Simple aluminum alloy roof photovoltaic support

The photovoltaic bracket designed with aluminum alloy material and rotary connection structure solves the problems of complex installation, heavy weight and difficult maintenance of traditional bracket systems, and achieves stability and adjustable angles, improving the installation efficiency of photovoltaic modules and the durability of the brackets.

CN223274044UActive Publication Date: 2025-08-26KUNSHAN COMBES NEW ENERGY TECH CO LTD
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Patent Information

Application Number
CN202422295220.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-20
Publication Date
2025-08-26
Estimated Expiration
2034-09-20

AI Technical Summary

Technical Problem

Traditional photovoltaic bracket systems are complex to install, heavy weight, difficult to maintain, and cannot be lightened and adjusted, resulting in high construction costs, heavy roof burden and inconvenient maintenance.

Method used

The rear column and support bars are made of aluminum alloy material, designed as a rotatable connection structure, combined with the joints and bolts to fix the bracket, realize stable connection and angle adjustment of the bracket, support the bars to disperse the load, and provide a stable installation foundation.

Benefits of technology

It realizes stable installation of photovoltaic modules and adjustable angles, reduces local stress concentration, improves the stability and durability of the bracket, and reduces construction difficulty and maintenance costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides an aluminum alloy simple roof photovoltaic support which comprises a front base, a rear stand column, an oblique beam, a supporting wingceltis bar and a photovoltaic assembly, the front base is fixedly installed at the front end of the oblique beam, and the rear stand column is fixedly installed at the rear end of the oblique beam; supporting wingceltis strips are fixedly installed at the two ends of the surface of the oblique beam. A photovoltaic module is fixedly mounted in the supporting wingceltis strip; the front base and the rear stand column are fixedly installed on the surface of the top of a building. Due to the arrangement of the oblique beams and the supporting wingceltis strips, pressure cannot be caused to a building, installation is easy, stability is high, and the angle can be adjusted.
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Description

Technical Field

[0001] The utility model relates to the technical field of roof photovoltaic brackets, in particular to an aluminum alloy simple roof photovoltaic bracket. Background Art

[0002] With the growing global demand for renewable energy, solar photovoltaic technology has become a vital energy solution. As the core component of solar power generation systems, the effective installation and support of photovoltaic modules are crucial to their performance. To ensure efficient operation of photovoltaic modules, developing photovoltaic mounting systems that adapt to various roof structures has become a major technical challenge.

[0003] Traditional photovoltaic mounting systems are typically composed of complex metal frames and mounting components. These systems may encounter the following problems during design and installation:

[0004] Installation complexity: The installation of traditional bracket systems usually requires precise measurements and professional installation techniques, which increases construction difficulty and cost.

[0005] Weight issue: The materials used in traditional brackets are heavy and may cause additional burden on the roof structure.

[0006] Difficult maintenance: The complex structure and component design make subsequent maintenance and adjustment more difficult.

[0007] Therefore, it is very necessary to invent a simple aluminum alloy roof photovoltaic bracket. Utility Model Content

[0008] In order to solve the above technical problems, the utility model provides an aluminum alloy simple roof photovoltaic bracket to address the problems of existing structures such as the lack of lightweight structure, complex installation, poor stability, and inability to adjust the angle. The aluminum alloy simple roof photovoltaic bracket includes a front base, a rear column, an inclined beam, a support bar, and a photovoltaic module, wherein: the front end of the inclined beam is fixedly mounted with the front base, and the rear end of the inclined beam is fixedly mounted with the rear column; the support bar is fixedly mounted at both ends of the surface of the inclined beam; and the photovoltaic module is fixedly mounted inside the support bar.

[0009] The front base and the rear column are fixedly installed on the surface of the top of the building.

[0010] The rear column includes an inclined beam connecting seat, a supporting column, a building connecting seat and fixing bolts, and the inclined beam connecting seat is fixedly installed on the bottom of the inclined beam, and the building connecting seat is fixedly installed on the surface of the top of the building by fixing bolts; the supporting column is fixedly installed on the inclined beam connecting seat and the building connecting seat.

[0011] The supporting sandalwood bar includes a sandalwood bar, a sandalwood bar pressure block, a pressure block tightening bolt, an assembly edge pressure block and an assembly tightening bolt, and the sandalwood bar is pressed down on the inclined beam by the sandalwood bar pressure block, and is pressed down and fixed by the pressure block tightening bolt; the assembly edge pressure block is fixedly installed on the surface of the sandalwood bar by the assembly tightening bolt, and the assembly tightening bolt is installed between the sandalwood bar and the assembly edge pressure block.

[0012] The sandalwood bar includes a first section of sandalwood bar, a second section of sandalwood bar, a sandalwood bar connector and a locking screw, and one end of the first section of sandalwood bar and the second section of sandalwood bar are in contact with each other. The sandalwood bar connector is installed on the outer side of the contact point between the first section of sandalwood bar and the second section of sandalwood bar, and is connected and fixed by a locking screw.

[0013] The support column inside the rear column is made of aluminum alloy metal column, and the support column can rotate inside the inclined beam connection seat and the building connection seat, and is tightened and fixed by bolts; the inclined beam connection seat can rotate at the top of the support column, and at the same time can drive the inclined beam to rotate accordingly, which has the following functions: ① Support the inclined beam: The rear column is fixedly installed at the rear end of the inclined beam to provide support for the inclined beam and maintain the stability and structural strength of the photovoltaic bracket; ② Connecting to the top of the building: The rear column is fixed to the surface of the top of the building through the building connection seat and fixing bolts, firmly connecting the bracket to the roof to prevent the bracket from shifting or collapsing due to wind or other external forces; ③ Adjusting the angle: The support column can rotate inside the inclined beam connection seat and the building connection seat, and is tightened and fixed by bolts to adjust the installation angle of the photovoltaic module, which enables the photovoltaic bracket to adapt to different installation requirements or optimize the lighting angle of the photovoltaic module; ④ Providing a stable installation foundation: The design of the rear column ensures that the entire bracket system can evenly distribute the load after installation, reduce local stress concentration, and thus improve the durability and safety of the bracket.

[0014] The supporting bars inside the bars are made of several aluminum alloy bars, and a groove is provided at the top of the bars. The bolt head of the component clamping bolt slides inside it, and the component pressure block is fixed to the bar through the nut. The component clamping bolt can drive the pressure block to press down and clamp the photovoltaic component; the bottom of the bar is provided with two grooves, and the bar pressure block is pressed down by the pressure block clamping bolt to fix it on the inclined beam; the bars can be connected to each other through the bar connectors, which have the following functions: ① Supporting photovoltaic components: The supporting bar provides a supporting surface to fix the photovoltaic component on the inclined beam. 1. They ensure the stable position of the photovoltaic modules on the bracket and prevent the modules from moving or tilting; 2. Distribute the load: The support bars help disperse the load applied by the photovoltaic modules, so that the pressure is evenly distributed on the diagonal beams, avoiding localized stress and structural damage; 3. Provide fixing points: The module edge blocks and module clamping bolts installed in the support bars can tighten the photovoltaic modules, ensuring that the modules are firmly fixed on the bars and preventing loosening caused by wind or vibration; 4. Adjust and optimize the installation angle: By installing the support bars, the angle of the photovoltaic modules can be optimized to ensure the best light reception effect. This is very important for improving the power generation efficiency of photovoltaic modules; 5. Enhance structural stability: The support bars provide additional structural support on the diagonal beams, which helps to enhance the stability and durability of the entire photovoltaic bracket system.

[0015] Compared with the prior art, the present invention has the following beneficial effects:

[0016] 1. The setting of the rear column of the present invention has the following functions: ① Supporting the inclined beam: The rear column is fixedly installed at the rear end of the inclined beam to provide supporting force for the inclined beam and maintain the stability and structural strength of the photovoltaic bracket; ② Connecting to the top of the building: The rear column is fixed to the surface of the top of the building through the building connection seat and fixing bolts, firmly connecting the bracket to the roof to prevent the bracket from shifting or collapsing due to wind or other external forces; ③ Adjusting the angle: The support column can rotate inside the inclined beam connection seat and the building connection seat, and is tightened and fixed by bolts to adjust the installation angle of the photovoltaic module, which enables the photovoltaic bracket to adapt to different installation requirements or optimize the lighting angle of the photovoltaic module; ④ Providing a stable installation foundation: The design of the rear column ensures that the entire bracket system can evenly distribute the load after installation, reduce local stress concentration, and thus improve the durability and safety of the bracket.

[0017] 2. The setting of the support bars of the utility model has the following functions: ① supporting photovoltaic modules: the support bars provide a supporting surface to fix the photovoltaic modules on the inclined beams. They ensure the stable position of the photovoltaic modules on the brackets and prevent the modules from moving or tilting; ② dispersing the load: the support bars help disperse the load applied by the photovoltaic modules, so that the pressure is evenly distributed on the inclined beams, avoiding local excessive stress and causing structural damage; ③ providing fixing points: the module edge blocks and module clamping bolts installed in the support bars can tighten the photovoltaic modules, ensure that the modules are firmly fixed on the bars, and prevent loosening caused by wind or vibration; ④ adjusting and optimizing the installation angle: by installing the support bars, the angle of the photovoltaic modules can be optimized to ensure the best light reception effect, which is very important for improving the power generation efficiency of the photovoltaic modules; ⑤ enhancing structural stability: the support bars provide additional structural support on the inclined beams, which helps to enhance the stability and durability of the entire photovoltaic bracket system. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 It is a structural diagram of the present utility model.

[0019] Figure 2 It is an enlarged view of point A of the present utility model.

[0020] Figure 3 It is an enlarged view of point B of the present utility model.

[0021] Figure 4 It is a connection diagram of the supporting rods of the utility model.

[0022] In the picture:

[0023] Building roof 1, front base 2, rear column 3, inclined beam connecting seat 31, support column 32, building connecting seat 33, fixing bolt 34, inclined beam 4, supporting sandalwood 5, sandalwood 51, first section sandalwood 511, second section sandalwood 512, sandalwood connecting piece 513, locking screw 514, sandalwood pressing block 52, pressing block tightening bolt 53, component edge pressing block 54, component tightening bolt 55, photovoltaic component 6. DETAILED DESCRIPTION

[0024] In order to help those skilled in the art better understand the present invention, the following will clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative work should fall within the scope of protection of the present invention.

[0025] As attached Figure 1 To the attached Figure 3 shown.

[0026] The utility model provides an aluminum alloy simple roof photovoltaic bracket, which includes a front base 2, a rear column 3, an inclined beam 4, a supporting bar 5 and a photovoltaic module 6, wherein: the front end of the inclined beam 4 is fixedly installed with the front base 2, and the rear end of the inclined beam 4 is fixedly installed with the rear column 3; the supporting bars 5 are fixedly installed at both ends of the surface of the inclined beam 4; and the photovoltaic module 6 is fixedly installed inside the supporting bar 5.

[0027] The front base 2 and the rear column 3 are fixedly mounted on the surface of the roof 1 of the building.

[0028] The rear column 3 includes an inclined beam connecting seat 31, a support column 32, a building connecting seat 33 and a fixing bolt 34, and the inclined beam connecting seat 31 is fixedly installed at the bottom of the inclined beam 4, and the building connecting seat 33 is fixedly installed on the surface of the building roof 1 through the fixing bolt 34; the support column 32 is fixedly installed on the inclined beam connecting seat 31 and the building connecting seat 33.

[0029] The supporting rail 5 includes a rail 51, a rail pressure block 52, a pressure block clamping bolt 53, an assembly edge pressure block 54 and an assembly clamping bolt 55, and the rail 51 is pressed downward on the inclined beam 4 by the rail pressure block 52, and is clamped and fixed downward by the pressure block clamping bolt 53; the assembly edge pressure block 54 is fixedly installed on the surface of the rail 51 by the assembly clamping bolt 55, and the assembly clamping bolt 55 is installed between the rail 51 and the assembly edge pressure block 54.

[0030] The sandalwood bar 51 includes a first sandalwood bar 511, a second sandalwood bar 512, a sandalwood bar connector 513 and a locking screw 514, and one end of the first sandalwood bar 511 and the second sandalwood bar 512 are in contact with each other. The sandalwood bar connector 513 is installed on the outer side of the contact point between the first sandalwood bar 511 and the second sandalwood bar 512, and is connected and fixed by a locking screw 514.

[0031] Overview: This aluminum alloy simple rooftop photovoltaic support is designed to provide a stable mounting platform for photovoltaic modules, ensuring their stability and effectiveness on the roof. The support system includes a front base 2, rear columns 3, diagonal beams 4, support bars 5, and photovoltaic modules 6. The following details its working principle.

[0032] 1. Bracket installation: The installation of the bracket starts from the roof. The front base 2 and the rear column 3 are fixed to the surface of the building roof 1. The front base 2 is connected through the front end of the inclined beam 4, and the rear column 3 is fastened to the roof surface through the building connection base 33 and the fixing bolts 34. These components ensure the overall stability and reliability of the bracket system.

[0033] 2. Inclined beam support: The inclined beam 4 connects the front base 2 and the rear column 3 to form an inclined support structure. The design of the inclined beam 4 enables it to bear the weight of the photovoltaic module and distribute its load evenly to the base part of the bracket. The two ends of the inclined beam 4 are fixed by supporting bars 5 to form a solid support frame.

[0034] 3. Support bars to fix photovoltaic modules: Support bars 5 are located at both ends of the inclined beam 4, and photovoltaic modules 6 are fixed inside. Support bars 5 not only provide a solid supporting surface, but also fix photovoltaic modules 6 on the bars through module pressure blocks 54 and module clamping bolts 55. The module pressure blocks 54 and clamping bolts 55 ensure that the photovoltaic modules are firmly immovable to avoid loosening or displacement of the modules due to wind or vibration.

[0035] 4. Angle adjustment: The support column 32 in the rear column 3 can rotate inside the inclined beam connection seat 31 and the building connection seat 33, thereby adjusting the installation angle of the photovoltaic module. This function enables the bracket to optimize the lighting angle of the photovoltaic module according to actual needs and improve the power generation efficiency of the photovoltaic module.

[0036] 5. Load distribution and stability: The design of the support bar 5 helps to evenly distribute the load of the photovoltaic module 6 to the inclined beam 4, avoiding excessive local stress. The support bar 5 is fixed to the inclined beam 4 through the bar pressing block 52 and the pressing block tightening bolt 53, enhancing the stability and durability of the entire photovoltaic support system.

[0037] 6. Structural reinforcement: The aluminum alloy bar 51 in the supporting bar 5 has multiple grooves and connectors. These structures can further enhance the support strength and stability, while facilitating the installation and maintenance of the components. The bar connector 513 and the locking screw 514 make the connection of the bar more secure, ensuring the integrity and long-term reliability of the bracket.

[0038] Summary: The aluminum alloy simple rooftop photovoltaic bracket, through the meticulous design of the front base 2, rear columns 3, diagonal beams 4, and supporting bars 5, provides a sturdy and adjustable photovoltaic module mounting platform. This bracket system not only ensures the stable installation of photovoltaic modules, but also allows for adjustment of the installation angle according to actual needs to optimize the operating efficiency of the photovoltaic modules. This design enables the bracket to effectively support photovoltaic modules under various roof conditions, maximizing their effectiveness.

[0039] Utilizing the technical solution described in the utility model, or those skilled in the art designing similar technical solutions inspired by the technical solution of the utility model to achieve the above-mentioned technical effects, all fall within the scope of protection of the utility model.

Claims

1. A simple aluminum alloy roof photovoltaic bracket, characterized by: The invention comprises a front base (2), a rear column (3), an inclined beam (4), a supporting bar (5) and a photovoltaic module (6), wherein: the front base (2) is fixedly mounted on the front end of the inclined beam (4), and the rear column (3) is fixedly mounted on the rear end of the inclined beam (4); the supporting bars (5) are fixedly mounted on both ends of the surface of the inclined beam (4); and the photovoltaic module (6) is fixedly mounted inside the supporting bar (5).

2. The aluminum alloy simple roof photovoltaic bracket according to claim 1, characterized in that: The front base (2) and the rear column (3) are fixedly mounted on the surface of the building roof (1).

3. The aluminum alloy simple roof photovoltaic bracket according to claim 1, characterized in that: The rear upright column (3) comprises an inclined beam connection seat (31), a support column (32), a building connection seat (33) and a fixing bolt (34), wherein the inclined beam connection seat (31) is fixedly mounted on the bottom of the inclined beam (4), and the building connection seat (33) is fixedly mounted on the surface of the building roof (1) via the fixing bolt (34); and the support column (32) is fixedly mounted on the inclined beam connection seat (31) and the building connection seat (33).

4. The aluminum alloy simple roof photovoltaic bracket according to claim 1, characterized in that: The supporting rail (5) comprises a rail (51), a rail pressure block (52), a pressure block pressing bolt (53), an assembly pressure block (54) and an assembly pressure bolt (55), and the rail (51) is pressed downward on the inclined beam (4) by the rail pressure block (52) and is pressed downward and fixed by the pressure block pressing bolt (53); the assembly pressure block (54) is fixedly installed on the surface of the rail (51) by the assembly pressure bolt (55), and the assembly pressure bolt (55) is installed between the rail (51) and the assembly pressure block (54).

5. The aluminum alloy simple roof photovoltaic bracket according to claim 4, characterized in that: The strip (51) comprises a first strip (511), a second strip (512), a strip connector (513) and a locking screw (514), and one end of the first strip (511) and the second strip (512) are in contact with each other, and the strip connector (513) is installed on the outer side of the contact point between the first strip (511) and the second strip (512), and is connected and fixed by the locking screw (514).

6. The aluminum alloy simple roof photovoltaic support according to claim 3, characterized in that: The support column (32) inside the rear column (3) is a metal column made of aluminum alloy, and the support column (32) can rotate inside the inclined beam connecting seat (31) and the building connecting seat (33) and is tightened and fixed by bolts; the inclined beam connecting seat (31) can rotate on the top of the support column (32) and can drive the inclined beam (4) to rotate accordingly.

7. The aluminum alloy simple roof photovoltaic support according to claim 5, characterized in that: The supporting bars (51) are made of a plurality of aluminum alloy bars, and a groove is provided at the top of the bar (51), in which the bolt head of the component clamping bolt (55) slides, and the component edge block (54) is fixed to the bar (51) by a nut, and the component clamping bolt (55) can drive the edge block (54) to press downward to clamp the photovoltaic component (6); the bottom of the bar (51) is provided with two grooves, and the bar clamping block (52) is pressed downward by the clamping bolt (53) to fix it on the inclined beam (4); the bars (51) can be connected to each other through the bar connector (513).