New energy photovoltaic panel support
By designing a structure on the photovoltaic panel support that automatically adjusts the angle of the photovoltaic panels, the efficiency limitation caused by the fixed tilt angle of traditional photovoltaic supports is solved, achieving optimal power generation and wind loss reduction under different lighting conditions.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-31
- Publication Date
- 2026-03-20
AI Technical Summary
Traditional photovoltaic (PV) mounting systems can only select one tilt angle to absorb sunlight, which limits the efficiency of PV power generation. Furthermore, in severe weather conditions, the angle of the PV panels cannot be effectively adjusted to reduce damage and increase power generation.
A new energy photovoltaic panel support was designed. By evenly distributing inner bearings and fixing sleeves on the main crossbeam, combined with clamping plates and telescopic rods, the photovoltaic panel can automatically adjust its angle. The telescopic rods are controlled by tilt sensors to adjust the optimal incident angle of the photovoltaic panel.
This allows the photovoltaic panels to maintain the optimal angle under different lighting conditions, improving power generation efficiency and reducing wind damage in severe weather, thus enhancing the system's adaptability and power generation.
Smart Images

Figure CN224021667U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of photovoltaic panel support technology, specifically to a new energy photovoltaic panel support. Background Technology
[0002] Sunlight intensity directly impacts the output power of photovoltaic (PV) power generation. Weak sunlight reduces the current and voltage generated by solar panels, thus affecting PV efficiency. PV mounting systems are a crucial link in the PV industry chain. Traditional fixed mounting systems are limited to selecting only one tilt angle for sunlight absorption. Inspired by the sunflower's tendency to always face the sun, the research team developed a tracking mounting system that allows PV panels to maintain the optimal angle for sunlight, always facing the sun. In typhoon weather, it can automatically adjust the angle of the PV panels to reduce wind damage to the mounting system. If a cloud blocks sunlight from some components, the system adjusts the angle of the components to receive diffused light, while unblocked components continue to maintain the optimal angle of incidence towards the sun, increasing power generation.
[0003] Therefore, a new type of photovoltaic panel support is needed. Utility Model Content
[0004] To address the problems existing in the prior art, this utility model provides a new energy photovoltaic panel bracket, which aims to automatically adjust the angle of the photovoltaic panel to maintain the optimal angle for chasing the light and obtain the maximum power generation.
[0005] To achieve the above objectives, this utility model provides the following technical solution: a new energy photovoltaic panel support, comprising several fixed bases, clamping plates, fixed sleeves, inner bearings, a main crossbeam, and a support frame. The fixed bases are evenly distributed across the installation site, and support columns are fixedly installed at their bottoms to adjust the height of the fixed bases. The top of the fixed base is a fixed plate, and clamping plates are symmetrically hinged to the top two sides of the fixed plate. The surface of the fixed plate between the clamping plates is a positioning base. The fixed sleeve is placed on the positioning base and clamped by the clamping plates. The two clamping plates are bolted together. The fixed sleeve contains an inner bearing, and the main crossbeam is installed between the inner bearings by insertion to connect and install each inner bearing. The inner bearing limits the installation of the main crossbeam. Support frames are evenly distributed on the main crossbeam, and photovoltaic panels are installed on the upper part of the support frames. A support plate is provided between the fixed bases, and a telescopic rod is hinged to the support plate. Hinged bases are evenly distributed on the support frames, and the hinged bases are installed at the top of the telescopic rods.
[0006] Preferably, the inner liner bearing is provided with a fixing block inside, and the fixing block has a rectangular opening in the middle.
[0007] Preferably, the bottom two sides of the fixed sleeve are symmetrically provided with limiting plates, and there are two limiting plates on each side.
[0008] Preferably, the clamping plate is disposed between the two limiting plates.
[0009] Preferably, scaffolding is installed on the fixed base, and support plates are installed between the scaffolding sections.
[0010] Preferably, the support plate is fixed to the scaffold by bolts.
[0011] In summary, this utility model provides a new energy photovoltaic panel support structure. The structure adopted by this patent is as follows: inner bearings are evenly distributed on the main crossbeam, and the inner bearings are sleeved and installed. A fixed sleeve is sleeved and installed on the outside of the inner bearings. The fixed sleeve is placed on the positioning base and clamped by clamping plates set on both sides of the fixed sleeve. The fixed sleeve is fixedly installed by the clamping of the two clamping plates and the cooperation of the positioning base. The clamping plates are fixedly installed by bolts to increase the clamping and fixing, so that the main crossbeam is fixedly installed on the top of the fixed base. The tilt angle of the support frame is adjusted by the telescopic rod. The inner bearings sleeved on the main crossbeam rotate inside the fixed sleeve. The fixed sleeve is fixed by the cooperation of the clamping plates and the positioning base, so that the main crossbeam can be rotated and adjusted. The optimal tilt angle of the photovoltaic panel is achieved by driving the rotation of the telescopic rod to obtain the maximum power generation. Attached Figure Description
[0012] Figure 1 This is a schematic diagram of the new energy photovoltaic panel support structure of this utility model;
[0013] Figure 2 This is a schematic diagram of the cross-sectional structure of the new energy photovoltaic panel support of this utility model;
[0014] Figure 3 This is a sectional schematic diagram of the installation structure of the fixed base and fixed sleeve of this utility model;
[0015] Figure 4 This is a schematic diagram of the fixed sleeve and inner bearing structure of this utility model;
[0016] In the diagram: 1. Fixed base; 2. Clamping plate; 3. Fixed sleeve; 4. Inner bearing; 5. Main crossbeam; 6. Support frame; 7. Fixed plate 1; 11. Support plate 1; 12. Telescopic rod; 13. Hinge base 1; 14. Fixed block; 15. Rectangular opening; 16. Limiting plate 1; 17. Scaffold; 21. Positioning base. Detailed Implementation
[0017] The present invention will be further described below with reference to the accompanying drawings.
[0018] like Figures 1 to 4 As shown:
[0019] This utility model is a new energy photovoltaic panel support, including several fixed bases 1, clamping plates 2, fixing sleeves 3, inner bearings 4, main crossbeams 5, and support frames 6. The fixed bases 1 are evenly distributed in the installation area, and support columns are fixedly installed at their bottoms to adjust the height of the fixed bases 1. The top of the fixed base 1 is set as a fixing plate 7, and clamping plates 2 are symmetrically hinged on both sides of the top of the fixing plate 7. The surface of the fixing plate 7 between the clamping plates 2 is set as a positioning base 21. The fixing sleeves 3 are placed on the positioning bases 21 and are clamped by the clamping plates 2. The two clamping plates 2 are installed with bolts. The inside of the fixing sleeve 3 is provided with inner bearings 4. The inner bearings 4 are connected to the main crossbeam 5 by plugging. The inner bearings 4 limit the installation of the main crossbeam 5. Support frames 6 are evenly distributed on the main crossbeam 5. The upper part of the support frame 6 is set with photovoltaic panels. Support plate 11 is set between the fixed bases 1. Telescopic rod 12 is hinged on the support plate 11. Hinge base 13 is evenly distributed on the support frame 6. The hinge base 13 is installed at the top of the telescopic rod 12.
[0020] To achieve automatic adjustment of the photovoltaic panel angle to maintain the optimal angle for tracking sunlight and obtain maximum power generation, the technical method adopted by this utility model patent is as follows: a fixed base 1 is evenly laid on the construction site. The bottom of the fixed base 1 can be equipped with support columns according to the terrain and environmental conditions of the site to increase the height adjustment and fixation of the fixed base 1. The top of the fixed base 1 is set as a fixed plate 7. Clamping plates 2 are symmetrically hinged on both sides of the top of the fixed plate 7. Inner bearings 4 are evenly distributed on the main crossbeam 5. The inner bearings 4 are sleeved and installed. A fixed sleeve 3 is sleeved on the outside of the inner bearings 4. The fixed sleeve 3 is placed on the positioning base 21 and clamped by the clamping plates 2 set on both sides of the fixed sleeve 3. The clamping of the two clamping plates 2 and the cooperation of the positioning base 21 are used to fix the fixed sleeve 3. The clamping plates 2 are fixedly installed with bolts to increase the clamping and fixation, so that the main crossbeam 5 is fixedly installed on the top of the fixed base 1.
[0021] Support frames 6 are evenly distributed on the main crossbeam 5, and photovoltaic panels are fixedly installed on the support frames 6. Support plates 11 are set between the fixed bases 1, and telescopic rods 12 are hinged on the support plates 11. Hinge bases 13 are evenly distributed on the support frames 6, and the hinge bases 13 are installed at the top of the telescopic rods 12. The tilt angle of the photovoltaic panels is measured by the tilt sensor in the photovoltaic power generation control system, so as to control the telescopic rods 12 to adjust the tilt angle of the photovoltaic panels to obtain the maximum power generation. The specific adjustment method is as follows: the telescopic rods 12 are set between the support plates 11 and the support frames 6, and the tilt angle of the support frames 6 is adjusted by the telescopic rods 12. The inner bearing 4 of the main crossbeam 5 is sleeved and rotates inside the fixed sleeve 3. The fixed sleeve 3 is fixed by the clamping plate 2 and the positioning base 21, so that the main crossbeam 5 can be rotated and adjusted. The optimal tilt angle of the photovoltaic panel is achieved by driving the rotation of the telescopic rods 12 to obtain the maximum power generation.
[0022] In at least one embodiment, in order to limit the installation of the main crossbeam 5 and adjust the tilt angle of the photovoltaic panel, the structure adopted is to set a fixing block 14 inside the inner bearing 4, and the fixing block 14 has a rectangular opening 15 in the middle. The main crossbeam 5 is a steel pipe with a rectangular cross-section, which is fitted and installed with the rectangular opening 15. The main crossbeam 5 can be rotated by adjusting the telescopic rod 12 to adjust the optimal angle for the photovoltaic panel to track the light.
[0023] In at least one embodiment, in order to achieve the clamping and limiting installation of the clamping plate 2 on the fixed sleeve 3, the structure adopted is as follows: the bottom two sides of the fixed sleeve 3 are symmetrically arranged with limiting plates 16, and there are two limiting plates 16 on each side, and the clamping plate 2 is arranged between the two limiting plates 16.
[0024] In at least one embodiment, to facilitate the support, installation, disassembly, and maintenance of the telescopic pole 12, the following structure is adopted: a scaffold 17 is provided on the fixed base 1, and a support plate 11 is installed between the scaffold 17; the support plate 11 and the scaffold 17 are fixedly installed with bolts. The installation method of the scaffold 17 facilitates the assembly and disassembly of the telescopic pole 12. By clamping the scaffold 17 to the fixed base 1, the support plate 11 supports the telescopic pole 12, achieving an adjustable angle structure for the photovoltaic bracket.
[0025] The embodiments described in this utility model are for illustrative purposes only and do not constitute a limitation on the scope of the claims. Other substantially equivalent substitutions that can be conceived by those skilled in the art are all within the protection scope of this utility model.
Claims
1. A new energy photovoltaic panel support, characterized in that, The system includes several fixed bases (1), clamping plates (2), fixed sleeves (3), inner bearings (4), main crossbeams (5), and support frames (6). The fixed bases (1) are evenly distributed in the installation area. Support columns are fixedly installed at their bottoms to support the height of the fixed bases (1). The top of the fixed bases (1) is set as a fixed plate (7). Clamping plates (2) are symmetrically hinged on both sides of the top of the fixed plate (7). The surface of the fixed plate (7) between the clamping plates (2) is set as a positioning base (21). The fixed sleeves (3) are placed on the positioning bases (21) and clamped by the clamping plates (2). The two clamping plates... (2) The inner sleeve (3) is installed with bolts and the inner bearing (4) is installed inside. The inner bearing (4) is connected to the main cross beam (5) by plugging. The inner bearing (4) limits the installation of the main cross beam (5). The main cross beam (5) is evenly distributed with support frames (6). The upper part of the support frame (6) is set as a photovoltaic panel. The fixed base (1) is provided with support plate (11). The support plate (11) is hinged with telescopic rod (12). The support frame (6) is evenly provided with hinged base (13). The hinged base (13) is installed at the top of the telescopic rod (12).
2. The new energy photovoltaic panel support according to claim 1, characterized in that, The inner liner bearing (4) is equipped with a fixing block (14), and the middle part of the fixing block (14) is opened into a rectangular opening (15).
3. The new energy photovoltaic panel support according to claim 1, characterized in that, The bottom sides of the fixed sleeve (3) are symmetrically set as limiting plates (16), and there are two limiting plates (16) on each side.
4. A new energy photovoltaic panel support according to claim 2, characterized in that, The clamping plate (2) is positioned between the two limiting plates (16).
5. A new energy photovoltaic panel support according to claim 1, characterized in that, A scaffold (17) is installed on a fixed base (1), and a support plate (11) is installed between the scaffolds (17).
6. A new energy photovoltaic panel support according to claim 1, characterized in that, The support plate (11) is fixed to the scaffold (17) by bolts.