Flexible solar panel mounting array and flexible solar power generation system
The flexible solar panel mounting array with telescopic rods and dampers addresses wind resistance issues, enhancing stability and power generation efficiency by reducing twisting and vibration in flexible solar panel systems.
Patent Information
- Application Number
- JP2025003947U
- Authority / Receiving Office
- JP · JP
- Patent Type
- Utility models
- Current Assignee / Owner
- Priority Date
- 2025-06-05
- Filing Date
- 2025-11-13
- Publication Date
- 2026-01-16
- Estimated Expiration
- 2035-11-13
AI Technical Summary
Flexible solar panel mounting systems face limitations in wind resistance, leading to twisting, vertical vibration, and swaying of cable structures, which can damage solar modules and reduce power generation efficiency.
A flexible solar panel mounting array with at least two rows of mounting structures and a wind-resistant mechanism, incorporating telescopic rods and dampers to provide resistance against relative movement between rows, reducing shaking and twisting.
The wind-resistant mechanism enhances the stability of flexible solar panel arrays, improving wind resistance and maintaining power generation efficiency, especially in strong wind environments.
Smart Images

Figure 0003254341000001_ABST
Abstract
Description
[Technical Field]
[0001] The present invention relates to the technical field of photovoltaic power generation, and more particularly to a flexible solar panel mounting array and a flexible photovoltaic power generation system. [Background technology]
[0002] In flexible solar panel mounting, solar modules are attached to cables, and both ends of the cables are fixed to the cross members at the top of the support. Due to the harsh construction site environment, when multiple rows of flexible solar tracking mounting systems are required, the wind resistance of single-row flexible solar panel mounting systems is limited, which can cause twisting, vertical vibration, or swaying of the cable structure, which can damage the solar modules attached to the cables and negatively affect power generation efficiency.
[0003] Therefore, there is a need to provide a flexible solar panel mounting array and a flexible solar power generation system that solves the above-mentioned problems. Summary of the Invention [Problem to be solved by the invention]
[0004] The objective of the present invention is to provide a flexible solar panel mounting array and a flexible solar power generation system with improved wind resistance. [Means for solving the problem]
[0005] In order to achieve the above object, in a first aspect of the present invention, Flexible solar panel mounting arrays are At least two rows of flexible solar panel mounting structures and a wind-resistant mechanism; Each row of the flexible solar panel mounting brackets includes a plurality of support poles installed at intervals, a cross member installed at the top of each of the support poles, a cable structure connecting the two cross members, and a support bracket connected to the cable structure; and each of the at least two rows of the flexible solar panel mounting brackets includes a first flexible solar panel mounting bracket and a second flexible solar panel mounting bracket adjacent to each other between the rows, and the support brackets include a first support bracket provided on the first flexible solar panel mounting bracket and a second support bracket provided on the second flexible solar panel mounting bracket; The wind-resistant mechanism includes a telescopic rod and a damper, the telescopic rod includes a first rod and a second rod that are slidably fitted together along the telescopic direction of the telescopic rod, the first rod is pivotally connected to the first flexible solar panel mount, the second rod is pivotally connected to the second flexible solar panel mount, one end of the damper is pivotally connected to the first flexible solar panel mount, and the other end of the damper is pivotally connected to the first rod or the second rod.
[0006] Furthermore, the pivot connection point between the first rod and the first flexible solar panel frame, the pivot connection point between one end of the damper and the first flexible solar panel frame, and the pivot connection point between the other end of the damper and the first rod or the second rod form three vertices of a triangle.
[0007] Furthermore, the first rod is pivotally connected to the cable structure of the first support bracket or the first flexible solar panel mounting frame, the second rod is pivotally connected to the cable structure of the second support bracket or the second flexible solar panel mounting frame, and the damper has one end pivotally connected to the cable structure of the first support bracket or the first flexible solar panel mounting frame and the other end pivotally connected to the first rod or the second rod.
[0008] Further, the first rod includes a first body and a first connecting member, one end of the first connecting member being connected to the first body and the other end of the first connecting member being pivotally connected to the first support bracket; and / or The second rod includes a second body and a second connecting member, one end of the second connecting member being connected to the second body and the other end of the second connecting member being pivotally connected to the second support bracket.
[0009] Furthermore, the wind-resistant mechanism further includes a rotating base installed on the first body or the second body, and the damper includes a damper body and a damper telescopic rod, one end of the damper body is rotatably connected to the rotating base, and one end of the damper telescopic rod is rotatably connected to the first support bracket.
[0010] Furthermore, the rotating base includes two opposing support plates provided on the first body or the second body and a first pivot shaft connecting the two support plates, and one end of the damper body is provided on the first pivot shaft via a rod end ball bearing, and / or The first support bracket includes a support rod, the support rod including two opposing fixed plates and a second pivot shaft connecting the two fixed plates, and one end of the damper telescopic rod is attached to the second pivot shaft via a rod end ball bearing.
[0011] Furthermore, the first support bracket includes a module cable support rod, a stabilizing cable support rod installed corresponding to the module cable support rod, and a plurality of side support rods connected between the module cable support rod and the stabilizing cable support rod; The cable structure includes a module cable and a stabilizing cable, the stabilizing cable is located below the module cable, and the module cable is used to fixedly connect to the solar power generation module, the module cable includes a first module cable and a second module cable installed along the left-right direction, the stabilizing cable includes a first stabilizing cable and a second stabilizing cable installed along the left-right direction, the first module cable and the second module cable are fixed to a first fixed point and a second fixed point of the module cable support rod by clamp members, respectively, the first stabilizing cable and the second stabilizing cable are fixed to a third fixed point and a fourth fixed point of the stabilizing cable support rod by clamp members, and the first fixed point, the second fixed point, the third fixed point and the fourth fixed point constitute the four vertices of a trapezoid.
[0012] Further, the plurality of first support brackets are installed at intervals along the extension direction of the cable structure and include a first intermediate support bracket located in the middle of the cable structure, and a plurality of first side support brackets provided on both sides of the first intermediate support bracket along the extension direction of the cable structure, wherein a first group of four vertices is formed when the first intermediate support bracket is connected to the first module cable, the second module cable, the first stabilizing cable, and the second stabilizing cable, and a second group of four vertices is formed when the first side support bracket is connected to the first module cable, the second module cable, the first stabilizing cable, and the second stabilizing cable, and the area of the quadrangle formed by the four vertices of the first group is greater than the area of the quadrangle formed by the four vertices of the second group.
[0013] Furthermore, a reinforcing rod is installed near the end of the module cable support rod and the stabilizing cable support rod, and the reinforcing rod, the side support rod adjacent to the reinforcing rod, and the module cable support rod or the stabilizing cable support rod form a triangle.
[0014] Furthermore, the flexible solar panel mount of each row further includes a base installed on the top of each of the support columns and a drive unit attached to the base, the cross member is rotatably installed on the base, the drive unit is installed between the cross member and the base and includes a power output member connected to the cross member, and the drive unit drives the cross member to rotate, thereby rotating the cable structure and the solar power generation modules attached to the cable structure.
[0015] Furthermore, the first support bracket and the second support bracket have the same structure.
[0016] In order to achieve the above object, in a second aspect of the present invention, The flexible solar power generation system includes the flexible solar panel mounting array described above, and further includes a solar power generation module attached to a cable structure of the flexible solar panel mounting of each row, and the solar power generation module is attached to the cable structure by a clamp block. [Effects of the Invention]
[0017] Compared with the prior art, the beneficial effects of the present invention are as follows: The flexible solar panel mounting array of the present invention includes at least two rows of flexible solar panel mountings and a wind-resistant mechanism. The wind-resistant mechanism includes a telescopic rod and a damper. The telescopic rod includes a first rod and a second rod that are slidably fitted together along the telescopic rod's extension direction, with the first rod pivotally connected to the flexible solar panel mountings in the first row and the second rod pivotally connected to the flexible solar panel mountings in the adjacent second row. One end of the damper is connected to the flexible solar panel mountings in the first row and the other end is pivotally connected to either the first rod or the second rod. In this way, the wind-resistant mechanism can provide resistance when the first flexible solar panel mountings and the second flexible solar panel mountings move relative to each other, reducing the swaying, flipping, or twisting of the flexible solar panel tracking mountings in each row and improving the wind resistance of the flexible solar panel tracking mounting.
[0018] When the flexible solar panel mounting array is a multi-row flexible solar tracking mount, the telescopic rod and damper of the wind-resistant mechanism can adapt to its posture change, meeting the angle tracking requirements of the flexible solar tracking mount in real time and providing high versatility. The damper can also provide damping force to two adjacent rows of flexible solar tracking mounts, significantly improving wind resistance, especially in strong wind environments. [Brief explanation of the drawings]
[0019] [Figure 1] 1 is a perspective view of a flexible solar panel mounting array according to the present invention; [Figure 2] FIG. 2 is a perspective view of FIG. 1 from another viewpoint. [Figure 3] FIG. 3 is a local enlarged view of part A in FIG. 2. [Figure 4] FIG. 3 is a local enlarged view of part B in FIG. 2. [Figure 5] FIG. 2 is a perspective view of the first flexible solar panel mount, the second flexible solar panel mount, and the wind-resistant mechanism of FIG. 1. [Figure 6]FIG. 6 is a local enlarged view of part C in FIG. 5. [Figure 7] FIG. 6 is an enlarged view of a portion D in FIG. 5. [Figure 8] 2 is a front view of the wind-resistant mechanism, the first support bracket, and the second support bracket of FIG. 1. FIG. [Figure 9] FIG. 9 is a perspective view of the support bracket of FIG. 8. [Figure 10] FIG. 2 is an exploded perspective view of the wind-resistant mechanism of FIG. [Figure 11] FIG. 2 is a perspective view of the support column, base, cross member, and drive unit of FIG. 1. DETAILED DESCRIPTION OF THE INVENTION
[0020] Hereinafter, with reference to the accompanying drawings, exemplary specific embodiments of the present invention will be described. When multiple specific embodiments exist, the features of these embodiments can be combined with each other unless there is a contradiction. When describing with reference to the drawings, the same numerals in different drawings represent the same or similar elements unless otherwise specified. The contents described in the following exemplary specific embodiments do not represent all embodiments consistent with the present invention, but rather are merely examples of devices, products, and / or methods consistent with some aspects of the present invention as set forth in the utility model registration claims of the present invention.
[0021] The terms used in the present invention are merely used to describe specific embodiments and do not limit the scope of protection of the present invention. The singular terms "one," "the," or "the" used in the description and claims of the present invention are intended to encompass the plural forms unless the context clearly dictates otherwise.
[0022] 1 to 11, the present invention discloses a flexible solar panel mounting array 10. The flexible solar panel mounting array 10 includes at least two rows of flexible solar panel mounting structures 1 and a wind-resistant mechanism 2. Each row of flexible solar panel mounting structures 1 includes a plurality of support columns 11 installed at intervals, a cross member 12 installed at the top of each support column 11, a cable structure 13 connecting the two cross members 12, and a support bracket 14 connected to the cable structure 13. The at least two rows of flexible solar panel mounting structures 1 include a first flexible solar panel mounting structure 1A and a second flexible solar panel mounting structure 1B adjacent to each other between the rows. The support bracket 14 includes a first support bracket 14A provided on the first flexible solar panel mounting structure 1A and a second support bracket 14B provided on the second flexible solar panel mounting structure 1B. The wind-resistant mechanism 2 includes an extensible rod 21 and a damper 22. The telescopic rod 21 includes a first rod 211 and a second rod 212 that are slidably fitted together along the telescopic direction. The first rod 211 is pivotally connected to the first flexible solar panel frame 1A, and the second rod 212 is pivotally connected to the second flexible solar panel frame 1B. One end of the damper 22 is pivotally connected to the first flexible solar panel frame 1A, and the other end is pivotally connected to the first rod 211 or the second rod 212. This allows the wind-resistant mechanism 2 to apply resistance when the first flexible solar panel frame 1A and the second flexible solar panel frame 1B move relative to each other, reducing shaking, inversion, or twisting of the flexible solar panel frames 1 in each row and improving the wind resistance of the flexible solar panel frame 1. In the first aspect, the first flexible solar panel mount 1A and the second flexible solar panel mount 1B are both flexible fixed mounts, and the angle between the ground and the cross members 12 installed on the first flexible solar panel mount 1A and the second flexible solar panel mount 1B is a fixed value. By installing a wind-resistant mechanism 2, the wind resistance performance between the first flexible solar panel mount 1A and the second flexible solar panel mount 1B is improved.
[0023] 2 to 8, the pivot connection point between the first rod 211 and the first flexible solar panel frame 1A, the pivot connection point between one end of the damper 22 and the first flexible solar panel frame 1A, and the pivot connection point between the other end of the damper 22 and the first rod 211 or the second rod 212 form the three vertices of a triangle. This makes the entire structure of the wind-resistant mechanism 2 stronger and improves the wind resistance performance of two adjacent rows of flexible solar panel frames 1 in a strong wind environment.
[0024] Specifically, the first rod 211 is pivotally connected to the cable structure 13 of the first support bracket 14A or the first flexible solar panel mounting frame 1A, and the second rod 212 is pivotally connected to the cable structure 13 of the second support bracket 14B or the second flexible solar panel mounting frame 1B. One end of the damper 22 is pivotally connected to the cable structure 13 of the first support bracket 14A or the first flexible solar panel mounting frame 1A, and the other end is pivotally connected to the first rod 211 or the second rod 212.
[0025] 5 to 8, the first rod 211 includes a first body 2111 and a first connecting member 2112. One end of the first connecting member 2112 is connected to the first body 2111, and the other end is pivotally connected to the first support bracket 14A. The second rod 212 includes a second body 2121 and a second connecting member 2122. One end of the second connecting member 2122 is connected to the second body 2121, and the other end is pivotally connected to the second support bracket 14B. Preferably, the second body 2121 is fitted within the first body 2111, and is capable of telescopic movement within the first body 2111. In another embodiment, one of the first body 2111 and the second body 2121 is a slide groove and the other is a slider, and the sliding engagement between the slide groove and the slider enables relative movement between the first body 2111 and the second body 2121. Alternatively, the first body 2111 and the second body 2121 can be configured in a different way to achieve relative movement between the first body 2111 and the second body 2121.
[0026] 5 to 8, the other end of the first connecting member 2112 is connected to the first support bracket 14A via a pin shaft, allowing the first body 2111 to pivot relative to the first support bracket 14A. The other end of the second connecting member 2122 is connected to the second support bracket 14B, allowing the second body 2121 to rotate relative to the second support bracket 14B. Preferably, adjacent first and second support brackets 14A and 14B are arranged laterally in a corresponding manner and have the same structure and dimensions, and both ends of the telescopic rod 21 are arranged at the same height, i.e., connected to the first and second support brackets 14A and 14B at the same height. Alternatively, both ends of the telescopic rod 21 are arranged at an angle, i.e., connected to the first and second support brackets 14A and 14B at different heights. The pivotal connection between the first connecting member 2112 and the first support bracket 14A allows the pivotal connection between the second connecting member 2122 and the second support bracket 14B, making it possible to accommodate differences in height between the first support bracket 14A and the second support bracket 14B, improving wind resistance and facilitating assembly. In another embodiment, the first connecting member 2112 is connected to the cable structure 13 in the same row as the first support bracket 14A, and the second connecting member 2122 is connected to the cable structure 13 in the same row as the second support bracket 14B.
[0027] 5, 8, and 10, the wind-resistant mechanism 2 further includes a rotating base 23 installed on the first body 2111. The damper 22 includes a damper body 221 and a damper telescopic rod 222 that are expandable and contractable relative to each other. One end of the damper body 221 is rotatably connected to the rotating base 23, and one end of the damper telescopic rod 222 is rotatably connected to the first support bracket 14A. In this embodiment, the damper body 221 moves expandably and contractably within the damper telescopic rod 222. Specifically, the rotating base 23 includes two opposing support plates 231 and a first pivot shaft 232 connecting the two support plates 231. One end of the damper body 221 is attached to the first pivot shaft 232 via a rod-end ball bearing 24. The first support bracket 14A includes a polygonal structure formed by a plurality of support rods. Among them, one support rod includes two opposing fixed plates and a second pivot shaft 141 connecting the two fixed plates, and one end of the damper telescopic rod 222 is attached to the second pivot shaft 141 via a rod-end ball bearing 24. In this embodiment, the support rod is the below-described module cable support rod 142, and a rod-end ball bearing 24 is installed to achieve a flexible connection. When the first support bracket 14A and the second support bracket 14B of the two rows of flexible solar panel mounting frames 1 connected by the wind-resistant mechanism 2 are displaced vertically or horizontally, the rod-end ball bearing 24 can adaptively adjust the angle of the telescopic rod 21 and the damper 22 to avoid friction.
[0028] The cable structure 13 includes a module cable 131 and a stabilizing cable 132. The stabilizing cable 132 is located below the module cable 131. The module cable 131 is used for fixed connection to the photovoltaic power generation module 20 and includes a first module cable 1311 and a second module cable 1312 installed along the left-right direction. The stabilizing cable 132 includes a first stabilizing cable 1321 and a second stabilizing cable 1322 installed along the left-right direction. The first module cable 1311 and the first stabilizing cable 1321 are installed corresponding to the up-down direction, and the second module cable 1312 and the second stabilizing cable 1322 are also installed corresponding to the up-down direction. The first module cable 1311 and the first stabilizing cable 1321 both pass through one end of the cross member 12, and the second module cable 1312 and the second stabilizing cable 1322 both pass through the other end of the cross member 12. In this embodiment, the first connecting member 2112 is connected to the first stabilizing cable 1321 in the same row as the first flexible solar panel frame 1A via a rod end ball bearing 24, the second connecting member 2122 is connected to the second stabilizing cable 1322 in the same row as the second flexible solar panel frame 1B via a rod end ball bearing 24, and the damper telescopic rod 222 is connected to the first module cable 1311 in the same row as the first flexible solar panel frame 1A via a rod end ball bearing 24. By installing them in this manner, the wind resistance of the first flexible solar panel frame 1A and the second flexible solar panel frame 1B can also be improved.
[0029] 5 to 9, the first support bracket 14A and the second support bracket 14B have the same structure. The specific structure of the first support bracket 14A will be described below. The first support bracket 14A includes a module cable support rod 142, a stabilizing cable support rod 143 installed corresponding to the module cable support rod 142, and a plurality of side support rods 144 connecting the module cable support rod 142 and the stabilizing cable support rod 143. Preferably, the side support rods 144 include a first side support rod 1441 and a second side support rod 1442. The length of the module cable support rod 142 is shorter than the length of the stabilizing cable support rod 143. One ends of the first side support rod 1441 and the second side support rod 1442 are fixedly connected to both ends of the module cable support rod 142 with bolts, and the other ends of the first side support rod 1441 and the second side support rod 1442 are fixedly connected to both ends of the stabilizing cable support rod 143 with bolts. The first side support rod 1441 and the second side support rod 1442 are installed to extend outward in the left-right direction, so that the first support bracket 14A forms a trapezoidal structure. In another embodiment, the length of the module cable support rod 142 is greater than the length of the stabilizing cable support rod 143. The first module cable 1311 and the second module cable 1312 are fixed to first and second fixing points of the module cable support rod 142 with clamp members 15, respectively. The first stabilizing cable 1321 and the second stabilizing cable 1322 are fixed to the third and fourth fixed points of the stabilizing cable support rod 143 by clamp members 15, respectively. The first, second, third, and fourth fixed points form the four vertices of a trapezoid, improving the wind resistance of the cable structure 13.
[0030] The side support rods 144 further include a third side support rod 1443 and a fourth side support rod 1444. The third side support rod 1443 and the fourth side support rod 1444 are both connected between the module cable support rod 142 and the stabilizing cable support rod 143, and are located between the first side support rod 1441 and the second side support rod 1442. Preferably, one end of the third side support rod 1443 is fixedly connected to the module cable support rod 142 by a bolt near the connection between the first side support rod 1441 and the module cable support rod 142, and the other end of the third side support rod 1443 is fixedly connected to the middle of the stabilizing cable support rod 143 by a bolt. The first side support rod 1441, the third side support rod 1443, and the stabilizing cable support rod 143 form a triangular structure. One end of the fourth side support rod 1444 is fixedly connected to the module cable support rod 142 by a bolt near the connection between the second side support rod 1442 and the module cable support rod 142, and the other end of the fourth side support rod 1444 is fixedly connected to the middle of the stabilizing cable support rod 143 by a bolt. The second side support rod 1442, the fourth side support rod 1444, and the stabilizing cable support rod 143 form a triangular structure, which further improves the overall stability of the first support bracket 14A and the wind resistance of the entire cable structure 13.
[0031] 5-6 and 8-9, a reinforcing rod 16 is provided near the end of each of the module cable support rods 142 and the stabilizing cable support rods 143. The reinforcing rod 16, together with the adjacent side support rod 144 and the module cable support rod 142 or the stabilizing cable support rod 143, forms a triangular structure. In this embodiment, the reinforcing rod 16 is installed on the side of the first support bracket 14A facing the telescopic rod 21 and the damper 22. The reinforcing member of the first support bracket 14A is installed opposite the reinforcing member of the second support bracket 14B. Specifically, the reinforcing rod 16 includes a first reinforcing rod 161 and a second reinforcing rod 162. The first reinforcing rod 161 is installed integrally with the module cable support rod 142 and extends laterally outward from the end of the module cable support rod 142. As a result, the free end of the first reinforcing rod 161 is aligned vertically with the stabilizing cable support rod 143, and both ends of the second reinforcing rod 162 are fixedly connected by bolts to the ends of the first reinforcing rod 161 and the stabilizing cable support rod 143. As a result, the first reinforcing rod 161, the second reinforcing rod 162, and the stabilizing cable support rod 143 form a triangular structure, which further improves the structural strength of the first support bracket 14A, the damper 22, and the telescopic rod 21, and further improves wind resistance.
[0032] 10 , in this embodiment, one end of the first rod 211 of the telescopic rod 21 is pivotally connected to the end of the stabilizing cable support rod 143 of the first support bracket 14A via the rod end ball bearing 24, and one end of the second rod 212 is pivotally connected to the end of the stabilizing cable support rod 143 of the second support bracket 14B via the rod end ball bearing 24. One end of the damper 22 is pivotally connected to the end of the first reinforcing rod 161 or the second reinforcing rod 162 via the rod end ball bearing 24. In this way, the wind-resistant mechanism 2 can provide resistance when the first flexible solar panel frame 1A and the second flexible solar panel frame 1B move relative to each other, reducing the shaking, inversion or twisting of the flexible solar panel frames 1 of each row and improving the wind resistance of the flexible solar panel frame 1. When the flexible solar panel mounting array 10 is a multi-row flexible solar panel mounting 1, the telescopic rods 21 and dampers 22 of the wind-resistant mechanism 2 can respond to the posture changes and meet the angle requirements of the flexible solar panel mounting 1 in real time, which is highly versatile. In addition, the dampers 22 can apply a damping force to two adjacent rows of flexible solar panel mounting 1, which can significantly improve the wind resistance performance, especially in strong wind environments.
[0033] 5, a plurality of first support brackets 14A are installed at intervals along the extension direction of the cable structure 13. The plurality of first support brackets 14A includes a first intermediate support bracket 14A1 located in the middle of the cable structure 13 and a plurality of first side support brackets 14A2 installed on both sides of the first intermediate support bracket 14A1 along the extension direction of the cable structure 13. A first group of four vertices is formed when the first intermediate support bracket 14A1 is connected to the first module cable 1311, the second module cable 1312, the first stabilizing cable 1321, and the second stabilizing cable 1322. A second group of four vertices is formed when the first side support bracket 14A2 is connected to the first module cable 1311, the second module cable 1312, the first stabilizing cable 1321, and the second stabilizing cable 1322. The area of the quadrilateral formed by the four vertices of the first group is larger than the area of the quadrilateral formed by the four vertices of the second module, so that the first stabilizing cable 1321 and the second stabilizing cable 1322 have a concave shape that opens upward, improving the wind resistance of the flexible solar panel frame 1.
[0034] Referring to Figures 1, 2, and 11, in a second embodiment, the flexible solar panel mounting array 10 is a flexible solar tracking mounting array. When the flexible solar panel mounting array 10 is composed of multiple rows of flexible tracking solar panel mountings, the telescopic rods 21 and dampers 22 of the wind-resistant mechanism 2 can accommodate changes in their posture, meeting the angle change requirements of the flexible solar tracking mounting in real time and providing high versatility. The dampers 22 can also apply damping force to two adjacent rows of flexible solar panel mountings 1, significantly improving wind resistance, especially in strong wind environments. When telescoping at low speeds, the dampers 22 do not generate damping force and do not affect tracking operation. When telescoping at high speeds, the dampers 22 generate a large damping force, which is advantageous for strong wind resistance.
[0035] Each row of flexible solar panel mounting frames 1 further includes a base 17 installed on the top of each support column 11 and a driving device 18 attached to the base 17. The cross member 12 is rotatably mounted on the base 17. The driving device 18 is installed between the cross member 12 and the base 17 and includes a power output member connected to the cross member 12. The driving device 18 drives the cross member 12 to rotate, thereby rotating the cable structure 13 and the solar photovoltaic modules 20 attached to the cable structure 13. Thus, by installing a wind-resistant mechanism 2 between two adjacent rows of flexible solar tracking frames, the wind-resistant mechanism 2 can provide resistance when the first row of flexible solar tracking frames and the second row of flexible solar tracking frames move relative to each other, reducing the swaying, flipping, or twisting of the flexible solar tracking frames of each row, and improving the wind resistance of the flexible solar tracking frames. When the flexible solar panel mounting array 10 is a multi-row flexible solar tracking mounting, the telescopic rods 21 and dampers 22 of the wind-resistant mechanism 2 can adapt to its posture changes and meet the angle requirements of the flexible solar tracking mounting in real time, which is highly versatile. In addition, the dampers 22 can provide resistance to two adjacent rows of flexible solar tracking mounting, which can greatly improve wind resistance, especially in strong wind environments.
[0036] In this embodiment, the first stabilizing cable 1321 and the second stabilizing cable 1322 of the cable structure 13 have an upwardly opening arc shape. When the module cable 131 is rotated by the driving device 18, the prestress of the lowest stabilizing cable (e.g., the first stabilizing cable 1321) can generate an upward support force. This support force generates a torque around the center of gravity of the solar power generation module 20, which can overcome or offset the torque generated when the center of gravity of the solar power generation module 20 shifts from the center of rotation. If this torque is not overcome, the solar power generation module 20 will be distorted after a period of use, and the solar power generation modules 20 in the middle and near the foundation structure will no longer be in the same plane, which will affect the amount of power generation. In this technical form of the present invention, all the solar power generation modules 20 can be kept in the same plane, while the stabilizing cable on the opposite side (e.g., the second stabilizing cable 1322) can resist the force applied by wind force on the entire surface of the module and support the solar power generation module 20 upward against gravity, improving wind resistance.
[0037] The present invention further discloses a flexible solar power generation system including a flexible solar panel mounting array 10. The flexible solar power generation system further includes a cable structure 13 and solar photovoltaic modules 20 attached to each row of the flexible solar panel mounting 1, and the solar photovoltaic modules 20 are attached to the cable structure 13 by clamp blocks 210. This ensures the stability of the solar photovoltaic modules 20, improves the wind resistance of the solar photovoltaic modules 20, reduces the shaking, flipping or twisting of the solar photovoltaic modules 20 on the flexible solar panel mounting 1, and reduces maintenance costs. The flexible solar panel mounting 1 is a flexible solar photovoltaic tracking mounting frame or a flexible solar photovoltaic fixed mounting frame.
[0038] In view of the above, the flexible solar panel mounting array 10 of the present invention includes at least two rows of flexible solar panel mounting frames 1 and a wind-resistant mechanism 2. The wind-resistant mechanism 2 includes a telescopic rod 21 and a damper 22. The telescopic rod 21 includes a first rod 211 and a second rod 212 that are slidably fitted together along the telescopic direction. The first rod 211 is pivotally connected to the first flexible solar panel mounting frame 1A, and the second rod 212 is pivotally connected to the adjacent second flexible solar panel mounting frame 1B. The damper 22 has one end connected to the first flexible solar panel mounting frame 1A and the other end pivotally connected to the first rod 211 or the second rod 212. As a result, the wind-resistant mechanism 2 can provide resistance when the first flexible solar panel frame 1A and the second flexible solar panel frame 1B move relative to each other, reducing the shaking, flipping or twisting of the flexible solar panel frame 1 in each row and improving the wind resistance performance of the flexible solar panel frame 1.
[0039] When the flexible solar panel mounting array 10 is a multi-row flexible solar tracking mounting, the telescopic rods 21 and dampers 22 of the wind-resistant mechanism 2 can respond to its posture changes, satisfying the angle tracking requirements of the flexible solar tracking mounting in real time and providing high versatility. In addition, the dampers 22 can apply damping force to two adjacent rows of flexible solar tracking mounting, significantly improving wind resistance, especially in strong wind environments.
[0040] Terms used in the specification and claims of the present invention, such as "first," "second," etc., do not denote any order, quantity, or importance, but are merely used to distinguish features. Similarly, terms such as "one" or "an" do not denote a limitation of quantity, but indicate the presence of at least one. Unless otherwise specified, terms such as "front," "rear," "up," and "down" in the present invention are used for convenience of description and are not limited to a specific location or spatial orientation. Terms such as "comprise" or "include" are inclusive expressions, meaning that the elements appearing before "comprise" or "include" include the elements appearing thereafter and their equivalents. However, the elements appearing before "comprise" or "include" do not exclude the inclusion of other elements. In the present invention, the term "plurality" refers to two and more than two.
[0041] The above examples are merely for explaining the technical aspects of the present invention and are not intended to be limiting, and an understanding of this specification should be premised on the technical knowledge of those skilled in the art. For example, although the directions such as "front," "back," "left," "right," "upper," and "lower" have been described in detail with reference to the above examples, it should be understood that those skilled in the art can make modifications or equivalent substitutions to the present invention, and that all technical aspects and improvements that do not deviate from the spirit and scope of the present invention should be encompassed within the scope of the utility model registration claims of the present invention.
Claims
1. 1. A flexible solar panel mounting array, comprising: At least two rows of flexible solar panel mounting structures and a wind-resistant mechanism; Each row of the flexible solar panel mounting brackets includes a plurality of support poles installed at intervals, a cross member installed at the top of each of the support poles, a cable structure connecting the two cross members, and a support bracket connected to the cable structure; and each of the at least two rows of the flexible solar panel mounting brackets includes a first flexible solar panel mounting bracket and a second flexible solar panel mounting bracket adjacent to each other between the rows, and the support brackets include a first support bracket provided on the first flexible solar panel mounting bracket and a second support bracket provided on the second flexible solar panel mounting bracket; a flexible solar panel mounting array, characterized in that the wind-resistant mechanism includes a telescopic rod and a damper, the telescopic rod includes a first rod and a second rod that are slidably fitted together along the telescopic direction thereof, the first rod is pivotally connected to the first flexible solar panel mounting frame, the second rod is pivotally connected to the second flexible solar panel mounting frame, one end of the damper is pivotally connected to the first flexible solar panel mounting frame, and the other end of the damper is pivotally connected to the first rod or the second rod.
2. 2. The flexible solar panel mounting array of claim 1, wherein the pivot connection point between the first rod and the first flexible solar panel mounting frame, the pivot connection point between one end of the damper and the first flexible solar panel mounting frame, and the pivot connection point between the other end of the damper and the first rod or the second rod form three vertices of a triangle.
3. 2. The flexible solar panel mounting array of claim 1, wherein the first rod is pivotally connected to the cable structure of the first support bracket or the first flexible solar panel mounting frame, the second rod is pivotally connected to the cable structure of the second support bracket or the second flexible solar panel mounting frame, and the damper has one end pivotally connected to the cable structure of the first support bracket or the first flexible solar panel mounting frame and the other end pivotally connected to the first rod or the second rod.
4. the first rod includes a first body and a first connecting member, one end of the first connecting member connected to the first body and the other end of the first connecting member pivotally connected to the first support bracket; and / or 2. The flexible solar panel mounting array of claim 1, wherein the second rod comprises a second body and a second connecting member, one end of the second connecting member is connected to the second body and the other end of the second connecting member is pivotally connected to the second support bracket.
5. 5. The flexible solar panel mounting array according to claim 4, wherein the wind-resistant mechanism further comprises a rotating base installed on the first body or the second body, the damper comprises a damper body and a damper telescopic rod, one end of the damper body is rotatably connected to the rotating base, and one end of the damper telescopic rod is rotatably connected to the first support bracket.
6. the rotating base includes two opposing support plates provided on the first body or the second body and a first pivot shaft connecting the two support plates, and one end of the damper body is provided on the first pivot shaft via a rod end ball bearing; and / or 6. The flexible solar panel mounting array according to claim 5, wherein the first support bracket includes a support rod, the support rod includes two opposing fixed plates and a second pivot shaft connecting the two fixed plates, and one end of the damper telescopic rod is connected to the second pivot shaft via a rod end ball bearing.
7. the first support bracket includes a module cable support rod, a stabilizing cable support rod installed corresponding to the module cable support rod, and a plurality of side support rods connected between the module cable support rod and the stabilizing cable support rod; 2. The flexible solar panel mounting array of claim 1, wherein the cable structure includes module cables and stabilizing cables, the stabilizing cables are located below the module cables, and the module cables are used for fixed connection with the photovoltaic modules, the module cables include first module cables and second module cables installed along the left-right direction, the stabilizing cables include first stabilizing cables and second stabilizing cables installed along the left-right direction, the first module cables and the second module cables are fixed to first and second fixing points of the module cable support rods by clamping members, respectively, the first stabilizing cables and the second stabilizing cables are fixed to third and fourth fixing points of the stabilizing cable support rods by clamping members, and the first fixing point, the second fixing point, the third fixing point and the fourth fixing point constitute four vertices of a trapezoid.
8. 8. The flexible solar panel mounting array of claim 7, wherein the plurality of first support brackets are installed at intervals along the extension direction of the cable structure, and include a first intermediate support bracket located in an intermediate portion of the cable structure, and a plurality of first side support brackets provided on both sides of the first intermediate support bracket along the extension direction of the cable structure, wherein the first intermediate support bracket is connected to the first module cable, the second module cable, the first stabilizing cable, and the second stabilizing cable to form a first group of four vertices, and the first side support bracket is connected to the first module cable, the second module cable, the first stabilizing cable, and the second stabilizing cable to form a second group of four vertices, and an area of a quadrangle formed by the four vertices of the first group is greater than an area of a quadrangle formed by the four vertices of the second group.
9. 8. The flexible solar panel mounting array according to claim 7, wherein a reinforcing rod is installed near an end of each of the module cable support rods and the stabilizing cable support rods, and the reinforcing rod, the side support rod adjacent to the reinforcing rod, and the module cable support rod or the stabilizing cable support rod form a triangle.
10. 10. The flexible solar panel mounting array according to claim 1, wherein the flexible solar panel mounting array in each row further comprises a base installed on the top of each of the support columns and a driving device attached to the base, the cross member is rotatably mounted on the base, the driving device is installed between the cross member and the base and includes a power output member connected to the cross member, and the driving device drives the cross member to rotate, thereby rotating the cable structure and the solar power generation modules attached to the cable structure.
11. 2. The flexible solar panel mounting array according to claim 1, wherein the first support bracket and the second support bracket have the same structure.
12. A flexible solar power generation system, comprising:
11. A flexible solar power generation system comprising the flexible solar panel mounting array of claim 10, and further comprising a solar power generation module attached to a cable structure of the flexible solar panel mounting of each row, wherein the solar power generation module is attached to the cable structure by a clamp block.