Zinc-plated aluminum-magnesium plate for 500MPa photovoltaic support
By installing adjustable-spacing clamps and motor drive components on the photovoltaic bracket, the compatibility and installation efficiency issues of galvanized aluminum-magnesium sheet photovoltaic brackets are solved, enabling rapid installation of photovoltaic panels and automated angle adjustment, thus improving the flexibility and appearance quality of the bracket.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-13
- Publication Date
- 2026-04-07
AI Technical Summary
Existing galvanized aluminum-magnesium plate photovoltaic brackets suffer from problems in design and manufacturing, including complex structures, difficulty in flexibly adapting to photovoltaic panel sizes, and low installation efficiency.
Design a galvanized aluminum-magnesium plate for a 500MPa photovoltaic support. One end of the support is equipped with an adjustable-spacing clamp, and the other end of the photovoltaic panel is detachably connected to a mounting base. The angle of the photovoltaic panel is adjusted by a drive component. The clamp and the mounting base are connected by bolts, and the adjustment is automated by a motor drive component.
It improves the flexibility and versatility of photovoltaic brackets, simplifies the installation process, reduces costs and time, ensures the stability of photovoltaic panels and the accuracy of angle adjustment, and has a neat and beautiful appearance.
Smart Images

Figure CN224097640U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of photovoltaic support technology, specifically a galvanized aluminum-magnesium plate for a 500MPa photovoltaic support. Background Technology
[0002] As a crucial component of photovoltaic (PV) power generation systems, photovoltaic (PV) mounting systems bear the heavy responsibility of supporting and fixing PV panels, ensuring the stable and efficient operation of the system. Galvanized aluminum-magnesium (GAM) steel plates, with their superior performance characteristics, are gradually becoming the ideal choice for PV mounting system manufacturing. GAM is a composite material made by coating a steel plate with a high-temperature curing coating composed of elements such as zinc (Zn), aluminum (Al), and magnesium (Mg). This coating not only possesses excellent corrosion resistance, maintaining the stability and durability of the PV mounting system for extended periods in harsh environments such as humidity and salt spray, but also has self-healing capabilities. Even if cuts or scratches occur during use, an oxidation process forms a protective layer, preventing further corrosion.
[0003] However, galvanized aluminum-magnesium plate brackets often suffer from complex structures, difficulty in adapting to photovoltaic panel sizes, and low installation efficiency during the design and manufacturing process. Therefore, it is necessary to design a 500MPa galvanized aluminum-magnesium plate for photovoltaic brackets to solve these problems. Utility Model Content
[0004] The purpose of this invention is to provide a galvanized aluminum-magnesium plate for a 500MPa photovoltaic support, in order to solve the problems mentioned in the background art.
[0005] To achieve the above objectives, this utility model provides the following technical solution: a galvanized aluminum-magnesium plate for an MPa photovoltaic support, comprising a support, one end of which is provided with an adjustable-spacing clamp for movably clamping one end of a photovoltaic panel, the other end of which is detachably connected to a mounting base, the mounting base being hinged to one end of a connecting rod, the other end of which is hinged to a slider, the slider being slidably connected to the support and being able to move linearly via a drive assembly, thereby achieving angle adjustment of the photovoltaic panel.
[0006] Preferably, the clamp includes a second slide groove, a clamping block, and a second bolt. One end of the bracket is provided with two sets of second slide grooves. Each set of second slide grooves is provided with a set of slidable clamping blocks. The clamping blocks are rotatably connected to one end of the photovoltaic panel. Each set of clamping blocks is penetrated by a set of second bolts and threadedly connected to them. The second bolts are rotatably connected to the bracket.
[0007] Preferably, each end of the mounting base is connected to a set of first bolts, and each set of first bolts penetrates the mounting base and the photovoltaic panel and is threadedly connected to a set of nuts.
[0008] Preferably, the drive assembly includes a rack, a gear, a limit seat, and a motor. The rack is integrally formed on one side of the slider. The rack can mesh with the gear. The gear is rotatably connected to the limit seat mounted on the upper surface of the bracket. One end of the gear is connected to the output end of the motor.
[0009] Preferably, the slider is an I-shaped structural component, which is slidably installed in the first groove of the bracket.
[0010] Preferably, positioning holes are provided at both ends of the bracket, and the positioning holes are stepped.
[0011] Compared with the prior art, the beneficial effects of this utility model are:
[0012] 1. One end of the bracket of this utility model is provided with an adjustable clamp, which can flexibly clamp one end of the photovoltaic panel. By adjusting the spacing of the clamp, it can adapt to photovoltaic panels of different widths or sizes, ensuring that the photovoltaic panel is stably and firmly fixed on the bracket. The other end of the photovoltaic panel is detachably connected to the mounting base. This design allows the photovoltaic panel to be quickly installed or removed as needed, which is convenient for maintenance or replacement.
[0013] 2. This utility model, through the sliding clamp and adjusting the second bolt, allows the system to easily adapt to photovoltaic panels of different sizes and specifications, greatly improving the flexibility and versatility of the bracket. The mounting base and the photovoltaic panel are quickly connected by the first bolt and nut, eliminating the need for complicated installation steps or tools, thus reducing installation costs and time. The clamp and the rotating rod at one end of the photovoltaic panel are connected by a plug-in rotation, which not only ensures the stability of the photovoltaic panel during clamping but also allows the photovoltaic panel to rotate freely within a certain range to adapt to different lighting conditions.
[0014] 3. This utility model achieves automated adjustment of the photovoltaic panel angle through motor drive, greatly improving the efficiency and accuracy of adjustment. The rack and slider are integrally formed, and the gear and limit seat are rotated, making the entire drive component compact and space-saving. The I-shaped slider slides stably in the first groove and is not easy to shake, ensuring the stability and reliability of photovoltaic panel angle adjustment. The positioning holes at both ends of the bracket are stepped. This design not only facilitates the use of fasteners such as expansion screws to fix the bracket in the installation position, but also effectively hides the fasteners, making the overall appearance cleaner and more beautiful. Attached Figure Description
[0015] Figure 1 This is an exploded half-sectional view of the overall structure of this utility model;
[0016] Figure 2 This utility model Figure 1 Enlarged view of point A;
[0017] Figure 3 This utility model Figure 1 Enlarged view of point B;
[0018] Figure 4 This utility model Figure 1 Enlarged view of point C;
[0019] Figure 5 This is a side-view diagram of the overall structure of this utility model;
[0020] Figure 6 This is a side-view diagram of the overall structure of this utility model.
[0021] In the diagram: 1. Bracket, 2. Photovoltaic panel, 3. Mounting base, 4. Connecting rod, 5. Slider, 6. Rack, 7. Gear, 8. Limiting seat, 9. Motor, 10. First slide groove, 11. First bolt, 12. Nut, 13. Second slide groove, 14. Clamping block, 15. Second bolt, 16. Positioning hole. Detailed Implementation
[0022] 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 some embodiments 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.
[0023] Example 1
[0024] Please refer to Figure 1-6 As shown, this utility model provides a galvanized aluminum-magnesium plate for a 500MPa photovoltaic support, including a support 1. One end of the support 1 is provided with an adjustable-spacing clamp that can movably clamp one end of a photovoltaic panel 2. The other end of the photovoltaic panel 2 is detachably connected to a mounting base 3. The mounting base 3 is hinged to one end of a connecting rod 4, and the other end of the connecting rod 4 is hinged to a slider 5. The slider 5 is limited and slidably connected to the support 1, and can move linearly through a drive component, thereby realizing the angle adjustment of the photovoltaic panel 2.
[0025] One end of the bracket 1 is equipped with an adjustable-spacing clamp that can flexibly hold one end of the photovoltaic panel 2. By adjusting the spacing of the clamp, it can accommodate photovoltaic panels 2 of different widths or sizes, ensuring that the photovoltaic panel 2 is stably and firmly fixed on the bracket 1. The other end of the photovoltaic panel 2 is detachably connected to the mounting base 3. This design allows the photovoltaic panel 2 to be quickly installed or removed as needed, facilitating maintenance or replacement.
[0026] The mounting base 3 is hinged to one end of the connecting rod 4, allowing the connecting rod 4 to rotate within a certain range. The other end of the connecting rod 4 is hinged to the slider 5, enabling the photovoltaic panel 2 to adjust its angle around the hinge point with the clamp. The driving component drives the slider 5 to move linearly. When the slider 5 moves, the connecting rod 4 will rotate accordingly due to the hinge relationship, thereby causing the photovoltaic panel 2 to adjust its angle around the hinge point with the clamp.
[0027] With adjustable-spacing clamps and detachable mounting bases 3, the system can adapt to photovoltaic panels 2 of various sizes and specifications, greatly improving the system's flexibility and versatility. The detachable connection method makes the installation and removal of photovoltaic panels 2 more convenient and quick, reducing installation costs and maintenance difficulties. By precisely controlling the movement of the slider 5 through the drive component, the system can achieve precise adjustment of the angle of photovoltaic panels 2 to meet the needs of different lighting conditions and installation angles.
[0028] Specifically, the fixture includes a second slide groove 13, a clamping block 14, and a second bolt 15. One end of the bracket 1 is provided with two sets of second slide grooves 13. Each set of second slide grooves 13 is provided with a set of slidable clamping blocks 14. The clamping blocks 14 can be rotatably connected to one end of the photovoltaic panel 2. Each set of clamping blocks 14 is penetrated by a set of second bolts 15 and threadedly connected to them. The second bolts 15 are rotatably connected to the bracket 1. Each end of the mounting base 3 is connected with a set of first bolts 11. Each set of first bolts 11 penetrates the mounting base 3 and the photovoltaic panel 2 and is threadedly connected to a set of nuts 12.
[0029] One end of the bracket 1 is designed with two sets of symmetrical second sliding grooves 13. Each set of second sliding grooves 13 contains a slidable clamping block 14. The clamping block 14 is designed with a socket that matches the rotating rod installed at one end of the photovoltaic panel 2, allowing the clamping block 14 to be rotatably connected to the rotating rod via a plug-in connection. The second bolt 15 passes through the clamping block 14 and is rotatably connected to the bracket 1. This rotatable connection with the bracket 1 is to avoid affecting the rotation of the second bolt 15. When the second bolt 15 is rotated, due to the rotational constraint between the second bolt 15 and the bracket 1, and the threaded connection between the second bolt 15 and the clamping block 14, the clamping block 14 will slide along the second sliding groove 13, thereby adjusting its position. By adjusting the positions of the two sets of clamping blocks 14, photovoltaic panels 2 of different widths can be accommodated, ensuring that the clamping blocks 14 can accurately align and clamp the rotating rod at one end of the photovoltaic panel 2. Once the position of the clamping blocks 13 is adjusted, the rotating rod is inserted into the insertion hole of the clamping blocks 14 and maintains a rotating connection. The mounting base 3 is designed with two sets of first bolt 11 through holes, which are aligned with the reserved holes on the photovoltaic panel 2. After the first bolt 11 passes through the mounting base 3 and the photovoltaic panel 2, it is threadedly connected to the nut 12, thereby firmly fixing the mounting base 3 to the photovoltaic panel 2. This connection method is simple and effective, allowing the photovoltaic panel 2 to be quickly removed from the mounting base when needed, and also facilitating installation and maintenance.
[0030] By using the sliding clamp 14 and adjusting the second bolt 15, the system can easily adapt to photovoltaic panels 2 of different sizes and specifications, greatly improving the flexibility and versatility of the bracket 1. The mounting base 3 and the photovoltaic panel 2 are quickly connected by the first bolt 11 and nut 12, without the need for complicated installation steps or tools, reducing installation costs and time. The clamp 14 and the rotating rod at one end of the photovoltaic panel 2 are connected by a plug-in rotation, which not only ensures the stability of the photovoltaic panel 2 during the clamping process, but also allows the photovoltaic panel 2 to rotate freely within a certain range to adapt to different light conditions.
[0031] The drive assembly includes a rack 6, a gear 7, a limit seat 8, and a motor 9. The rack 6 is integrally formed on one side of the slider 5. The rack 6 can mesh with the gear 7. The gear 7 is rotatably connected to the limit seat 8 installed on the upper surface of the bracket 1. One end of the gear 7 is connected to the output end of the motor 9. The slider 5 is an I-shaped structure and is slidably installed in the first slide groove 10 opened in the bracket 1. Positioning holes 16 are opened at both ends of the bracket 1. The positioning holes 16 are stepped.
[0032] When the angle of the photovoltaic panel 2 needs to be adjusted, the motor 9 is first started, driving the gear 7 to rotate. Since the gear 7 meshes with the rack 6, the rotation of the gear 7 is converted into the linear movement of the rack 6. The rack 6 and the slider 5 are integrally formed, so the movement of the rack 6 will drive the slider 5 to move together. The slider 5 is designed as an I-shaped structure, suitable for sliding in the first slide groove 10 of the bracket 1. As the rack 6 moves, the slider 5 moves smoothly along the first slide groove 10, which is converted into the rotation of the connecting rod 4. The rotation of the connecting rod 4 ultimately pushes the photovoltaic panel 2 to rotate along its hinge point with the clamp, thereby adjusting the angle of the photovoltaic panel 2 to adapt to different solar illumination conditions.
[0033] Driven by motor 9, the angle of photovoltaic panel 2 is automatically adjusted, which greatly improves the efficiency and accuracy of adjustment. The rack 6 and slider 5 are integrally formed, and the gear 7 is rotated and connected to the limit seat 8, making the entire drive assembly compact and space-saving. The I-shaped slider 5 slides stably in the first slide groove 10 and is not easy to shake, ensuring the stability and reliability of the angle adjustment of photovoltaic panel 2. The positioning holes 16 at both ends of the bracket 1 are stepped. This design not only makes it easy to use fasteners such as expansion screws to fix the bracket 1 in the installation position, but also effectively hides the fasteners, making the overall appearance cleaner and more beautiful.
[0034] Working principle: When the second bolt 15 is rotated, due to the rotational constraint between the second bolt 15 and the bracket 1 and the threaded connection between the second bolt 15 and the clamping block 14, the clamping block 14 will slide along the second slide groove 13, thereby adjusting its position. By adjusting the position of the two sets of clamping blocks 14, it can accommodate photovoltaic panels 2 of different widths, ensuring that the clamping block 14 can accurately align and clamp the rotating rod at one end of the photovoltaic panel 2. Once the position of the clamping block 13 is adjusted, the rotating rod is inserted into the insertion hole of the clamping block 14 to maintain a rotational connection. The mounting base 3 is designed with two sets of first bolt 11 through holes, which are aligned with the reserved holes on the photovoltaic panel 2. After the first bolt 11 passes through the mounting base 3 and the photovoltaic panel 2, it is threadedly connected to the nut 12, thereby firmly fixing the mounting base 3 to the photovoltaic panel 2.
[0035] When the angle of the photovoltaic panel 2 needs to be adjusted, the motor 9 is started first, which drives the gear 7 to start rotating. Since the gear 7 meshes with the rack 6, the rotation of the gear 7 is converted into the linear movement of the rack 6. The rack 6 and the slider 5 are integrally formed, so the movement of the rack 6 will drive the slider 5 to move together. The slider 5 is designed as an I-shaped structure, which is suitable for sliding in the first slide groove 10 of the bracket 1. As the rack 6 moves, the slider 5 moves smoothly along the first slide groove 10, which is converted into the rotation of the connecting rod 4. The rotation of the connecting rod 4 finally pushes the photovoltaic panel 2 to rotate along its hinge point with the clamp, thereby adjusting the angle of the photovoltaic panel 2 to adapt to different solar illumination conditions.
[0036] The contents not described in detail in this specification are existing technologies known to those skilled in the art.
[0037] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A galvanized aluminum-magnesium plate for a 500MPa photovoltaic support, comprising a support (1), characterized in that: One end of the bracket (1) is provided with an adjustable clamp that can hold one end of the photovoltaic panel (2). The other end of the photovoltaic panel (2) is detachably connected to a mounting base (3). The mounting base (3) is hinged to one end of a connecting rod (4), and the other end of the connecting rod (4) is hinged to a slider (5). The slider (5) is limited and slidably connected to the bracket (1) and can move linearly through a drive component, thereby achieving angle adjustment of the photovoltaic panel (2).
2. The galvanized aluminum-magnesium plate for a 500MPa photovoltaic support according to claim 1, characterized in that: The clamp includes a second slide groove (13), a clamping block (14), and a second bolt (15). One end of the bracket (1) is provided with two sets of second slide grooves (13). Each set of second slide grooves (13) is provided with a set of slidable clamping blocks (14). The clamping blocks (14) can be rotatably connected to one end of the photovoltaic panel (2). Each set of clamping blocks (14) is penetrated by a set of second bolts (15) and threadedly connected to them. The second bolts (15) are rotatably connected to the bracket (1).
3. The galvanized aluminum-magnesium plate for a 500MPa photovoltaic support according to claim 1, characterized in that: Each end of the mounting base (3) is connected to a set of first bolts (11), and each set of first bolts (11) penetrates the mounting base (3) and the photovoltaic panel (2) and is threadedly connected to a set of nuts (12).
4. The galvanized aluminum-magnesium plate for a 500MPa photovoltaic support according to claim 1, characterized in that: The drive assembly includes a rack (6), a gear (7), a limiting seat (8), and a motor (9). The rack (6) is integrally formed on one side of the slider (5). The rack (6) can mesh with the gear (7). The gear (7) is rotatably connected to the limiting seat (8) mounted on the upper surface of the bracket (1). One end of the gear (7) is connected to the output end of the motor (9).
5. A galvanized aluminum-magnesium plate for a 500MPa photovoltaic support according to claim 1, characterized in that: The slider (5) is an I-shaped structural component, which is slidably installed in the first groove (10) opened in the bracket (1).
6. A galvanized aluminum-magnesium plate for a 500MPa photovoltaic support according to claim 1, characterized in that: The bracket (1) has positioning holes (16) at both ends, and the positioning holes (16) are stepped.