Flexible support photovoltaic module installation angle adjusting device

The flexible bracket photovoltaic module installation angle adjustment device solves the problem of the photovoltaic bracket system adapting to different geographical locations and installation environments, realizes efficient power generation and structural stability of the photovoltaic panels, and adapts to various installation environments.

CN223488157UActive Publication Date: 2025-10-28DATANG MOUDING NEW ENERGY CO LTD
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Patent Information

Application Number
CN202422911266.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-28
Publication Date
2025-10-28
Estimated Expiration
2034-11-28

AI Technical Summary

Technical Problem

The existing photovoltaic support system cannot adapt to different geographical locations and installation environments, resulting in poor power generation efficiency of photovoltaic panels.

Method used

A flexible bracket photovoltaic module installation angle adjustment device is designed. The angle of the photovoltaic module can be adjusted through the flexible connection of components such as columns, inclined beams, bottom beams, rear supports and purlins. Ropes and fasteners are used to fix it to form a stable support structure.

Benefits of technology

It improves the power generation efficiency of photovoltaic panels, adapts to different terrains and environments, enhances the stability and wind resistance of the structure, and reduces the difficulty of transportation and installation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a flexible support photovoltaic assembly installation angle adjusting device which comprises a stand column, an oblique beam and a photovoltaic assembly, the upper end of the stand column is connected with a bottom beam, one end of the bottom beam is provided with a bottom beam positioning hole, one end of a rear support is provided with a rear support positioning hole, and the other end of the rear support is provided with an oblique beam. A plurality of first oblique beam positioning holes and a plurality of second oblique beam positioning holes are formed in the oblique beam, the first oblique beam positioning holes correspond to the bottom beam positioning holes, the second oblique beam positioning holes correspond to the rear support positioning holes, and a U-shaped fixing frame is arranged on one side of the stand column. A first U-shaped fixing frame and a second U-shaped fixing frame are arranged at the two ends of the face, close to the stand column, of the oblique beam. The photovoltaic support has the beneficial effects that the fastening conditions of all connecting parts are checked, the position and angle of each assembly are adjusted, the stability of the whole support structure and the optimal inclination angle of the photovoltaic assembly are ensured, the power generation efficiency is effectively improved, a stable supporting structure is formed, and wind loads and other external force can be effectively resisted.
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Description

Technical Field

[0001] This utility model relates to the field of photovoltaic installation, specifically to a flexible bracket photovoltaic module installation angle adjustment device. Background Technology

[0002] With the continuous growth of global energy demand, the environmental impact of traditional fossil fuels is becoming increasingly apparent. Solar energy, as a clean and renewable energy source, has been widely adopted. Photovoltaic systems, by converting solar energy into electricity, have become one of the important pathways to achieving sustainable development. To improve the energy conversion efficiency of solar photovoltaic power plants, the design and optimization of photovoltaic support systems are crucial.

[0003] In photovoltaic (PV) power generation systems, the tilt angle of the PV panels has a significant impact on power generation efficiency. Different geographical locations lead to variations in the angle of sunlight, therefore, a suitable tilt angle for the PV panels is essential to maximize their power generation efficiency.

[0004] Currently, many photovoltaic support systems adopt a fixed-angle design. While this design is simple in structure and low in cost, it cannot adapt to different geographical locations and installation environments.

[0005] Therefore, the market urgently needs a simple photovoltaic panel tilt angle adjustment technology to maximize adaptability to various installation environments without increasing costs excessively. This technology should be able to adapt to different terrains and environmental conditions, and provide convenience and flexibility during installation.

[0006] By optimizing the support structure and adjustment mechanism, the angle adjustment capability of photovoltaic panels can be improved to meet the power generation needs of different geographical locations. Utility Model Content

[0007] The purpose of this invention is to provide a flexible bracket photovoltaic module installation angle adjustment device to solve the aforementioned technical problem of photovoltaic modules adapting to different geographical locations and installation environments.

[0008] To solve the above-mentioned technical problems, this utility model provides a flexible bracket photovoltaic module installation angle adjustment device, which includes a column, an inclined beam and a photovoltaic module. The upper end of the column is connected to a bottom beam, one end of the bottom beam is provided with a bottom beam positioning hole, one end of the rear support is provided with a rear support positioning hole, the inclined beam is provided with a plurality of first inclined beam positioning holes and a plurality of second inclined beam positioning holes, the first inclined beam positioning holes correspond to the bottom beam positioning holes, the second inclined beam positioning holes correspond to the rear support positioning holes, a U-shaped fixing frame is provided on one side of the column, and the two ends of the inclined beam near the column are provided with first U-shaped fixing frames and second U-shaped fixing frames.

[0009] Furthermore, at least one bottom beam limiting hole is provided on the bottom beam, and the bottom beam and the column are connected by screws through the bottom beam limiting hole.

[0010] Furthermore, the bottom beam is provided with a bottom beam connecting hole at one end away from the bottom beam positioning hole, and the rear support is provided with a rear support connecting hole at one end away from the rear support positioning hole corresponding to the bottom beam connecting hole, and the bottom beam is connected to the rear support with screws.

[0011] Furthermore, the inclined beam is provided with purlins and purlin supports in the transverse direction. The purlins are connected to the inclined beam through the purlin supports. Fasteners are provided on the purlins, and the photovoltaic modules are fixed to the purlins through the fasteners.

[0012] Furthermore, the fastener includes a double-sided fastener and a single-sided fastener, with the double-sided fastener located between the single-sided fasteners. The double-sided fasteners are used to restrict the photovoltaic modules on the front and rear sides, and the single-sided fasteners are used to restrict the photovoltaic modules on one side.

[0013] Furthermore, it also includes tie rods, with adjacent inclined beams connected by tie rods, and two tie rods are provided between adjacent inclined beams, with the tie rods in a cross position.

[0014] The beneficial effects of this utility model are as follows: Compared with the prior art, the flexible bracket photovoltaic module installation angle adjustment device, according to the terrain and installation requirements, installs the column, connects one end of the bottom beam to the column through the bottom beam limiting hole, and then connects one end of the inclined beam to the bottom beam and the other end to the rear support according to the tilt angle of the photovoltaic module. The first and second inclined beam positioning holes correspond to different positioning holes to ensure the angle and position of the inclined beam. The rear support is fixed to the bottom beam through the rear support connection hole. A rope is passed through the first U-shaped fixing frame, the U-shaped fixing frame and the second U-shaped fixing frame in one go. Finally, the tightness of all connection parts is checked, and the position and angle of each component are adjusted to ensure the stability of the entire bracket structure and the optimal tilt angle of the photovoltaic module, effectively improving the power generation efficiency and forming a stable support structure that can effectively resist wind load and other external forces. Attached Figure Description

[0015] Figure 1 This is a schematic diagram of the first structure of a flexible bracket photovoltaic module installation angle adjustment device.

[0016] Figure 2 This is a schematic diagram of the second structure of a flexible bracket photovoltaic module installation angle adjustment device.

[0017] The components include: 1. Photovoltaic module; 11. Column; 110. U-shaped fixing frame; 2. Purlin; 21. Purlin bracket; 22. Single-sided fastener; 23. Double-sided fastener; 3. Inclined beam; 31. Tie rod; 32. Bottom beam; 321. First inclined beam positioning hole; 322. Bottom beam positioning hole; 323. Bottom beam connecting hole; 324. Bottom beam limiting hole; 33. Rear support; 331. Second inclined beam positioning hole; 332. Rear support positioning hole; 333. Rear support connecting hole; 34. First U-shaped fixing frame; 35. Second U-shaped fixing frame. Detailed Implementation

[0018] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only one embodiment of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0019] To make the objectives, technical solutions and advantages of this application clearer, the following detailed description is provided in conjunction with the accompanying drawings and specific embodiments.

[0020] In the following description, references to "an embodiment," "an embodiment," "an example," "example," etc., indicate that the described embodiment or example may include a particular feature, structure, characteristic, property, element, or limitation, but not every embodiment or example necessarily includes that particular feature, structure, characteristic, property, element, or limitation. Furthermore, the repeated use of the phrase "an embodiment according to this application," while possibly referring to the same embodiment, does not necessarily refer to the same embodiment.

[0021] In this embodiment: as Figure 1As shown, the system includes a column 11, an inclined beam 3, and a photovoltaic module 1. A bottom beam 32 is connected to the upper end of the column 11. One end of the bottom beam 32 has a bottom beam positioning hole 322, and one end of the rear support 33 has a rear support positioning hole 332. The inclined beam 3 has several first inclined beam positioning holes 321 and several second inclined beam positioning holes 331. The various positioning holes on the inclined beam 3 allow for flexible adjustment of the tilt angle of the photovoltaic module 1, adapting to different installation environments and geographical locations, thus improving power generation efficiency. The first inclined beam positioning holes 321 correspond to the bottom beam positioning holes 322, and the second inclined beam positioning holes 331 correspond to the bottom beam positioning holes 322. Position hole 331 corresponds to rear support positioning hole 332. A U-shaped fixing frame 110 is provided on one side of column 11. A first U-shaped fixing frame 34 and a second U-shaped fixing frame 35 are provided at both ends of the side of the inclined beam 3 near column 11. A rope is passed through the first U-shaped fixing frame 34, U-shaped fixing frame 110 and second U-shaped fixing frame 35 at one time, which improves the stability of the connection between the inclined beam 3 and column 11. Through the reasonable connection of column 11, inclined beam 3, bottom beam 32 and rear support 33, a stable support structure is formed, which can effectively resist wind load and other external forces.

[0022] At least one bottom beam limiting hole 324 is provided on the bottom beam 32. The bottom beam 32 and the column 11 are connected by screws through the bottom beam limiting hole 324. The bottom beam limiting hole 324 facilitates the precise connection between the bottom beam 32 and the column 11, prevents the bottom beam 32 from shifting, and improves the safety and durability of the structure.

[0023] The bottom beam 32 has a bottom beam connection hole 323 at one end away from the bottom beam positioning hole 322. The rear support 33 has a rear support connection hole 333 at one end away from the rear support positioning hole 332, corresponding to the bottom beam connection hole 323. The bottom beam 32 and the rear support 33 are connected by screws. The screw connection between the bottom beam 32 and the rear support 33 provides strong structural support and enhances the compressive strength and stability of the overall frame.

[0024] The inclined beam 3 is horizontally provided with purlins 2 and purlin supports 21. The purlins 2 are connected to the inclined beam 3 through the purlin supports 21. Fasteners are provided on the purlins 2, and the photovoltaic module 1 is fixed to the purlins 2 through the fasteners.

[0025] The design of purlin 2 and purlin bracket 21 provides a sturdy support platform for photovoltaic module 1, and the use of fasteners ensures the stable installation of photovoltaic module 1 and prevents the photovoltaic module 1 from shifting under external forces.

[0026] The fasteners include double-sided fasteners 23 and single-sided fasteners 22. The double-sided fasteners 23 are located between the single-sided fasteners 22. The double-sided fasteners 23 are used to restrict the photovoltaic modules 1 on the front and rear sides, and the single-sided fasteners 22 are used to restrict the photovoltaic modules 1 on one side. Through the design of the double-sided fasteners 23 and the single-sided fasteners 22, it is ensured that the photovoltaic modules 1 are not easily moved after installation, thereby improving the safety and service life of the modules.

[0027] It also includes tie rods 31, with adjacent inclined beams 3 connected by tie rods 31. Two tie rods 31 are set between adjacent inclined beams 3, and the tie rods 31 are in a cross position relationship. The use of tie rods 31 to cross-connect adjacent inclined beams 3 not only ensures the stability of the structure, but also reduces the overall weight and facilitates transportation and installation.

[0028] Workflow: Based on the terrain and installation requirements, install the column 11, connect one end of the bottom beam 32 to the column 11 through the bottom beam limiting hole 324, then connect one end of the inclined beam 3 to the bottom beam 32 and the other end to the rear support 33 according to the tilt angle of the photovoltaic module 1. The angle and position of the inclined beam 3 are ensured by using the first inclined beam positioning hole 321 and the second inclined beam positioning hole 331. The rear support 33 is fixed to the bottom beam 32 through the rear support connecting hole 333. The rope is passed through the first U-shaped fixing frame 34, the U-shaped fixing frame 110 and the second U-shaped fixing frame 35 in one go.

[0029] Install purlins 2 and purlin brackets 21 horizontally, and fix purlins 2 to inclined beams 3 through purlin brackets 21. Place photovoltaic modules 1 on purlins 2 and fix them with double-sided fasteners 23 and single-sided fasteners 22. Install tie rods 31 between adjacent inclined beams 3 to ensure that the tie rods 31 are in a cross state. Finally, check the tightness of all connections, adjust the position and angle of each component, and ensure the stability of the entire support structure and the optimal tilt angle of photovoltaic modules 1.

[0030] The above description of the disclosed embodiments enables those skilled in the art to implement or use this invention. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of the invention. Therefore, this invention is not to be limited to the embodiments shown herein, but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. A flexible support photovoltaic module installation angle adjustment device, characterized in that: The device includes a column, a rear support, an inclined beam, and photovoltaic modules. The upper end of the column is connected to a bottom beam, and one end of the bottom beam is provided with a bottom beam positioning hole. One end of the rear support is provided with a rear support positioning hole. The inclined beam is provided with a plurality of first inclined beam positioning holes and a plurality of second inclined beam positioning holes. The first inclined beam positioning holes correspond to the bottom beam positioning holes, and the second inclined beam positioning holes correspond to the rear support positioning holes. A U-shaped fixing frame is provided on one side of the column, and the two ends of the inclined beam near the column are provided with first U-shaped fixing frames and second U-shaped fixing frames.

2. The flexible bracket photovoltaic module installation angle adjustment device according to claim 1, characterized in that: The bottom beam is provided with at least one bottom beam limiting hole, and the bottom beam and the column are connected by screws through the bottom beam limiting hole.

3. The flexible support photovoltaic module installation angle adjustment device according to claim 1, characterized in that: The bottom beam is provided with a bottom beam connection hole at one end away from the bottom beam positioning hole, and the rear support is provided with a rear support connection hole at one end away from the rear support positioning hole corresponding to the bottom beam connection hole. The bottom beam is connected to the rear support with screws.

4. The flexible support photovoltaic module installation angle adjustment device according to claim 1, characterized in that: The inclined beam is provided with purlins and purlin supports in the transverse direction. The purlins are connected to the inclined beam through the purlin supports. Fasteners are provided on the purlins, and the photovoltaic modules are fixed to the purlins through the fasteners.

5. The flexible support photovoltaic module installation angle adjustment device according to claim 4, characterized in that: The fasteners include double-sided fasteners and single-sided fasteners. The double-sided fasteners are located between the single-sided fasteners. The double-sided fasteners are used to restrict the photovoltaic modules on the front and rear sides, and the single-sided fasteners are used to restrict the photovoltaic modules on one side.

6. The flexible support photovoltaic module installation angle adjustment device according to claim 1, characterized in that: It also includes tie rods, and the adjacent inclined beams are connected by tie rods. Two tie rods are provided between the adjacent inclined beams, and the tie rods are in a cross position.