Solar panel mounting bracket for zero-carbon building
By designing rotatable frame one and frame two, combined with adjusting base and screw to adjust the angle, the problem of inconvenient on-site welding of existing solar panel installation brackets is solved, realizing convenient installation and flexible adjustment, and improving applicability and universality.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- JIANGXI CONSTR VOCATIONAL & TECH COLLEGE
- Filing Date
- 2025-05-20
- Publication Date
- 2026-05-15
AI Technical Summary
Existing solar panel mounting brackets are assembled on-site by welding individual steel pieces, lacking an integrated design. This makes installation inconvenient and prevents flexible adjustment of the optimal light-sensing angle, resulting in poor adaptability, especially when changing locations.
The design employs two rotatable frames, a hinged structure combining support arms and fixing blocks, enabling integrated installation without on-site welding. The angle can be adjusted via adjusting seats and screws to adapt to different ground conditions and solar panel specifications, while sliding blocks and limit strips ensure stability.
It enables convenient installation and adjustment, is suitable for different regions and ground conditions, improves the universality and flexibility of installation, is applicable to solar panels of different specifications, and simplifies on-site operation.
Smart Images

Figure CN224249625U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the technical field of solar panel mounting brackets, specifically relating to a solar panel mounting bracket for zero-carbon buildings. Background Technology
[0002] With increasing environmental awareness, the development and utilization of environmentally friendly new energy sources are also growing, especially the technology for developing and utilizing solar panels, which is quite mature. The concept of zero-carbon buildings, combined with solar energy, has gained widespread popularity. Zero-carbon buildings are buildings with zero carbon emissions that can operate independently of the power grid, relying on solar or wind power. These buildings consume no energy from coal, oil, or electricity; all their energy needs throughout the year are met by renewable energy generated on the site.
[0003] Installing solar panels in zero-carbon buildings requires a large number of panels, which necessitates the use of mounting brackets. However, existing mounting brackets are assembled on-site by welding individual steel pieces, resulting in a non-integrated design that limits their installation and use. They are not convenient for quick on-site installation and cannot be adapted to different regions to achieve the optimal light-sensing angle. Furthermore, welded mounting brackets are not ideal for changing locations. Therefore, we propose a solar panel mounting bracket for zero-carbon buildings. Utility Model Content
[0004] The purpose of this utility model is to provide a solar panel mounting bracket for zero-carbon buildings, in order to solve the problems mentioned in the background art, that existing mounting brackets are assembled by welding individual steel pieces on the installation site, and the mounting brackets are not an integral design, which has certain limitations in installation and use. They are not convenient for quick on-site installation and use, and cannot be adapted to different regions to adjust for the optimal light-sensing angle. Welded mounting brackets are not very good when changing locations.
[0005] To achieve the above objectives, this utility model provides the following technical solution: a solar panel mounting bracket for a zero-carbon building, comprising a frame body one, wherein positioning plates are movably mounted at the four corners of the lower surface of the frame body one, and several expansion screws are passed through the positioning plates; a frame body two is rotatably mounted on the frame body one; fixing blocks one are fixedly mounted on both sides of the upper surface of the frame body two; a support arm is mounted on the side of the fixing block one; a fixing block two is hinged to the end of the support arm away from the fixing block one; a sliding block is fixedly mounted on the lower surface of the fixing block two; the frame body... A sliding groove is provided on one surface for the sliding block to slide. A strip-shaped hole is provided on the lower surface of the frame directly opposite the sliding groove, and an adjusting bolt passes through the strip-shaped hole. An adjusting thread groove is provided on the lower surface of the sliding block for the adjusting bolt to be screwed in. Several solar panel mounting plates are provided on the second frame. Assembly blocks are fixedly installed on both sides of the lower surface of the solar panel mounting plates. The assembly blocks on the uppermost solar panel mounting plate are fixedly installed on the surface of the second frame, while the assembly blocks on the solar panel mounting plates at other positions are movably arranged on the second frame.
[0006] The above solution utilizes a rotatable, interlocking frame system (frame 1 and frame 2) with an integrated design, eliminating the need for on-site assembly and welding. This facilitates easy operation and installation. The angle between frame 1 and frame 2 can be adjusted via the hinge between the support arm and fixing blocks 1 and 2, allowing for optimal light-sensing angle adjustments when relocating after disassembly. This convenient operation enhances versatility. Multiple solar panel mounting plates, except for the topmost one, allow for sliding and adjusting of all other positions, accommodating solar panels of different sizes and greatly expanding the applicability. Furthermore, the use of adjusting bases and screws enables installation on uneven surfaces.
[0007] In a preferred embodiment, an adjustment seat is fixedly installed at each of the four corners of the lower surface of the frame, and an adjustment screw is threaded onto the lower surface of the adjustment seat. The bottom end of the adjustment screw is rotatably connected to a positioning plate at the same position.
[0008] By using the above solution, the adjusting seat and adjusting screw can be used together. When used on uneven ground, the position and height of the positioning plate can be finely adjusted by rotating the adjusting screw, which can better enable installation and use on uneven ground and improve the versatility of use.
[0009] In a preferred embodiment, a limiting strip is fixedly installed on the side of the sliding block, and a limiting groove is formed on the inner wall of the sliding groove on the frame, with the limiting strip slidably installed on the inner wall of the limiting groove.
[0010] By adopting the above scheme, the sliding of the limiting strip within the limiting groove can limit the sliding process of the sliding block, ensuring sliding stability while preventing the sliding block from leaving the sliding groove, thus achieving a good limiting effect.
[0011] In a preferred embodiment, a washer is fitted around the adjusting bolt, and the washer is fitted between the lower surface of the frame body and the head end of the adjusting bolt. A locking block is fixedly installed on the surface of the washer, and several locking grooves are formed on the lower surface of the frame body.
[0012] By adopting the above solution, the use of the washers can avoid direct contact between the adjusting bolts and the frame, thus providing a good protective effect and preventing squeezing damage. Furthermore, by using the locking blocks to engage with the slots, the position of the sliding blocks can be further limited to prevent accidental movement.
[0013] In a preferred embodiment, the second frame is provided with an assembly slot, and the movably disposed assembly block is slidably installed on the inner wall of the assembly slot. A strip-shaped hole is provided on the lower surface of the second frame directly opposite the assembly slot. A fixing rod is fixedly installed on the surface of the assembly block located in the assembly slot. The fixing rod passes through the strip-shaped hole. The surface of the fixing rod has threads and a nut is threadedly installed. The nut is fitted and disposed on the surface of the second frame.
[0014] Using the above solution, a fixing rod is used in conjunction with a nut. When the nut is tightened onto the fixing rod, the position of the movable assembly block can be locked. When the nut is unscrewed, the position of the movable assembly block is unlocked and it can slide in the assembly slot, which facilitates adaptive adjustment according to the size and specifications of the solar panel.
[0015] In a preferred embodiment, the cross-sectional shape of the movably configured assembly block is specifically trapezoidal.
[0016] By adopting the above solution and setting the cross-section to a trapezoidal shape, the assembly block can be prevented from detaching from the assembly slot, thus achieving a good limiting effect.
[0017] Compared with the prior art, the beneficial effects of this utility model are:
[0018] The solar panel mounting bracket of this zero-carbon building is designed as an integral unit with two rotatable and interoperable frame bodies, eliminating the need for on-site assembly and welding. It is easy to operate and unfold, and convenient to install and use. The angle between frame body one and frame body two can be adjusted by the hinge between the support arm and fixing block one and fixing block two. It can be adjusted to the optimal light-sensing angle when used in different locations after disassembly, making operation and adjustment convenient and improving versatility.
[0019] The solar panel mounting bracket for this zero-carbon building features multiple solar panel mounting plates. Except for the topmost plate, all the other plates can be slidably adjusted to accommodate solar panels of different sizes, greatly expanding its applicability. Furthermore, by using the adjustment base in conjunction with the adjustment screw, it can be installed on uneven ground. Attached Figure Description
[0020] Figure 1 This is a schematic diagram of the structure of this utility model;
[0021] Figure 2 This is a structural schematic diagram of the present invention from another angle;
[0022] Figure 3 This is a schematic diagram of the positioning plate of this utility model;
[0023] Figure 4 This is a structural schematic diagram of a partial cross-section of the frame of this utility model;
[0024] Figure 5 This is a schematic diagram of the structure of the sliding block of this utility model;
[0025] Figure 6 This is a schematic diagram of the structure of frame two of this utility model;
[0026] Figure 7 This is a schematic diagram of the structure of the fixing rod and nut of this utility model.
[0027] In the diagram: 1. Frame 1; 2. Positioning plate; 3. Expansion bolt; 4. Frame 2; 5. Fixing block 1; 6. Support arm; 7. Fixing block 2; 8. Sliding block; 9. Adjusting bolt; 10. Solar panel mounting plate; 11. Assembly block; 12. Adjusting seat; 13. Adjusting screw; 14. Limiting strip; 15. Washer ring; 16. Locking block; 17. Nut; 18. Fixing rod. Detailed Implementation
[0028] Please see Figure 1-7This utility model provides a solar panel mounting bracket for zero-carbon buildings, including a frame body 1. Positioning plates 2 are movably installed at the four corners of the lower surface of the frame body 1. Several expansion screws 3 pass through the positioning plates 2. A frame body 4 is rotatably mounted on the frame body 1. Fixing blocks 5 are fixedly installed on both sides of the upper surface of the frame body 4. Support arms 6 are installed on the sides of the fixing blocks 5. A fixing block 7 is hinged to the end of the support arm 6 away from the fixing blocks 5. A sliding block 8 is fixedly installed on the lower surface of the fixing block 7. The surface of the frame body 1 has openings for the sliding block 8 to slide. The sliding groove is movable. A strip hole is opened on the lower surface of the frame 1 directly opposite the sliding groove, and an adjusting bolt 9 passes through the strip hole. The lower surface of the sliding block 8 is opened with an adjusting thread groove for the adjusting bolt 9 to be screwed in. Several solar panel mounting plates 10 are provided on the frame 2. Assembly blocks 11 are fixedly installed on both sides of the lower surface of the solar panel mounting plate 10. The assembly block 11 on the uppermost solar panel mounting plate 10 is fixedly installed on the surface of the frame 2. The assembly blocks 11 on the other solar panel mounting plates 10 are movably set on the frame 2.
[0029] By setting up rotatable and interoperable frame 1 and frame 2 4, the integrated design eliminates the need for on-site assembly and welding, making operation and deployment convenient and easy to install and use. The angle between frame 1 and frame 2 4 can be adjusted through the hinge between the support arm 6, fixing block 1 5, and fixing block 2 7. This allows for adjustment of the optimal light-sensing angle when changing locations after disassembly, improving versatility and ease of operation. By setting up multiple solar panel mounting plates 10, except for the topmost one, the positions of the other solar panel mounting plates 10 can be slidably adjusted, thus accommodating the installation of solar panels of different sizes and greatly expanding the applicability. Furthermore, by using the adjustment seat 12 in conjunction with the adjustment screw 13, it can be installed on uneven ground.
[0030] Adjustment seats 12 are fixedly installed at the four corners of the lower surface of the frame 1. Adjustment screws 13 are threaded onto the lower surface of the adjustment seats 12. The bottom end of the adjustment screws 13 is rotatably connected to the positioning plate 2 at the same position. By using the adjustment seats 12 in conjunction with the adjustment screws 13, the position of the positioning plate 2 can be finely adjusted by rotating the adjustment screws 13 when used on uneven ground. This allows for better installation and use on uneven ground, improving the versatility of use.
[0031] A limiting strip 14 is fixedly installed on the side of the sliding block 8. A limiting groove is opened on the inner wall of the sliding groove on the frame 1. The limiting strip 14 is slidably installed on the inner wall of the limiting groove. The limiting strip 14 slides in the limiting groove, which can limit the sliding process of the sliding block 8, ensuring the sliding stability while preventing the sliding block 8 from leaving the sliding groove, thus achieving a good limiting effect.
[0032] An adjusting bolt 9 is fitted with a washer 15. The washer 15 is fitted between the lower surface of the frame 1 and the head of the adjusting bolt 9. A locking block 16 is fixedly installed on the surface of the washer 15. Several locking grooves are opened on the lower surface of the frame 1. The use of the washer 15 can avoid direct contact between the adjusting bolt 9 and the frame 1, which can play a good protective role and avoid squeezing damage. The locking block 16 can be locked into the locking groove to strengthen the position limit of the sliding block 8 and prevent accidental movement.
[0033] The frame 2 4 has an assembly slot. The movable assembly block 11 is slidably installed on the inner wall of the assembly slot. The lower surface of the frame 2 4 has a strip hole 2 opposite to the assembly slot. A fixing rod 18 is fixedly installed on the surface of the assembly block 11 located in the assembly slot. The fixing rod 18 passes through the strip hole. The surface of the fixing rod 18 has threads and a nut 17 is installed on the threads. The nut 17 is fitted and arranged on the surface of the frame 2 4. The fixing rod 18 is used in conjunction with the nut 17. When the nut 17 is screwed on the fixing rod 18, the position of the movable assembly block 11 can be locked. When the nut 17 is unscrewed, the position of the movable assembly block 11 is unlocked and it can slide in the assembly slot, which is convenient for adaptive adjustment according to the size of the solar panel.
[0034] The cross-sectional shape of the assembly block 11 in the activity setting is trapezoidal. By setting the cross-section to trapezoidal, the assembly block 11 can be prevented from leaving the assembly slot, thus achieving a good limiting effect.
[0035] During use, the positioning plate 2 is fine-tuned according to the flatness of the zero-carbon building floor. During fine-tuning, the adjusting screw 13 is rotated. The rotation of the adjusting screw 13 will cause the positioning plate 2 to move slightly up and down. After adjusting to the appropriate position, the expansion screw 3 is passed through the positioning plate 2 to fix the frame 1. After fixing, the angle of the frame 2 4 is adjusted according to the optimal light-sensing angle. During adjustment, the adjusting bolt 9 is unscrewed, and the washer 15 is removed. At this time, the sliding block 8 is unlocked. Holding the fixing block 2 7, the sliding block 8 moves within the sliding groove, causing the support arm 6 to swing, thereby allowing the frame to... After adjusting the angle to the required angle, place the washer 15 on the surface of the adjusting bolt 9 and screw the adjusting bolt 9 into the adjusting thread groove on the sliding block 8. At this time, the washer 15 drives the locking block 16 to lock into the groove, thereby locking the position. Then, adjust the position of the movable solar panel mounting plate 10 according to the size of the solar panel. When adjusting, unscrew the nut 17. At this time, the movable solar panel mounting plate 10 is unlocked and can slide and adjust its position on the surface of the frame. After adjusting the position, screw the nut 17 on to lock it, and then install the solar panel.
Claims
1. A solar panel mounting bracket for zero-carbon buildings, characterized in that: The system includes a frame 1 (1), with positioning plates (2) movably installed at the four corners of the lower surface of the frame 1 (1). Several expansion screws (3) are installed on the positioning plates (2). A frame 2 (4) is rotatably installed on the frame 1 (1). Fixing blocks 1 (5) are fixedly installed on both sides of the upper surface of the frame 2 (4). Support arms (6) are installed on the sides of the fixing blocks 1 (5). Fixing blocks 2 (7) are hinged to the end of the support arms (6) away from the fixing blocks 1 (5). A sliding block (8) is fixedly installed on the lower surface of the fixing blocks 2 (7). A sliding groove for the sliding blocks (8) to slide is opened on the surface of the frame 1 (1). The lower surface of the frame one (1) is provided with a strip hole one facing the sliding groove, and an adjusting bolt (9) is inserted through the strip hole one. The lower surface of the sliding block (8) is provided with an adjusting thread groove for the adjusting bolt (9) to be screwed in. The frame two (4) is provided with several solar panel mounting plates (10). Assembly blocks (11) are fixedly installed on both sides of the lower surface of the solar panel mounting plate (10). The assembly block (11) on the uppermost solar panel mounting plate (10) is fixedly installed on the surface of the frame two (4), and the assembly blocks (11) on the solar panel mounting plate (10) at other positions are movably arranged on the frame two (4).
2. The solar panel mounting bracket for zero-carbon buildings according to claim 1, characterized in that: Adjustment seats (12) are fixedly installed at the four corners of the lower surface of the frame (1). Adjustment screws (13) are threadedly installed on the lower surface of the adjustment seats (12). The bottom end of the adjustment screws (13) is rotatably connected to the positioning plate (2) at the same position.
3. The solar panel mounting bracket for zero-carbon buildings according to claim 1, characterized in that: A limiting strip (14) is fixedly installed on the side of the sliding block (8), and a limiting groove is opened on the inner wall of the sliding groove on the frame (1). The limiting strip (14) is slidably installed on the inner wall of the limiting groove.
4. The solar panel mounting bracket for zero-carbon buildings according to claim 1, characterized in that: The adjusting bolt (9) is fitted with a washer (15), which is attached between the lower surface of the frame (1) and the head end of the adjusting bolt (9). A locking block (16) is fixedly installed on the surface of the washer (15), and several locking grooves are opened on the lower surface of the frame (1).
5. The solar panel mounting bracket for zero-carbon buildings according to claim 1, characterized in that: The frame 2 (4) has an assembly slot. The movably mounted assembly block (11) is slidably installed on the inner wall of the assembly slot. The lower surface of the frame 2 (4) has a strip hole 2 facing the assembly slot. A fixing rod (18) is fixedly installed on the surface of the assembly block (11) located in the assembly slot. The fixing rod (18) passes through the strip hole. The surface of the fixing rod (18) has threads and a nut (17) is threaded on it. The nut (17) is attached to the surface of the frame 2 (4).
6. The solar panel mounting bracket for zero-carbon buildings according to claim 1, characterized in that: The cross-sectional shape of the assembly block (11) in the activity setting is specifically trapezoidal.