are merely preferred technical solutions of this utility model and should not be considered as limitations on this utility model. The protection scope of this utility model should be the technical solution described in the claims, including equivalent substitutions of the technical features described in the claims. That is, equivalent substitutions and improvements within this scope are also within the protection scope of this utility model.

Claims

1. A suspended mounting platform for photovoltaic panels, characterized by: Includes a support (1), a lifting suspension platform (2) is provided on one side of the support (1), an operating table (4) is provided on the suspension platform (2), the operating table (4) includes a table plate (401), the table plate (401) is lifted relative to the suspension platform (2), an adjustment mechanism (3) is provided on one side of the operating table (4), and a telescopic ladder (5) is provided on one side of the table plate (401), the bottom of the telescopic ladder (5) rests against the suspension platform (2).

2. The photovoltaic panel suspension mounting platform according to claim 1, characterized in that: The support (1) includes a frame (101), two side rails (102) are provided on one side of the frame (101), multiple rollers (103) are provided at the bottom of the frame (101), and multiple support crossbars (105) are provided between the side rails (102) and the frame (101).

3. The photovoltaic panel suspension mounting platform according to claim 2, characterized in that: A seed box (104) is provided on one side of the frame (101), and multiple winches (6) are provided on the top of the frame (101). The winches (6) are connected to the suspension platform (2) by steel cables.

4. The photovoltaic panel suspended mounting platform according to claim 1, characterized in that: The suspended platform (2) includes a platform (202), a side plate (201) is provided on one side of the platform (202), and multiple guide frames (203) are provided on the side plate (201). The guide frame (203) has a U-shaped structure, and a guide wheel (204) is provided at one end of the guide frame (203) and a side wheel is provided at the other end of the guide frame (203).

5. The photovoltaic panel suspension mounting platform according to claim 4, characterized in that: Multiple diagonal braces (205) are provided between the side plate (201) and the platform (202). The guide wheel (204) and the lateral wheel abut against the side rail (102). The side plate (201) is connected to the winch (6) by steel cable.

6. The photovoltaic panel suspension mounting platform according to claim 1, characterized in that: The operating table (4) includes a table plate (401) and two vertical rails (404). The bottom of the table plate (401) is provided with two rotating rods (402) that are rotatably connected. One end of the rotating rod (402) is provided with a slider (403) that is rotatably connected. Two sleeves (4013) are provided on one side of the table plate (401), and the sleeves (4013) slide against the vertical rails (404).

7. The photovoltaic panel suspension mounting platform according to claim 6, characterized in that: A connecting column (4011) is provided on one side of the platform (401), and a base plate (4041) is provided at the bottom of the vertical rail (404). The base plate (4041) is installed on the platform (202).

8. The photovoltaic panel suspended mounting platform according to claim 1, characterized in that: The control mechanism (3) includes a connecting rod (302) and two slide rails (301). The slider (403) abuts against the slide rail (301). The connecting rod (302) connects the two sliders (403). The slider (403) is provided with a threaded hole. The slider (403) is provided with a rotatably connected lead screw (303). One end of the lead screw (303) is provided with a first motor (304). The first motor (304) is installed on the platform (202).

9. The photovoltaic panel suspension mounting platform according to claim 1, characterized in that: The top of the telescopic ladder (5) is equipped with multiple hooks, which are hung on the connecting column (4011) of the platform (401).