Flexible photovoltaic module support
By introducing auxiliary laying mechanisms into the flexible photovoltaic module bracket, the problem of inefficient installation of photovoltaic panels is solved, automated installation is realized, and overall installation efficiency is improved.
Patent Information
- Application Number
- CN202421858598.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-02
- Publication Date
- 2025-06-17
- Estimated Expiration
- 2034-08-02
AI Technical Summary
During the installation process of flexible photovoltaic brackets, especially when the number of photovoltaic panels to be laid is large or the installation location is complex, manual pressure needs to be frequently pushed, making the installation efficiency inefficient.
A flexible photovoltaic module bracket is designed, using auxiliary laying mechanisms, including mounting columns, redirection wheels, traction ropes, upper connecting sleeves and lower connecting sleeves. Through the use of these components, the photovoltaic panels can be automatically installed at designated locations.
By assisting in the use of laying mechanisms, the installation efficiency of photovoltaic panels can be significantly improved and manual operation can be reduced, especially in complex environments.
Smart Images

Figure CN222996461U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of photovoltaic brackets, in particular to a flexible photovoltaic module bracket. Background Art
[0002] A flexible photovoltaic bracket is a photovoltaic bracket that uses a cable body for tensioning to bear the photovoltaic module. Adopting the processes of "hanging, pulling, hanging, supporting, and pressing", it effectively avoids adverse factors such as mountain undulations and high vegetation, turning the previously "unusable" land restricted by the environment into valuable land, and greatly improving the land utilization rate.
[0003] Usually, during the erection of the flexible photovoltaic bracket and the laying of the photovoltaic panels, it is necessary for workers to first erect the bracket at the installation position. After tightening the ropes, the photovoltaic panels are manually installed on the ropes. Subsequently, multiple photovoltaic panels are successively laid on the ropes and the photovoltaic panels are pushed towards the side away from the operation end. When the latter photovoltaic panel is pushed to contact the previous one in place, the photovoltaic panel is fixed for the second time, and then the installation of the photovoltaic panel can be completed. Since multiple photovoltaic panels need to be laid on the ropes during the installation process, and during the laying process, it is necessary for workers to push multiple photovoltaic panels to contact each other. When the number of photovoltaic panels to be laid is large or the photovoltaic bracket is set in places such as ponds where it is difficult for some workers to move, the installation of the photovoltaic panels will be very inconvenient, and the installation efficiency of the photovoltaic panels needs to be further improved.
[0004] Therefore, we propose a flexible photovoltaic module bracket. Summary of the Utility Model
[0005] The utility model mainly solves the technical problems existing in the above-mentioned prior art, and provides a flexible photovoltaic module bracket.
[0006] To achieve the above object, the utility model adopts the following technical solutions. A flexible photovoltaic module bracket includes a chassis. There are two groups of the chassis, and support frames are uniformly and fixedly installed on the chassis. Cross bars are fixedly installed between every two adjacent support frames. Two columns are fixedly installed on the cross bar, two in the longitudinal direction. A rope is fixedly installed between the two columns in the longitudinal direction. Photovoltaic panels are uniformly arranged between two adjacent ropes. An auxiliary laying mechanism is arranged between two cross bars in the longitudinal direction. Two extension plates are fixedly installed at the bottom of the photovoltaic panel, and a movable plug board is slidably installed on the extension plate.
[0007] The auxiliary laying mechanism includes mounting columns. Four mounting columns are fixedly installed on the cross bars on both sides. A deflecting wheel, a traction rope, an upper connecting sleeve, and a lower connecting sleeve are arranged between the four mounting columns.
[0008] Preferably, the photovoltaic panel is fixedly connected to the corresponding rope through a fastener. A stabilizing frame is arranged on the lower side of the photovoltaic panel, and the stabilizing frame is fixedly connected to the rope through a fastener.
[0009] Preferably, the auxiliary laying mechanism further includes a connecting frame fixedly installed on the mounting column. The redirecting wheel is rotatably installed on the connecting frame. The towing rope is arranged among four redirecting wheels between two cross bars in the longitudinal direction. The towing rope is rotatably connected to the four corresponding redirecting wheels. The mounting column is fixedly connected to the corresponding cross bar through a fastener.
[0010] Preferably, the upper connecting sleeve is arranged on the towing rope, and the lower connecting sleeve is arranged on one side of the upper connecting sleeve. The upper connecting sleeve and the lower connecting sleeve are fixedly connected through a connecting component.
[0011] Preferably, the auxiliary laying mechanism further includes a positioning sleeve fixedly installed on the connecting frame. The towing rope penetrates through the inside of the corresponding positioning sleeve and extends to the outside of the positioning sleeve.
[0012] Preferably, the connecting component includes a lower insertion block. Two lower insertion blocks are fixedly installed on the upper connecting sleeve. A socket adapted to the lower insertion block is formed on the lower connecting sleeve. An anti - detachment block is movably installed on the lower insertion block.
[0013] Preferably, a notch for installing the anti - detachment block is formed on the lower insertion block. The anti - detachment block is slidably installed inside the notch. The connecting component further includes a spring fixedly installed inside the notch. One end of the spring is fixedly connected to the anti - detachment block.
[0014] The utility model provides a flexible photovoltaic module bracket. Compared with the prior art, it has the following improvements and advantages: By providing an auxiliary laying mechanism, during installation, the chassis and the support frame are erected on a plane. With the help of external tools, the rope is in a taut and fixed state. The photovoltaic panel is erected between two ropes, and the upper connecting sleeve and the lower connecting sleeve are fixed on the towing rope through the connecting component. Then, the movable insertion plates on the two extension plates at the bottom of the photovoltaic panel are slid down until they contact the two upper connecting sleeves on both sides. Manually pull the towing rope. The two towing ropes drive the two upper connecting sleeves to move towards the other installation end. While the upper connecting sleeve moves, it applies a force towards the other installation end to the movable insertion plate to drive the photovoltaic panel to slide towards the other installation end. When the photovoltaic panel moves in place, pull the towing rope in the reverse direction until the upper connecting sleeve moves back to its original position. Then, the installation of the next photovoltaic panel can be carried out, and so on until all the photovoltaic panels are installed. During the installation process, there is no need to manually push multiple photovoltaic panels to move in place one by one, improving the overall installation efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the drawings in the following description are only exemplary. For those of ordinary skill in the art, without creative efforts, other implementation drawings can also be obtained by extending the provided drawings.
[0016] Figure 1 Structural schematic diagram of a flexible photovoltaic module bracket proposed for the structure of the present invention;
[0017] Figure 2 Top view structural schematic diagram of a flexible photovoltaic module bracket proposed for the structure of the present invention;
[0018] Figure 3 Installation schematic diagram of an extension plate in a flexible photovoltaic module bracket proposed for the structure of the present invention;
[0019] Figure 4 Installation schematic diagram of a stabilizer in a flexible photovoltaic module bracket proposed for the structure of the present invention;
[0020] Figure 5 Structural schematic diagram of an auxiliary laying mechanism in a flexible photovoltaic module bracket proposed for the structure of the present invention;
[0021] Figure 6 Installation schematic diagram of a movable plug plate and an upper connecting sleeve in a flexible photovoltaic module bracket proposed for the structure of the present invention;
[0022] Figure 7 Installation schematic diagram of a connection component in a flexible photovoltaic module bracket proposed for the structure of the present invention;
[0023] Figure 8 For Figure 7 Enlarged schematic diagram at A in
[0024] Legend:
[0025] 1. Underframe; 2. Support frame; 3. Cross bar; 4. Column; 5. Rope; 6. Photovoltaic panel; 7. Stabilizer; 8. Extension plate; 9. Installation column; 10. Connection frame; 11. Redirecting wheel; 12. Towing rope; 13. Positioning sleeve; 14. Upper connecting sleeve; 15. Lower connecting sleeve; 16. Movable plug plate; 17. Lower plug block; 18. Anti-detachment block; 19. Spring. Detailed implementation manners
[0026] The following will clearly and completely describe the technical solutions in the embodiments of the present utility model in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all of the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present utility model without making creative efforts shall fall within the protection scope of the present utility model.
[0027] A flexible photovoltaic module bracket, as Figure 1 - Figure 8 shown, includes a chassis 1. There are two groups of the chassis 1. Support frames 2 are uniformly and fixedly installed on the chassis 1. Cross bars 3 are fixedly installed between every two adjacent support frames 2. Two columns 4 are fixedly installed on the cross bar 3, two in the longitudinal direction. A rope 5 is fixedly installed between the columns 4. The rope 5 is in a taut state. Photovoltaic panels 6 are evenly arranged between two adjacent ropes 5. The photovoltaic panels 6 are fixedly connected to the corresponding ropes 5 through fasteners. A stabilizing frame 7 is arranged on the lower side of the photovoltaic panels 6. The stabilizing frame 7 is fixedly connected to the rope 5 through fasteners. An auxiliary laying mechanism is arranged between two cross bars 3 in the longitudinal direction. Two extension plates 8 are fixedly installed at the bottom of the photovoltaic panels 6. A movable plug board 16 is slidably installed on the extension plates 8. The auxiliary laying mechanism cooperates with the movable plug board 16 to assist in the installation and laying of the photovoltaic panels 6; by providing the auxiliary laying mechanism, during installation, the chassis 1 and the support frames 2 are erected on a plane, and with the help of external tools, the rope 5 is in a taut and fixed state. Subsequently, the photovoltaic panels 6 are evenly and fixedly installed between two adjacent ropes 5 in the horizontal direction by using the auxiliary laying mechanism, improving the installation efficiency.
[0028] Further, the auxiliary laying mechanism includes mounting columns 9. Four mounting columns 9 are fixedly installed on the cross bars 3 on both sides. The mounting columns 9 are connected and fixed to the corresponding cross bars 3 through fasteners. A connecting frame 10 is fixedly installed on the mounting columns 9. A deflecting wheel 11 is rotatably installed on the connecting frame 10. A towing rope 12 is arranged between the four deflecting wheels 11 between the two cross bars 3 in the longitudinal direction. The towing rope 12 is rotatably connected to the four corresponding deflecting wheels 11. The deflecting wheels 11 are in a taut state on the towing rope 12. When the towing rope 12 is pulled, it can drive the towing rope 12 to slide on the four deflecting wheels 11. A positioning sleeve 13 is fixedly installed on the connecting frame 10. The towing rope 12 passes through the inside of the corresponding positioning sleeve 13 and extends to the outside of the positioning sleeve 13. Upper connecting sleeves 14 are evenly arranged on the towing rope 12. A lower connecting sleeve 15 is arranged on one side of the upper connecting sleeve 14. The upper connecting sleeve 14 and the lower connecting sleeve 15 are connected and fixed through a connecting component; by providing the auxiliary laying mechanism, during installation, the chassis 1 and the support frame 2 are erected on a plane. With the help of external tools, the rope 5 is in a taut and fixed state. The photovoltaic panel 6 is erected between the two ropes 5, and the upper connecting sleeve 14 and the lower connecting sleeve 15 are fixed to the towing rope 12 through the connecting component. Subsequently, the movable inserts 16 on the two extension plates 8 at the bottom of the photovoltaic panel 6 are slid downwards until they come into contact with the two upper connecting sleeves 14 on both sides. The towing rope 12 is manually pulled. The two towing ropes 12 drive the two upper connecting sleeves 14 to move towards the other installation end. While the upper connecting sleeve 14 is moving, it exerts a force towards the other installation end on the movable insert 16 to drive the photovoltaic panel 6 to slide towards the other installation end. When the photovoltaic panel 6 moves into place, the towing rope 12 is pulled in the reverse direction until the upper connecting sleeve 14 moves back to its original position. Subsequently, the installation of the next photovoltaic panel 6 can be carried out, and so on, until all the photovoltaic panels 6 are installed. During the installation process, there is no need to manually push multiple photovoltaic panels 6 into place one by one, improving the overall installation efficiency.
[0029] Furthermore, the connecting component includes a downward insertion block 17. Two downward insertion blocks 17 are fixedly installed on the upper connecting sleeve 14. An insertion opening adapted to the downward insertion block 17 is formed on the lower connecting sleeve 15. The downward insertion block 17 is in contact with the inner wall of the insertion opening. The downward insertion block 17 can extend to the outside of the insertion opening. An anti - detachment block 18 is movably installed on the downward insertion block 17. A notch for installing the anti - detachment block 18 is formed on the downward insertion block 17. The anti - detachment block 18 is slidably installed inside the notch. A spring 19 is fixedly installed inside the notch. One end of the spring 19 is fixedly connected to the anti - detachment block 18. By providing the connecting component, when installing and laying the photovoltaic panel 6, the upper connecting sleeve 14 and the lower connecting sleeve 15 are wrapped around the outside of the rope 5. The upper connecting sleeve 14 and the lower connecting sleeve 15 are in contact. After the downward insertion block 17 is inserted into the insertion opening on the lower connecting sleeve 15, the anti - detachment block 18 slides to the outside of the notch under the elastic force of the spring 19 to realize the connection and fixation of the upper connecting sleeve 14 and the lower connecting sleeve 15. Subsequently, the movable insertion plate 16 is inserted into the upper connecting sleeve 14 and the traction rope 12 is pulled to move the photovoltaic panel 6 to the other installation end. The operation is convenient. When the traction rope 12 is pulled and rotated until the upper connecting sleeve 14 and the lower connecting sleeve 15 move to a position where there is no need to manually push the photovoltaic panel 6 to the other installation end in turn, the installation efficiency is improved.
[0030] The working principle of the present utility model: During installation, the chassis 1 and the support frame 2 are erected on a plane. With the help of external tools, the rope 5 is in a taut and fixed state. The photovoltaic panel 6 is erected between the two ropes 5. The upper connecting sleeve 14 and the lower connecting sleeve 15 are wrapped around the outside of the rope 5. The upper connecting sleeve 14 and the lower connecting sleeve 15 are in contact. After the downward insertion block 17 is inserted into the insertion opening on the lower connecting sleeve 15, the anti - detachment block 18 slides to the outside of the notch under the elastic force of the spring 19 to realize the connection and fixation of the upper connecting sleeve 14 and the lower connecting sleeve 15 to fix the upper connecting sleeve 14 and the lower connecting sleeve 15 on the traction rope 12. Subsequently, the movable insertion plates 16 on the two extension plates 8 at the bottom of the photovoltaic panel 6 are slid downward until they are in contact with the two upper connecting sleeves 14 on both sides. The traction rope 12 is manually pulled. The two traction ropes 12 drive the two upper connecting sleeves 14 to move to the other installation end. While the upper connecting sleeve 14 is moving, a force towards the other installation end is applied to the movable insertion plate 16 to drive the photovoltaic panel 6 to slide towards the other installation end. When the photovoltaic panel 6 moves in place, the traction rope 12 is pulled in the reverse direction until the upper connecting sleeve 14 moves back to its original position. Subsequently, the installation of the next photovoltaic panel 6 can be carried out, and so on, until all the photovoltaic panels 6 are installed.
[0031] The above has shown and described the basic principles, main features and advantages of the present utility model. Those skilled in the art should understand that the present utility model is not limited by the above embodiments. What is described in the above embodiments and the specification only illustrates the principles of the present utility model. Without departing from the spirit and scope of the present utility model, the present utility model will have various changes and improvements, and all these changes and improvements fall within the scope of the present utility model claimed. The scope of protection claimed by the present utility model is defined by the appended claims and their equivalents.
Claims
1. A flexible photovoltaic module support, comprising a base frame (1), wherein the base frame (1) has two groups, support frames (2) are evenly fixedly installed on the base frame (1), a cross bar (3) is fixedly installed between every two adjacent support frames (2), two columns (4) are fixedly installed on the cross bar (3), two of which are in the longitudinal direction, a rope (5) is fixedly installed between the columns (4), and photovoltaic panels (6) are evenly arranged between two adjacent ropes (5), characterized in that: An auxiliary laying mechanism is provided between the two cross bars (3) in the longitudinal direction, two extension plates (8) are fixedly installed at the bottom of the photovoltaic panel (6), and a movable plug plate (16) is slidably installed on the extension plate (8); The auxiliary laying mechanism comprises mounting columns (9), wherein four mounting columns (9) are fixedly mounted on the cross bars (3) on both sides, and a redirecting wheel (11), a traction rope (12), an upper connecting sleeve (14) and a lower connecting sleeve (15) are arranged between the four mounting columns (9).
2. A flexible photovoltaic module support according to claim 1, characterized in that: The photovoltaic panel (6) is connected and fixed to the corresponding rope (5) via a fastener, and a stabilizing frame (7) is provided on the lower side of the photovoltaic panel (6), and the stabilizing frame (7) is connected and fixed to the rope (5) via a fastener.
3. The flexible photovoltaic module support according to claim 1, characterized in that: The auxiliary laying mechanism also includes a connecting frame (10), the connecting frame (10) is fixedly mounted on the mounting column (9), the redirecting wheel (11) is rotatably mounted on the connecting frame (10), the traction rope (12) is arranged between the four redirecting wheels (11) between the two cross bars (3) in the longitudinal direction, the traction rope (12) is rotatably connected to the four corresponding redirecting wheels (11), and the mounting column (9) is mutually connected and fixed to the corresponding cross bar (3) through a fastener.
4. The flexible photovoltaic module support according to claim 1, characterized in that: The upper connecting sleeve (14) is arranged on the traction rope (12), and the lower connecting sleeve (15) is arranged on one side of the upper connecting sleeve (14). The upper connecting sleeve (14) and the lower connecting sleeve (15) are connected and fixed by a connecting assembly.
5. The flexible photovoltaic module support according to claim 1, characterized in that: The auxiliary laying mechanism also includes a positioning sleeve (13), the positioning sleeve (13) is fixedly mounted on the connecting frame (10), and the traction rope (12) passes through the interior of the corresponding positioning sleeve (13) and extends to the outside of the positioning sleeve (13).
6. The flexible photovoltaic module support according to claim 4, characterized in that: The connection assembly comprises lower plug-in blocks (17), wherein two lower plug-in blocks (17) are fixedly mounted on the upper connection sleeve (14), a socket matching the lower plug-in blocks (17) is provided on the lower connection sleeve (15), and an anti-dropping block (18) is movably mounted on the lower plug-in blocks (17).
7. A flexible photovoltaic module support according to claim 6, characterized in that: The lower insert block (17) is provided with a notch for installing an anti-dropping block (18), and the anti-dropping block (18) is slidably installed inside the notch. The connecting assembly also includes a spring (19), which is fixedly installed inside the notch, and one end of the spring (19) is fixedly connected to the anti-dropping block (18).