A solar cell module mounting device
Patent Information
- Application Number
- CN202522031019.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-22
- Publication Date
- 2026-09-08
- Estimated Expiration
- 2035-09-22
AI Technical Summary
[0003]针对现有技术存在的不足,本实用新型目的是提供一种太阳能电池组件安装装置,以解决现有的太阳能电池组件安装效率较低且并列安装后不便更换的问题
[0010] The beneficial effects of this utility model are that by sliding the solar cell module into the mounting beam, and by using the baffle plate and the limiting block and limiting rod on the inner side of the baffle plate to clamp and limit the upright holding the solar cell module, quick installation can be achieved. When it is necessary to replace the parallel solar cell modules, the driving mounting bracket drives the mounting beam to be raised, which facilitates the replacement of a single row of solar cell modules and improves the installation and disassembly efficiency of the operator. Specific embodiments are further described in the following embodiments.
Smart Images

Figure CN224733667U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of solar cell module installation equipment, specifically a solar cell module installation device. Background Technology
[0002] Solar cell modules are assembled from high-efficiency monocrystalline / polycrystalline solar cells with tempered glass and encapsulation materials. Solar cell modules are the core component of a solar power generation system, and their function is to convert solar energy into electrical energy. Therefore, solar cell modules need to be installed to achieve energy storage through sunlight. Existing solar cell modules are usually installed at an angle on rooftops or open ground, and multiple solar cell modules are spliced together to form a solar panel of a certain area for continuous light energy conversion. They are installed and locked one by one manually, which makes them inconvenient to replace after installation. Utility Model Content
[0003] In view of the shortcomings of the existing technology, the purpose of this utility model is to provide a solar cell module installation device to solve the problems of low installation efficiency and inconvenience of replacement after parallel installation of existing solar cell modules.
[0004] To achieve the above objectives, this utility model provides the following technical solution: a solar cell module installation device includes an inclined and symmetrically arranged installation beam, an installation groove inside the installation beam, a disassembly groove on one side of the installation beam, a baffle plate on the installation beam located on the outer side of the disassembly groove, a hinge connecting the bottom of the baffle plate to the bottom side of the installation beam, latches connecting the two ends of the baffle plate to the installation beam, a limit block on the inner side of the baffle plate, multiple disassembly grooves and limit blocks distributed along the length of the installation beam, the limit blocks being movably disposed within the disassembly groove, a locking assembly on the installation beam, and a crossbar extending inward from the side of the installation beam opposite to the disassembly groove. The locking assembly is quickly installed via the installation beam and locked by the baffle blocks.
[0005] The preferred structure of this solution includes a locking assembly comprising a vertically mounted upright in the mounting groove, a notch on one side of the upright at the same height as the horizontal bar, a grooved block at the top of the upright, and a screw threadedly connected to one side of the grooved block. The upright slides within the mounting beam, the height of the upright is limited by the horizontal bar, and the grooved block is used to lock the bottom frame of the solar cell module.
[0006] The preferred structure of this scheme also includes a limiting rod horizontally arranged inside the limiting block, a limiting hole arranged on the side of the upright opposite the notch, the limiting rod being movably inserted into the limiting hole, the limiting block and the limiting rod limiting the upright, and then locking it between the baffle and the installation beam to realize the limiting installation operation of the upright.
[0007] As another preferred structure of this solution, the bottom of the mounting beam is vertically equipped with mounting brackets and telescopic rods. The top of the mounting brackets and telescopic rods is provided with grooves, and a fixed shaft is horizontally installed in the grooves. A rotating connecting block is provided between the bottom of the mounting beam and the fixed shaft, and the rotating connecting block is rotatably connected to the fixed shaft. A manual screw is provided between the mounting brackets at one end of the bottom of the symmetrical mounting beam. The fixed shaft has a threaded structure and is assembled with the manual screw to form a lifting screw structure. By setting the mounting brackets, the mounting beam is driven to rise at one end, which facilitates the lifting of a single row of solar modules from between the side-by-side solar cell modules, and facilitates the individual disassembly and replacement of solar cell modules.
[0008] As another preferred structure of this solution, the telescopic rod is set at the bottom center of the mounting beam between the mounting supports. The telescopic rod is used to coordinate with the lifting and lowering of the mounting supports at one end of the mounting beam.
[0009] As another preferred structure in this scheme, a connecting rod is provided between the mounting beams to provide stability between them.
[0010] The beneficial effects of this utility model are that by sliding the solar cell module into the mounting beam, and by using the baffle plate and the limiting block and limiting rod on the inner side of the baffle plate to clamp and limit the upright holding the solar cell module, quick installation can be achieved. When it is necessary to replace the parallel solar cell modules, the driving mounting bracket drives the mounting beam to be raised, which facilitates the replacement of a single row of solar cell modules and improves the installation and disassembly efficiency of the operator. Specific embodiments are further described in the following embodiments. Attached Figure Description
[0011] Figure 1 This is a schematic diagram of the overall structure of this utility model; Figure 2 This is a schematic diagram of the structure on the other side of the whole; Figure 3 Structural diagram showing the connection position between the mounting bracket and the mounting beam; In the diagram: 1. Mounting beam, 2. Baffle plate, 3. Crossbar, 4. Lock, 5. Limiting block, 6. Disassembly groove, 7. Upright pole, 8. Notch, 9. Groove block, 10. Screw, 11. Mounting support, 12. Telescopic rod, 13. Manual screw, 14. Connecting rod, 15. Mounting groove, 16. Hinge, 17. Groove, 18. Fixed shaft, 19. Rotating connecting block; Detailed Implementation
[0012] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.
[0013] See Figures 1 to 3The system includes symmetrically arranged mounting beams with mounting grooves inside and disassembly grooves on one side. A baffle plate is located on the mounting beam outside the disassembly grooves. A hinge connects the bottom of the baffle plate to the bottom of the mounting beam. Locking latches connect both ends of the baffle plate to the mounting beam. Limit blocks are located inside the baffle plate. Multiple disassembly grooves and limit blocks are distributed along the length of the mounting beam, with the limit blocks movably positioned within the disassembly grooves. A locking assembly is installed on the mounting beam, with the side of the mounting beam opposite the disassembly groove... A crossbar extends inwards, allowing for quick installation of the locking assembly via the mounting beam and locking via a spacer block. The locking assembly includes a vertically mounted upright in the mounting slot. A notch is located on one side of the upright at the height of the crossbar. A recessed block is located at the top of the upright, with a threaded screw connected to one side of the recessed block. The upright slides within the mounting beam, and the crossbar limits its height. The recessed block locks onto the bottom frame of the solar panel. A limit rod is horizontally positioned inside the limit block, and a limit bar is positioned on the side of the upright opposite the notch. The positioning hole and the limiting rod are movably inserted into the positioning hole. The limiting block and the limiting rod limit the movement of the upright. Then, the baffle plate locks the upright to the installation beam, realizing the limiting installation operation of the upright. The bottom of the installation beam is vertically equipped with an installation support and a telescopic rod. The top of the installation support and the telescopic rod is equipped with a groove. The fixed shaft is horizontally installed in the groove. A rotating connecting block is set between the bottom of the installation beam and the fixed shaft. The rotating connecting block is rotatably connected to the fixed shaft. A manual screw is set between the installation support at one end of the symmetrical installation beam. The fixed shaft is a threaded structure. It is assembled with the manual screw to form a lifting screw structure. The installation support drives the single end of the installation beam to rise, which facilitates the raising of a single row of solar modules between the side-by-side solar modules and the disassembly and replacement of individual solar modules. The telescopic rod is set in the middle of the bottom of the installation beam between the installation support. The telescopic rod is set in conjunction with the single end of the installation support to raise and lower. A connecting rod is set between the installation beams to provide stability between the installation beams.
[0014] During implementation, uprights are installed on both sides and ends of the solar cell modules. The solar cell modules are placed in grooves and secured with bolts. After fixing the uprights to the modules, they are slid into the mounting slots. The notches on the uprights are aligned with the crossbars, and multiple solar cell modules are fixed to the uprights before being slid into the mounting beams. The spacing between the uprights matches the position of the disassembly slots. After installation, the baffles are hinged to the outside of the disassembly slots and then engaged with the limiting holes on the uprights within the disassembly slots via limiting blocks and rods. This limits and fixes the uprights, enabling the installation of the solar cell modules. When partial replacement of a solar cell module is required, the manual screw is driven to raise and adjust the end of the mounting beam, facilitating the removal of the baffles from the beams and the removal of the uprights from the disassembly slots for replacement. The overall operation, installation, and replacement is highly efficient, with low labor intensity and ease of operation.
Claims
1. A solar cell module mounting device, characterized in that: The system includes an inclined and symmetrically arranged installation crossbeam (1), an installation groove (15) inside the installation crossbeam, a disassembly groove (6) on one side of the installation crossbeam, a baffle plate (2) on the installation crossbeam located on the outer side of the disassembly groove, a hinge (16) connecting the bottom of the baffle plate to the bottom side of the installation crossbeam, a latch (4) connecting the two ends of the baffle plate to the installation crossbeam, a limit block (5) on the inner side of the baffle plate, multiple disassembly grooves and limit blocks distributed along the length of the installation crossbeam, the limit blocks being movably disposed in the disassembly groove, a locking assembly on the installation crossbeam, and a crossbar (3) extending inward from the side of the installation crossbeam opposite to the disassembly groove.
2. The solar cell module mounting device according to claim 1, characterized in that: The locking assembly includes a vertical rod (7) set in the mounting groove (15), a notch (8) at the height of the horizontal bar on one side of the vertical rod, a groove block (9) at the top of the vertical rod, and a screw (10) threadedly connected to one side of the groove block.
3. The solar cell module mounting device according to claim 2, characterized in that: The limiting block (5) has a limiting rod horizontally arranged inside, and the upright (7) has a limiting hole on the side opposite to the notch. The limiting rod is movably inserted into the limiting hole.
4. The solar cell module mounting device according to claim 1, characterized in that: The bottom of the mounting beam (1) is vertically provided with mounting brackets (11) and telescopic rods (12). The top of the mounting brackets and telescopic rods is provided with grooves (17). A fixed shaft (18) is horizontally provided in the grooves. A rotating connecting block (19) is provided between the bottom of the mounting beam and the fixed shaft. The rotating connecting block is rotatably connected to the fixed shaft. A manual screw (13) is provided symmetrically between the mounting brackets at one end of the bottom of the mounting beam.
5. A solar cell module mounting device according to claim 4, characterized in that: The telescopic rod (12) is located at the bottom center of the mounting beam (1) between the mounting supports (11).
6. A solar cell module mounting device according to claim 1, characterized in that: A connecting rod (14) is provided between the mounting beams (1).