Wind-resistant high-stability photovoltaic support

By designing a wind-resistant and highly stable photovoltaic support structure with a triangular stabilizing structure, the fatigue cracking and overturning problems of traditional support structures in windy areas have been solved, achieving high strength and stability of the support structure and adapting to wind load adjustments at different wind speeds.

CN121966412APending Publication Date: 2026-05-01HUADIAN JINSHANGCHANGDU NEW ENERGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
HUADIAN JINSHANGCHANGDU NEW ENERGY CO LTD
Filing Date
2026-02-15
Publication Date
2026-05-01

AI Technical Summary

Technical Problem

Traditional photovoltaic (PV) mounting systems are prone to fatigue cracks, tilting, and overturning in windy areas. They also lack wind-resistant design, leading to damage to PV modules and reduced power generation efficiency. Furthermore, it is difficult to adjust structural parameters according to wind speeds in different regions.

Method used

A wind-resistant and highly stable photovoltaic support structure is designed, which adopts a triangular stabilizing structure and is connected by components such as upper and lower pipe clamps, connecting rods and upright beams to form a multi-layer support structure, thereby enhancing the strength and stability of the support.

Benefits of technology

It effectively resists strong wind loads, reduces the risk of bracket deformation and overturning, improves the stability and power generation efficiency of photovoltaic modules, and adapts to wind speed changes in different regions.

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Abstract

The invention discloses a wind-resistant high-stability photovoltaic support. A traditional support is difficult to adjust wind-resistant structure parameters according to wind speeds in different regions, and is poor in universality and adaptability. The photovoltaic module comprises a strut beam, the top of the strut beam is fixed to a bottom beam through a sleeve beam, the top of the bottom beam is fixed to a plurality of steel channels which are evenly distributed, and photovoltaic panels are fixed to the tops of the steel channels; an upper pipe hoop and a lower pipe hoop are sleeved on the support beam, the upper pipe hoop is connected with the lower pipe hoop through a left vertical beam and a right vertical beam, the upper pipe hoop is connected with two sides of the bottom beam through upper connecting rods, and the lower pipe hoop is connected with two sides of the bottom beam through lower connecting rods. The invention is used for the wind-resistant high-stability photovoltaic support.
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Description

Technical Field

[0001] This invention relates to the field of photovoltaic support technology, specifically a wind-resistant and highly stable photovoltaic support that can effectively resist strong wind loads, reduce the risk of support deformation and overturning, and is suitable for windy areas. Background Technology

[0002] In windy regions such as Northwest my country, photovoltaic (PV) power plants frequently face the impact of strong winds. Traditional PV support structures often employ a "single column + simple beam" design, resulting in insufficient strength in the connection between the column and foundation. The welded joints between the beam and column are prone to fatigue cracks under repeated wind loads. Furthermore, the supports lack specific wind-resistant designs, allowing significant wind pressure on the PV modules during strong winds, leading to tilting or even overturning of the entire support structure. This not only damages the PV modules but also impacts the overall power generation efficiency of the power plant. In addition, traditional supports struggle to adjust wind-resistant structural parameters according to different regional wind speeds, exhibiting poor versatility and adaptability. Therefore, there is an urgent need to design a wind-resistant, highly stable PV support system that combines high-strength connections, wind load distribution capabilities, and adjustable parameters. Summary of the Invention

[0003] The purpose of this invention is to solve the above-mentioned technical problems and provide a wind-resistant and highly stable photovoltaic support.

[0004] The above objectives are achieved through the following scheme: A wind-resistant and highly stable photovoltaic support structure comprises: a support beam, the top of which is fixed to a bottom beam via a sleeve beam, the top of which is fixed to multiple evenly distributed channel steels, and photovoltaic panels are fixed to the top of the multiple channel steels. The support beam is fitted with an upper pipe clamp and a lower pipe clamp. The upper pipe clamp and the lower pipe clamp are connected by a left vertical beam and a right vertical beam. The upper pipe clamp is connected to both sides of the bottom beam by upper connecting rods, and the lower pipe clamp is connected to both sides of the metering unit by lower connecting rods.

[0005] The aforementioned wind-resistant and highly stable photovoltaic support structure is characterized by the upper connecting rod and the lower connecting rod being connected by at least two connecting beams, and adjacent connecting beams being connected by inclined beams.

[0006] In the aforementioned wind-resistant and highly stable photovoltaic support, the tops of the left and right vertical beams are respectively welded to the bottom of the sleeve beam.

[0007] The wind-resistant and highly stable photovoltaic support described above includes an upper clamp consisting of two interlocking semicircular clamps connected by bolts. Beneficial effects

[0008] 1. The present invention strengthens the bottom beam by setting up upper and lower pipe clamps, which are connected to the bottom beam by connecting rods, thereby forming a triangular stable support structure and enhancing the strength of the support.

[0009] 2. The present invention enhances the stability of the upper and lower connecting rods by connecting and fixing them together with a connecting beam on the same side, thereby ensuring the stability of the device.

[0010] 3. In this invention, the upper and lower pipe clamps are welded to the bottom of the sleeve beam via the left and right vertical beams, respectively, which can fix the positions of the upper and lower pipe clamps and ensure the stability of the device. Attached Figure Description

[0011] Appendix Figure 1 This is a schematic diagram of the structure of the present invention; Appendix Figure 2 This is a structural diagram of the upper pipe clamp; Appendix Figure 3 This is a structural diagram of the left upright beam; Appendix Figure 4 This is a structural schematic diagram of the right vertical beam; In the diagram: 1. Photovoltaic panel; 2. Channel steel; 3. Bottom beam; 4. Sleeve beam; 5. Upper pipe clamp; 6. Lower pipe clamp; 7. Connecting beam; 8. Upper connecting rod; 9. Lower connecting rod; 10. Left vertical beam; 11. Right vertical beam; 12. Support beam; 13. Inclined beam. Detailed Implementation

[0012] Reference Figures 1-4 A wind-resistant and highly stable photovoltaic support structure comprises: a support beam 12, the top of which is fixed to a bottom beam 3 via a sleeve beam, the top of which is fixed to multiple evenly distributed channel steels 2, and a photovoltaic panel 1 is fixed to the top of the multiple channel steels; The support beam is fitted with an upper pipe clamp 5 and a lower pipe clamp. The upper pipe clamp and the lower pipe clamp are connected by a left vertical beam 10 and a right vertical beam 11. The upper pipe clamp is connected to both sides of the bottom beam by upper connecting rods 8, and the lower pipe clamp is connected to both sides of the metering unit by lower connecting rods 9.

[0013] The wind-resistant and highly stable photovoltaic support structure is described above, wherein the upper connecting rod and the lower connecting rod are connected by at least two connecting beams 7, and adjacent two connecting beams are connected by inclined beams 13, so as to form a triangular stable structure.

[0014] In the aforementioned wind-resistant and highly stable photovoltaic support, the tops of the left and right vertical beams are respectively welded to the bottom of the sleeve beam.

[0015] The wind-resistant and highly stable photovoltaic support described above includes an upper clamp consisting of two interlocking semicircular clamps connected by bolts.

Claims

1. A wind-resistant and highly stable photovoltaic support structure, comprising: The support beam is characterized in that: the top of the support beam is fixed to the bottom beam by a sleeve beam, the top of the bottom beam is fixed to multiple evenly distributed channel steels, and photovoltaic panels are fixed to the top of the multiple channel steels. The support beam is fitted with an upper pipe clamp and a lower pipe clamp. The upper pipe clamp and the lower pipe clamp are connected by a left vertical beam and a right vertical beam. The upper pipe clamp is connected to both sides of the bottom beam by upper connecting rods, and the lower pipe clamp is connected to both sides of the metering unit by lower connecting rods.

2. The wind-resistant and highly stable photovoltaic support according to claim 1, characterized in that: The upper connecting rod and the lower connecting rod are connected by at least two connecting beams, and adjacent connecting beams are connected by inclined beams.

3. The wind-resistant and highly stable photovoltaic support according to claim 2, characterized in that: The tops of the left and right vertical beams are welded to the bottom of the sleeve beam, respectively.

4. The wind-resistant and highly stable photovoltaic support according to claim 3, characterized in that: The upper pipe clamp consists of two interlocking semicircular clamps connected by bolts.