Strong-intensity-resistant photovoltaic panel support mechanism
Through the design of hydraulic shaft and buffer frame structure, the photovoltaic panel bracket adjusts the angle under strong wind, solving the problem of high cost and easy damage of existing brackets, achieving a balance between wind resistance and power generation efficiency.
Patent Information
- Application Number
- CN202510621551.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-15
- Publication Date
- 2025-08-08
AI Technical Summary
When facing strong winds, existing photovoltaic panel brackets resist wind by enhancing mechanical strength, resulting in high cost and easy damage to photovoltaic panels.
The hydraulic shaft and buffer frame structure are adopted to enable the photovoltaic panel to adjust the angle according to the wind direction under the action of wind force, and buffering is achieved through the cooperation of hydraulic oil and damping rods, avoiding damage to the photovoltaic panel due to rigid support, and providing flexibility in angle adjustment.
It effectively reduces the risk of damage of photovoltaic panels under strong winds, improves service life and power generation efficiency, reduces the cost of brackets, and adapts to installation needs of different environments.
Smart Images

Figure CN120454598A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of photovoltaic power generation, and in particular to a strong wind resistant photovoltaic panel support mechanism. Background Art
[0002] With the growing global demand for clean energy, photovoltaic power generation, as a sustainable green energy technology, has been widely applied and promoted. In photovoltaic power generation systems, photovoltaic panel brackets are key components that support and secure photovoltaic panels. Their performance directly affects the stability and service life of the photovoltaic power generation system.
[0003] In actual applications, photovoltaic panels are often faced with the test of severe weather conditions such as strong winds. In order to improve the performance of strong wind resistance, most of the brackets in the existing technology adopt methods such as increasing the thickness of the material and strengthening the structural connection to simply strengthen the mechanical strength of the bracket. Although this method has enhanced the wind resistance of the bracket to a certain extent, it inevitably leads to a significant increase in the cost of the bracket, which increases the construction cost of photovoltaic power generation projects. At the same time, even if the mechanical strength of the bracket is high, when facing strong winds, since the bracket and the photovoltaic panel are usually rigidly connected, the bracket will cause the photovoltaic panel to be under excessive pressure in the process of supporting the photovoltaic panel. This excessive pressure can easily cause cracks, deformation and other damage to the photovoltaic panel, seriously affecting the power generation efficiency and service life of the photovoltaic panel, thereby increasing the subsequent maintenance costs and energy losses.
[0004] Therefore, there is an urgent need to develop a new photovoltaic panel support mechanism that can effectively resist strong winds, reduce costs and protect photovoltaic panels. Summary of the Invention
[0005] Technical problems solved
[0006] In view of the shortcomings of the existing technology, the present invention provides a strong wind resistant photovoltaic panel bracket mechanism, which solves the problem that traditional brackets rely on enhanced mechanical strength to resist wind, resulting in high costs and easy damage to photovoltaic panels.
[0007] Technical Solution
[0008] To achieve the above objectives, the present invention is implemented through the following technical solutions: a strong wind resistant photovoltaic panel support mechanism, including a fixing mechanism, the fixing mechanism including a main support frame, a second lower support frame is fixedly provided at the front end of the main support frame near the lower side, a rotating shaft is hingedly provided at both sides of the front end of the main support frame, one end of each of the two rotating shafts is fixedly provided with a support block, two mounting rods are fixedly connected between the two support blocks, and the outer surface of the two mounting rods is provided with a mounting mechanism;
[0009] The mounting mechanism includes a connecting frame, two mounting grooves are provided inside the connecting frame, and the connecting frame is slidably sleeved on the outside of the two mounting rods through the two mounting grooves. Two fixing knobs are threadedly sleeved on one side of the connecting frame, and a lower connecting seat is fixedly provided at the middle position of the upper end of the connecting frame, and a main support shaft is fixedly provided at the middle position of the upper end of the lower connecting seat, and an inner support disk is provided at the upper end of the main support shaft in a ball hinge.
[0010] Preferably, a plurality of inner support bars are fixedly provided on the outside of the inner support plate, and a photovoltaic panel fixing frame is fixedly provided between the outsides of the plurality of inner support bars.
[0011] Preferably, a plurality of upper ball hinges are fixedly provided at the lower end of the inner support plate, a hydraulic shaft is fixedly provided at the lower end of each of the upper ball hinges, a lower ball hinge is fixedly provided at the lower end of each of the hydraulic shafts, and the lower ball hinges are respectively fixedly provided at the upper end of the lower connecting seat.
[0012] Preferably, a buffer frame is fixedly provided on one side of the upper end of the connecting frame, hydraulic oil is provided inside the buffer frame and the hydraulic shaft, a plurality of output ports are fixedly provided on the upper end of the buffer frame, a plurality of bellows are fixedly provided outside the output ports, and the other ends of the plurality of bellows are respectively fixedly connected to the interiors of a plurality of hydraulic shafts.
[0013] Preferably, a buffer plate is slidably provided on the side of the buffer frame away from the output port, two damping rods are penetrated inside the buffer plate, an adjustment plate is fixed between one ends of the two damping rods, an adjustment knob is threadedly sleeved on one side of the buffer frame, and the adjustment knob is threadedly provided inside the adjustment plate.
[0014] Preferably, a first lower support frame is fixedly provided at the rear end of the main support frame near the lower side position, a first reinforcement frame is fixedly provided on both sides between the main support frame and the second lower support frame, a second reinforcement frame is fixedly provided on both sides between the main support frame and the first lower support frame, and multiple mounting blocks are provided at both ends of the first lower support frame and the second lower support frame.
[0015] Preferably, an adjustment rod is threadedly sleeved on one end of the two support blocks, and an adjustment moving block is hingedly provided on the other end of the two adjustment rods. Fixed openings are opened on both sides of the second lower support frame near the front end, and the two adjustment moving blocks are respectively connected to the inside of two of the multiple fixed openings by bolts.
[0016] Beneficial effects
[0017] The present invention provides a strong wind resistant photovoltaic panel support mechanism. It has the following beneficial effects:
[0018] 1. The present invention provides a strong-wind-resistant photovoltaic panel support mechanism. This strong-wind-resistant photovoltaic panel support mechanism utilizes a unique structural design. When encountering strong winds, the photovoltaic panel tends to move under the influence of the wind, and the hydraulic shaft is forced to extend and contract, allowing the photovoltaic panel to align with the wind direction. This effectively reduces the wind force acting on the photovoltaic panel, avoids damage to the photovoltaic panel caused by excessive pressure due to rigid support, and greatly improves the safety and service life of the photovoltaic panel in strong wind environments. Furthermore, the limited extension and contraction of the hydraulic shaft ensures that the angle of change in the photovoltaic panel's direction remains within a reasonable range, preventing excessive deviation that affects light reception, thus achieving a balance between strong wind resistance and guaranteed power generation efficiency.
[0019] 2. The present invention provides a strong-wind-resistant photovoltaic panel support mechanism. During the installation process, the support mechanism can adjust the angle of the installation mechanism quickly and conveniently through the adjustment rod and the fixing port according to the optimal angle surveyed in the installation area, so as to meet the installation requirements in different environments. In addition, according to the different frequencies of strong winds in the installation area, the passage rate of the hydraulic oil in the buffer frame can be adjusted by adjusting the knob to change the strength of the photovoltaic panel during automatic adjustment. In areas with lower frequencies of strong winds, the automatic adjustment force is increased, the frequency of the photovoltaic panel's direction change is reduced, and the stability of photovoltaic power generation is improved. This flexible adjustment method avoids the cost waste caused by excessively strengthening the mechanical strength of the support while ensuring wind resistance, thus achieving the dual goals of cost optimization and performance improvement. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 It is a schematic diagram of the axial side of the present invention;
[0021] Figure 2 This is a schematic diagram of the axial side of the mounting mechanism of the present invention;
[0022] Figure 3 This is a schematic axial view of the mounting mechanism of the present invention from another perspective;
[0023] Figure 4 This is an axial schematic diagram of the connecting frame of the present invention;
[0024] Figure 5 is a schematic cross-sectional view of a buffer frame of the present invention;
[0025] Figure 6 This is a schematic axial view of the fixing mechanism of the present invention;
[0026] Figure 7 It is a partial axial side schematic diagram of the fixing mechanism of the present invention.
[0027] Among them, 1. Installation mechanism; 2. Fixing mechanism; 101. Photovoltaic panel fixing frame; 102. Inner support bar; 103. Inner support plate; 104. Buffer frame; 105. Connecting frame; 106. Mounting groove; 107. Bellows; 108. Lower connecting seat; 109. Fixing knob; 110. Upper ball hinge; 111. Main support shaft; 112. Hydraulic shaft; 113. Lower ball hinge; 114. Adjusting knob; 115. Output port; 116. Damping rod; 117. Buffer plate; 118. Adjusting plate; 201. Main support frame; 202. Mounting rod; 203. Rotating axis; 204. Support block; 205. First reinforcement frame; 206. Second reinforcement frame; 207. First lower support frame; 208. Second lower support frame; 209. Adjusting rod; 210. Adjusting moving block; 211. Fixing port; 212. Mounting block. DETAILED DESCRIPTION
[0028] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. 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 ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0029] like Figure 1 、 6 As shown in Figure 7, an embodiment of the present invention provides a strong wind resistant photovoltaic panel support mechanism, including a fixing mechanism 2, the fixing mechanism 2 includes a main support frame 201, a second lower support frame 208 is fixedly provided at the front end of the main support frame 201 near the lower side, and a rotating shaft 203 is hingedly provided on both sides of the front end of the main support frame 201, and a support block 204 is fixedly provided at one end of the two rotating shafts 203. Two mounting rods 202 are fixedly connected between the two support blocks 204, and the outer surface of the two mounting rods 202 is provided with a mounting mechanism 1;
[0030] Specifically, in the above-mentioned specific embodiment, the main support frame 201 serves as the core support component of the entire support, providing the main support force for the installation mechanism 1 and the photovoltaic panel. The second lower support frame 208 cooperates with the main support frame 201 to enhance the support stability of the front end and form a stable triangular support structure. The hinged design of the rotating shaft 203 and the support block 204 enables the installation mechanism 1 to be adjusted around the rotating shaft 203 to adapt to different installation environments and lighting requirements; the connection between the support block 204 and the mounting rod 202 provides an installation base for the installation mechanism 1, allowing the installation mechanism 1 to slide and fix on the mounting rod 202. The design of this fixing mechanism 2, through a reasonable structural layout, ensures the overall support strength while giving the installation mechanism 1 the flexibility of angle adjustment. Compared with traditional fixed brackets, it can not only meet the requirements for the installation angle of photovoltaic panels in different scenarios, but also enhance the stability of the bracket, improve the adaptability to complex environments, and has a simple structure, which is easy to process and install.
[0031] like Figure 6 and 7 As shown, a first lower support frame 207 is fixedly provided at a position near the lower side of the rear end of the main support frame 201, a first reinforcement frame 205 is fixedly provided on both sides between the main support frame 201 and the second lower support frame 208, a second reinforcement frame 206 is fixedly provided on both sides between the main support frame 201 and the first lower support frame 207, a plurality of mounting blocks 212 are provided at both ends of the first lower support frame 207 and the second lower support frame 208, an adjusting rod 209 is threadedly sleeved on one end of the two support blocks 204, and an adjusting moving block 210 is hingedly provided on the other end of the two adjusting rods 209, and a fixing opening 211 is penetrated through both sides of the second lower support frame 208 near the front end, and the two adjusting moving blocks 210 are respectively connected to the inside of two of the plurality of fixing openings 211 by bolts;
[0032] Specifically, in the above-mentioned specific embodiment, the first lower support frame 207 cooperates with the main support frame 201 to further enhance the support strength of the rear end of the bracket, and forms a front and rear stable support with the second lower support frame 208 at the front end. The arrangement of the first reinforcement frame 205 and the second reinforcement frame 206, through the principle of triangular stable structure, tightly connects the main support frame 201, the first lower support frame 207 and the second lower support frame 208, greatly improving the deformation resistance and wind resistance of the entire fixing mechanism 2. The mounting block 212 is used to fix the bracket on the ground or other installation foundation to ensure the stable installation of the bracket. The adjustment rod 209 is threaded and hinged with the adjustment movable block 210. By rotating the adjustment rod 209 to change its extension length, the adjustment movable block 210 is driven to move in the fixing port 211, thereby achieving precise adjustment of the angle of the mounting mechanism 1 to adapt to the optimal lighting angle requirements in different regions. This structural design not only significantly improves the overall strength and stability of the bracket, can effectively withstand the impact of severe weather such as strong winds, but also provides a flexible and precise angle adjustment method. Installers can quickly and easily adjust the installation angle of the photovoltaic panels based on the actual installation environment and lighting conditions to achieve optimal power generation efficiency. Furthermore, the provision of multiple mounting blocks 212 ensures the secure installation of the bracket, reducing safety hazards and power generation efficiency losses caused by unstable installation.
[0033] like Figure 1-5 As shown, the mounting mechanism 1 includes a connecting frame 105, and two mounting grooves 106 are provided inside the connecting frame 105. The connecting frame 105 is slidably sleeved on the outside of the two mounting rods 202 through the two mounting grooves 106. Two fixing knobs 109 are threadedly sleeved on one side of the connecting frame 105. A lower connecting seat 108 is fixedly provided at the middle position of the upper end of the connecting frame 105, and a main support shaft 111 is fixedly provided at the middle position of the upper end of the lower connecting seat 108. The upper end of the main support shaft 111 is ball-hinged with an inner support disk 103, and the lower end of the inner support disk 103 is fixedly provided with a plurality of upper ball hinges 110, and the lower ends of the plurality of upper ball hinges 110 are fixedly provided with hydraulic shafts 112, and the lower ends of the plurality of hydraulic shafts 112 are fixedly provided with lower ball hinges 113, and the plurality of lower ball hinges 113 are respectively fixedly provided at the upper ends of the lower connecting seat 108;
[0034] Specifically, in the above-described embodiment, the connecting frame 105 slides with the mounting rod 202 via the mounting slot 106, allowing the mounting mechanism 1 to be adjusted on the mounting rod 202 of the fixing mechanism 2, facilitating alignment of the photovoltaic panel during installation. The fixing knob 109 is tightened by threading to secure the connecting frame 105 to the mounting rod 202, ensuring the stability of the mounting mechanism 1. The ball-jointed structure of the lower connecting seat 108, main support shaft 111, and inner support plate 103 provides the photovoltaic panel with multi-angle movement, allowing it to rotate freely when subjected to wind. The combination of the upper ball hinge 110, the hydraulic shaft 112, and the lower ball hinge 113 utilizes the telescopic characteristics of the hydraulic shaft 112. When the photovoltaic panel is subjected to wind and has a tendency to move, the hydraulic shaft 112 extends or shortens according to the force applied. A reset spring is provided internally. Through the flow of hydraulic oil between the hydraulic shaft 112 and the buffer frame 104, the rotation of the photovoltaic panel is buffered and adjusted, while ensuring that the photovoltaic panel can be reset after the wind disappears. This design of the mounting mechanism 1 enables flexible adjustment and stable fixation of the photovoltaic panel during installation, and gives the photovoltaic panel the ability to adaptively adjust its angle in strong winds. Compared to traditional rigidly connected brackets, it can effectively reduce the direct impact of wind on the photovoltaic panel, protect the photovoltaic panel from damage, and extend the service life of the photovoltaic panel. At the same time, the buffering and reset functions of the hydraulic shaft 112 enable the photovoltaic panel to adapt to the wind direction to reduce wind resistance under the action of wind, and automatically return to the optimal illumination angle after the wind passes, ensuring the stability and efficiency of photovoltaic power generation.
[0035] A plurality of inner support bars 102 are fixedly arranged on the outside of the inner support plate 103, and a photovoltaic panel fixing frame 101 is fixedly arranged between the outer portions of the plurality of inner support bars 102;
[0036] Specifically, in the above-mentioned specific embodiment, the inner support bars 102 are distributed outside the inner support disk 103, providing uniform and stable support force for the photovoltaic panel fixing frame 101, and tightly connecting the photovoltaic panel fixing frame 101 to the inner support disk 103. The photovoltaic panel fixing frame 101 fixes the photovoltaic panel to its surface by bolts or other fixing methods. The structural design of the inner support bars 102 and the photovoltaic panel fixing frame 101 allows the force exerted on the photovoltaic panel to be evenly distributed to the inner support disk 103, and then transmitted to the hydraulic shaft 112 and the connecting frame 105 and other components through the inner support disk 103, thereby ensuring the stability of the photovoltaic panel during operation. This structural design is simple and reliable, and can effectively fix the photovoltaic panel, ensuring that the photovoltaic panel maintains a stable working state under various environmental conditions. The uniform support structure avoids deformation or damage of the photovoltaic panel due to excessive local force, thereby improving the reliability and safety of the photovoltaic panel.
[0037] A buffer frame 104 is fixedly provided on one side of the upper end of the connecting frame 105. Hydraulic oil is provided inside the buffer frame 104 and inside the hydraulic shaft 112. A plurality of output ports 115 are fixedly provided on the upper end of the buffer frame 104. Bellows 107 are fixedly provided on the outside of the plurality of output ports 115. The other ends of the plurality of bellows 107 are respectively fixedly connected to the interiors of the plurality of hydraulic shafts 112. A buffer plate 117 is slidably provided on the side of the buffer frame 104 away from the output port 115. Two damping rods 116 are provided inside the buffer plate 117. An adjustment plate 118 is fixedly provided between one ends of the two damping rods 116. An adjustment knob 114 is threadedly sleeved on one side of the interior of the buffer frame 104. The adjustment knob 114 is threadedly provided on the interior of the adjustment plate 118.
[0038] Specifically, in the above-described embodiment, when the photovoltaic panel is affected by wind and the hydraulic shaft 112 expands and contracts, hydraulic oil flows between the hydraulic shaft 112 and the buffer frame 104 through the bellows 107. As the hydraulic oil flows into the buffer frame 104, it pushes the buffer plate 117 to slide on the damping rod 116. The damping rod 116 dampens the movement of the buffer plate 117, dissipating the energy of the hydraulic oil flow and thus buffering the rotation of the photovoltaic panel. The adjustment knob 114 engages with the threaded adjustment plate 118. Turning the adjustment knob 114 moves the adjustment plate 118, thereby changing the initial position of the buffer plate 117 within the buffer frame 104 and adjusting the distance the buffer plate 117 can move. Changes in the movable distance of the buffer plate 117 will affect the flow rate of the hydraulic oil within the buffer frame 104, thereby adjusting the damping effect of the hydraulic shaft 112 during its extension and retraction, thereby controlling the sensitivity of the photovoltaic panel angle adjustment. The buffer and adjustment structure is cleverly designed. Through the flow of hydraulic oil and the coordination of the damping rod 116 and the buffer plate 117, it can effectively buffer the rotation of the photovoltaic panel under strong winds, reducing the impact and damage to the photovoltaic panel and the bracket caused by rapid rotation. At the same time, by adjusting the knob 114, the sensitivity of the photovoltaic panel angle adjustment can be flexibly adjusted according to different usage environments and needs. In areas with frequent strong winds, the sensitivity can be reduced to reduce unnecessary shaking of the photovoltaic panel; in areas with less wind, the sensitivity can be increased to enable the photovoltaic panel to better adapt to changes in wind direction and ensure photovoltaic power generation efficiency. This adjustable buffer structure improves the applicability and reliability of the bracket mechanism.
[0039] Working principle: Under normal working conditions, the photovoltaic panel fixing frame 101 stably installs the photovoltaic panel so that it maintains the best light receiving angle to generate electricity. When encountering strong winds, the wind acts on the photovoltaic panel, causing the photovoltaic panel to move in the same direction as the strong wind. At this time, the inner support plate 103 connected to the photovoltaic panel fixing frame 101 is connected to the lower connecting seat 108 through the main support shaft 111. The multiple upper ball hinges 110 at the lower end of the inner support plate 103 drive the hydraulic shaft 112 to bear force, and the hydraulic shafts 112 at different positions are extended or shortened according to the wind force. For example, the hydraulic shaft 112 on the windward side is shortened, and the hydraulic shaft 112 on the leeward side is extended, so that the overall direction of the photovoltaic panel can rotate in line with the strong wind direction, reducing the impact of the wind on the photovoltaic panel;
[0040] As the photovoltaic panel changes direction, hydraulic oil within hydraulic shaft 112 is pumped into or out of buffer frame 104 within connecting frame 105. The flow of hydraulic oil is hindered by damping rod 116 and buffer plate 117, consuming significant force to provide cushioning during directional changes and prevent damage to the photovoltaic panel due to rapid changes in direction. Buffer plate 117 moves under the impact of the hydraulic oil, and adjustment knob 114 controls the distance buffer plate 117 can move via adjustment plate 118, thereby varying the flow rate of hydraulic oil within buffer frame 104 and adjusting the damping effect.
[0041] When the strong wind passes, the return spring inside the hydraulic shaft 112 takes effect, causing the hydraulic shaft 112 to slowly reset, thereby restoring the orientation of the photovoltaic panel to the optimal light reception angle and continuing to generate electricity efficiently. When installing this bracket, the fixing mechanism 2 is fixed to the designated area using the mounting block 212. The adjustment rod 209 is rotated according to the optimal angle surveyed to change the length of its exposure inside the support block 204. The adjustment movable block 210 is then installed on the corresponding fixing port 211 to complete the bracket angle adjustment installation. The entire process is simple, convenient, and can be flexibly adapted to different environmental requirements.
[0042] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.
Claims
1. A strong wind resistant photovoltaic panel support mechanism, comprising a fixing mechanism (2), characterized in that: The fixing mechanism (2) comprises a main support frame (201), a second lower support frame (208) is fixedly provided at a position near the lower side of the front end of the main support frame (201), rotating shafts (203) are hingedly provided at both sides of the front end of the main support frame (201), one end of each of the two rotating shafts (203) is fixedly provided with a support block (204), two mounting rods (202) are fixedly connected between the two support blocks (204), and the mounting mechanism (1) is sleeved on the outside of the two mounting rods (202); The mounting mechanism (1) comprises a connecting frame (105), two mounting slots (106) are provided inside the connecting frame (105), the connecting frame (105) is slidably sleeved on the outside of two mounting rods (202) through the two mounting slots (106), two fixing knobs (109) are threadedly sleeved on one side of the connecting frame (105), a lower connecting seat (108) is fixedly provided at the middle position of the upper end of the connecting frame (105), a main support shaft (111) is fixedly provided at the middle position of the upper end of the lower connecting seat (108), and an inner support disc (103) is provided at the upper end of the main support shaft (111) in a ball hinge connection.
2. The strong wind resistant photovoltaic panel support mechanism according to claim 1, characterized in that: A plurality of inner support bars (102) are fixedly arranged on the outside of the inner support plate (103), and a photovoltaic panel fixing frame (101) is fixedly arranged between the outsides of the plurality of inner support bars (102).
3. The strong wind resistant photovoltaic panel support mechanism according to claim 1, characterized in that: A plurality of upper ball hinges (110) are fixedly provided at the lower end of the inner support plate (103), a hydraulic shaft (112) is fixedly provided at the lower end of each of the upper ball hinges (110), a lower ball hinge (113) is fixedly provided at the lower end of each of the hydraulic shafts (112), and the lower ball hinges (113) are respectively fixedly provided at the upper end of the lower connecting seat (108).
4. The strong wind resistant photovoltaic panel support mechanism according to claim 3, characterized in that: A buffer frame (104) is fixedly provided on one side of the upper end of the connection frame (105), and hydraulic oil is provided inside the buffer frame (104) and the hydraulic shaft (112). A plurality of output ports (115) are fixedly provided on the upper end of the buffer frame (104), and bellows (107) are fixedly provided outside the plurality of output ports (115). The other ends of the plurality of bellows (107) are respectively fixedly connected to the interiors of the plurality of hydraulic shafts (112).
5. The strong wind resistant photovoltaic panel support mechanism according to claim 4, characterized in that: A buffer plate (117) is slidably provided on one side of the buffer frame (104) away from the output port (115); two damping rods (116) are provided through the buffer plate (117); an adjustment plate (118) is fixedly provided between one ends of the two damping rods (116); an adjustment knob (114) is threadedly sleeved on one side of the buffer frame (104); and the adjustment knob (114) is threadedly provided inside the adjustment plate (118).
6. The strong wind resistant photovoltaic panel support mechanism according to claim 1, characterized in that: A first lower support frame (207) is fixedly provided at a position near the lower side of the rear end of the main support frame (201); first reinforcement frames (205) are fixedly provided at positions on both sides between the main support frame (201) and the second lower support frame (208); second reinforcement frames (206) are fixedly provided at positions on both sides between the main support frame (201) and the first lower support frame (207); and a plurality of mounting blocks (212) are provided at both ends of the first lower support frame (207) and the second lower support frame (208).
7. The strong wind resistant photovoltaic panel support mechanism according to claim 1, characterized in that: An adjusting rod (209) is threadedly sleeved on one end of each of the two support blocks (204), and an adjusting movable block (210) is hingedly provided on the other end of each of the two adjusting rods (209). Fixing openings (211) are provided through both sides of the second lower support frame (208) near the front end, and the two adjusting movable blocks (210) are respectively connected to the inside of two of the multiple fixing openings (211) by bolts.