Wind resistant reinforced solar photovoltaic racking

The wind-resistant reinforced photovoltaic bracket controlled by wind sensors and servo motors, combined with wind-driven self-cleaning components and thermal cleaning systems, solves the problem of impurities adhering to photovoltaic panels in windy weather, achieves automatic cleaning and improves photoelectric conversion efficiency.

CN119382588BActive Publication Date: 2025-10-10JIANGYIN XINYUANSHUN ALUMINUM TECH CO LTD
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Patent Information

Application Number
CN202411500084.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-10-25
Publication Date
2025-10-10
Estimated Expiration
2044-10-25

AI Technical Summary

Technical Problem

Existing photovoltaic brackets are not convenient for using external wind power to automatically clean dust and impurities on the surface of photovoltaic panels in windy weather, resulting in dust adhesion affecting the photoelectric conversion efficiency. In addition, the cleaning components are prone to impurities after long-term use, reducing the cleaning effect.

Method used

A wind-resistant and reinforced solar photovoltaic bracket was designed. The wind sensor and servo motor were used to control the guide screw and movable gear rack to adjust the windward area of ​​the photovoltaic panel. The bracket was also equipped with a wind-driven self-cleaning component to automatically clean impurities using wind power. When the weather was clear, the self-cleaning component was driven by thermal energy for cleaning.

Benefits of technology

It can automatically clean impurities on the surface of photovoltaic panels in windy weather, improve wind resistance and cleaning efficiency, reduce dust adhesion, improve photoelectric conversion efficiency, and automatically shake off impurities on cleaning components when the weather is clear.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses an anti-wind reinforced solar photovoltaic support and belongs to the technical field of photovoltaic supports. The anti-wind reinforced solar photovoltaic support comprises a base, a lateral support plate is fixedly installed at the middle part of the upper end of the base, the side edges of the lateral support plate are connected with the base through inclined support rods, a wind power sensor is fixedly installed at the upper end of the lateral support plate, the wind power sensor and a servo motor are electrically connected, a guide screw rod is fixedly connected to the output end of the servo motor, the guide screw rod is installed through the middle part of a movable gear frame, the edge clamping block of the movable gear frame is located in a guide groove formed in the lateral support plate, a transmission gear is arranged on the inner side of the movable gear frame, and the transmission gear is key-connected to the middle part rotating shaft of a connecting frame. The anti-wind reinforced solar photovoltaic support can realize the automatic cleaning of the impurities attached to the surface of the photovoltaic panel by using the outdoor wind power, and can shake off the dust and impurities attached to the cleaning component when the weather is fine.
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Description

Technical Field

[0001] The present invention relates to the technical field of photovoltaic brackets, and in particular to a wind-resistant reinforced solar photovoltaic bracket. Background Art

[0002] Since the altitude of mountainous terrain is relatively high and the air is thinner than that in plain areas, the absorbed sunlight is stronger, so solar photovoltaic panels are often installed in mountainous areas. However, since mountainous areas often have strong winds, the wind will exert a greater force on the photovoltaic panels. Therefore, wind-resistant photovoltaic brackets are usually used to install and fix the photovoltaic panels.

[0003] For example, the Chinese patent with the announcement date of 2021-03-19, the name of which is: A photovoltaic bracket that can be flipped in a circular direction, and the announcement number is CN112532158A, wherein the frame, support plates are provided on both sides of the frame, and an arc-shaped placement opening is provided on the top of the support plate. The inner ring surface of the arc-shaped placement opening is welded and fixed with an elastic clip, and the elastic clip wraps the fixing ring. A slide is provided on the inner wall of the fixing ring, and movable card blocks are connected at two relative points in the slide. A fixed connecting block is fixed between the card block and the card block in the fixed ring slide on the other side support plate to connect them, and a placement frame is fixed between the connecting blocks. A rotating shaft is provided in the middle of the placement frame, and the two ends of the rotating shaft are respectively connected to the rotating blocks and fit into the center hole of the fixing ring.

[0004] Among them, the above-mentioned existing technologies have the following technical problems: when in use, the existing photovoltaic bracket adjusts the angle of the photovoltaic panel thereon to change the windward area and improve the overall wind resistance effect. However, in windy weather, it is not convenient to use external wind force to automatically clean the dust and impurities on the surface of the photovoltaic panel, which leads to excessive attachment of dust to the photovoltaic panel and easily affects the photoelectric conversion efficiency. Moreover, the photovoltaic bracket is usually set outdoors. When the cleaning component is used for a long time, it is easy to attach impurities to it itself, and then during subsequent cleaning, the cleaning effect of the photovoltaic panel is reduced.

[0005] Therefore, we propose a wind-resistant reinforced solar photovoltaic bracket to solve the problems mentioned above. Summary of the Invention

[0006] The purpose of the present invention is to provide a wind-resistant reinforced solar photovoltaic bracket to solve the problem raised in the above background technology that the existing photovoltaic brackets on the market can change the windward area by adjusting the angle of the photovoltaic panels thereon during use to improve the overall wind resistance effect. However, in windy weather, it is not convenient to use external wind force to automatically clean the dust and impurities on the surface of the photovoltaic panels, which can easily affect the photoelectric conversion efficiency after excessive dust adheres to the photovoltaic panels. In addition, the photovoltaic brackets are usually set outdoors. When the cleaning components are used for a long time, they are also prone to adhere to impurities, which reduces the cleaning effect of the photovoltaic panels during subsequent cleaning.

[0007] To achieve the above-mentioned object, the present invention provides the following technical solution: a wind-resistant reinforced solar photovoltaic bracket, comprising a base, a lateral support plate fixedly mounted on the middle portion of the upper end of the base, and the side edges of the lateral support plate are interconnected with the base via diagonal braces, a wind sensor is fixedly mounted on the upper end of the lateral support plate, and a connecting frame is connected to the inner side of the lateral support plate via a bearing, and the connecting frame is used to fix the photovoltaic panel;

[0008] The wind sensor is electrically connected to the servo motor, and a guide screw is fixedly connected to the output end of the servo motor. The guide screw is installed through the middle of the mobile gear rack, and the edge block of the mobile gear rack is located in the guide groove opened on the lateral support plate. A transmission gear is provided on the inner side of the mobile gear rack, and the transmission gear key is connected to the middle rotating shaft of the connecting frame. Two wind-driven self-cleaning components are installed on the lateral support plate. The wind-driven self-cleaning components are used to clean impurities attached to the photovoltaic panels during strong winds, and to achieve self-cleaning of the wind-driven self-cleaning components through thermal energy when the weather is clear.

[0009] Preferably, the guide screw and the middle part of the movable gear rack are meshingly connected, and the outer wall of the edge block of the movable gear rack and the inner wall of the guide groove opened on the side support plate fit each other, and the block on the edge of the movable gear rack can slide in the guide groove opened on the side support plate.

[0010] By adopting the above technical solution, the movable rack edge block moves in the guide groove, thereby preventing the movable rack from rotating synchronously with the guide screw.

[0011] Preferably, the connecting frame forms a rotating connection structure with the lateral support plates through a central rotating shaft, and the transmission gear fixed on the central rotating shaft of the connecting frame is meshedly connected with the movable gear rack.

[0012] By adopting the above technical solution, when the movable gear rack moves, the meshing transmission gear can drive the connecting rack to rotate on the lateral support plate.

[0013] Preferably, the wind-driven self-cleaning component includes a receiving block, a built-in spring, a positioning frame, a small motor, a resistance plate, a heat insulation plate, a heat absorbing plate, a heat conducting column, a mixing impeller, a storage tank, a power plate, a built-in spring, a center rod, a clamping block, a power tank, a movable rod, bristles and a limit strip;

[0014] The cam is fixedly mounted on a top portion of the support frame, and the cam is secured to the bottom portion of the support frame with a spring, the cam being secured to the bottom portion of the support frame with a spring, the cam being secured to the bottom portion of the support frame with a spring, the cam being secured to the bottom portion of the support frame with a spring, the cam being secured to the bottom portion of the support frame with a spring, the cam being secured to the bottom portion of the support frame with a spring, the cam being secured to the bottom portion of the support frame with a spring,

[0015] By adopting the above technical solution, the provision of the heat insulation plate can prevent the heat of the heat absorbing plate from being transferred to the small motor.

[0016] Preferably, the heat absorbing plate, the heat conducting column and the mixing impeller are all made of heat conducting metal, and a plurality of mixing impellers are evenly distributed on the heat conducting column, and the heat conducting column can rotate on the accommodating block.

[0017] By adopting the above technical solution, the heat-conducting column and the rotation of the mixing impeller can stir the hot evaporation liquid inside the containing block, thereby improving the heating effect of the hot evaporation liquid.

[0018] Preferably, the power-assisting plate forms a seamless sliding connection structure with the storage tank through a circumferentially fixed sealing ring, and the power-assisting plate and the center rod are vertically distributed.

[0019] By adopting the above technical solution, when the hot evaporation liquid inside the storage tank is heated and turned into steam, it can push the power-assisting plate to move in the storage tank.

[0020] Preferably, the outer wall of the clamping block at the end of the central rod and the inner wall of the power groove fit together, and the power groove is configured as a spiral structure.

[0021] By adopting the above technical solution, the movable rod can be rotated by moving the clamping block at the end of the central rod in the power groove.

[0022] Preferably, the central rod and the movable rod are slidably connected, and the movable rod can rotate in the accommodating block.

[0023] By adopting the above technical solution, the movable rod is rotated on the accommodating block, thereby driving the bristles thereon to rotate synchronously.

[0024] Preferably, the length of the movable rod is greater than the length of the photovoltaic panel, and a plurality of bristles are evenly distributed on the movable rod, and in an initial state, the bristles are located above the limiting strip.

[0025] By adopting the above technical solution, when the bristles rotate and come into contact with the limiting strip, the bristles can be deformed and bent. When the bristles are separated from the limiting strip, the bristles can restore and rebound through their own elasticity and shake off the impurities attached to them.

[0026] Compared with the existing technology, the beneficial effects of the present invention are: the wind-resistant reinforced solar photovoltaic bracket can automatically clean the impurities attached to the surface of the photovoltaic panel by using the outdoor wind power when in use, and at the same time, it can shake off the dust and impurities attached to the cleaning components when the weather is clear;

[0027] 1. A connecting plate is provided, and the external wind force is monitored by a wind sensor. When the wind force is too strong, the servo motor controls the rotation of the guide screw. After the guide screw rotates, the threaded movable gear rack can use the transmission gear to rotate the connecting rack. By changing the rotation angle of the connecting rack, the windward area of ​​the photovoltaic panel is changed, thereby reducing wind resistance and improving the overall wind resistance effect. At the same time, the diagonal bracing rods on the side of the lateral support plate can further improve the stability of the bracket;

[0028] 2. A movable rod and bristles are provided. The resistance plate is controlled by a small motor to rotate so that the resistance plate rotates to the maximum windward angle. At this time, when there is strong wind outside, the wind force acts on the resistance plate, thereby pushing the receiving block to slide on the connecting frame. Through the movement of the receiving block, the bristles on the movable rod can automatically clean the impurities attached to the surface of the photovoltaic panel;

[0029] 3. A power-assisting plate is provided. When the weather outside is clear and the temperature is high, the heat during the day is absorbed by the heat-absorbing plate, and the absorbed heat is transferred to the hot evaporating liquid inside the storage tank through the heat-conducting column and the mixing impeller. During this process, the small motor can also be turned on. By turning on the small motor, the heat-absorbing plate, the heat-conducting column and the mixing impeller can be rotated. The rotation of the mixing impeller can evenly stir the hot evaporating liquid inside the storage tank, thereby improving the heating uniformity of the hot evaporating liquid. At this time, the hot evaporating liquid is heated and evaporated, and the pressure inside the storage tank increases, thereby pushing the power-assisting plate to move. After the power-assisting plate moves, the movement of the clamping block at the end of the center rod in the power slot can make the movable rod and the bristles rotate. The contact and separation of the rotation of the bristles with the limit bar can make the bristles shake off the impurities attached to them. BRIEF DESCRIPTION OF THE DRAWINGS

[0030] Figure 1 This is a schematic diagram of the front three-dimensional structure of the present invention;

[0031] Figure 2 This is a schematic diagram of the structure of the movable rack and transmission gear of the present invention;

[0032] Figure 3 This is a schematic diagram of the structure of the connecting frame and the heat conducting column of the present invention;

[0033] Figure 4 This is a schematic diagram of the receiving block and positioning frame structure of the present invention;

[0034] Figure 5 This is a schematic structural diagram of the heat insulation board and the heat absorption board of the present invention;

[0035] Figure 6 This is a schematic diagram of the structure of the clamping block and the power slot of the present invention;

[0036] Figure 7 This is a schematic diagram of the structure of the connecting frame after rotation of the present invention;

[0037] Figure 8 For the present invention Figure 7 A in the middle is an enlarged structural diagram;

[0038] Figure 9 This is a schematic diagram of the structure of the heat absorbing plate after rotation of the present invention.

[0039] In the figure: 1. base; 2. lateral support plate; 3. diagonal support rod; 4. wind sensor; 5. connecting frame; 6. servo motor; 7. guide screw; 8. movable gear rack; 9. guide groove; 10. transmission gear; 11. wind-driven self-cleaning component; 111. receiving block; 112. built-in spring; 113. positioning frame; 114. small motor; 115. resistance plate; 1151. heat insulation plate; 1152. heat absorbing plate; 116. heat conducting column; 117. mixing impeller; 118. storage tank; 119. power assist plate; 1110. adjustment spring; 1111. center rod; 1112. clamping block; 1113. power tank; 1114. movable rod; 1115. bristles; 1116. limit strip. DETAILED DESCRIPTION

[0040] 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.

[0041] Example 1: Please refer to Figures 1-9When in use, the existing photovoltaic bracket adjusts the angle of the photovoltaic panels thereon to change the windward area and improve the overall wind resistance effect. However, in windy weather, it is not convenient to use external wind force to automatically clean the dust and impurities on the surface of the photovoltaic panel, which leads to excessive attachment of dust to the photovoltaic panel and easily affects the photoelectric conversion efficiency. In order to solve this technical problem, the present embodiment discloses the following technical content, including a base 1, a lateral support plate 2 is fixedly installed on the middle part of the upper end of the base 1, and the side edges of the lateral support plate 2 are connected to the base 1 through diagonal braces 3, a wind sensor 4 is fixedly installed on the upper end of the lateral support plate 2, and the inner side of the lateral support plate 2 is connected to the base 1 through a bearing There is a connecting frame 5, which is used to fix the photovoltaic panel; the wind sensor 4 and the servo motor 6 are electrically connected, and the output end of the servo motor 6 is fixedly connected to a guide screw 7, which is installed through the middle of the mobile rack 8, and the edge block of the mobile rack 8 is located in the guide groove 9 opened on the lateral support plate 2. A transmission gear 10 is provided on the inner side of the mobile rack 8, and the transmission gear 10 is key-connected to the middle rotating shaft of the connecting frame 5. Two wind-driven self-cleaning components 11 are installed on the lateral support plate 2. The wind-driven self-cleaning components 11 are used to clean impurities attached to the photovoltaic panel during strong winds and to achieve self-cleaning of the wind-driven self-cleaning components 11 through heat energy when the weather is clear. The guide screw 7 and the middle part of the mobile rack 8 are meshed, and the outer wall of the edge block of the mobile rack 8 and the inner wall of the guide groove 9 opened on the lateral support plate 2 fit each other, and the edge block of the mobile rack 8 can slide in the guide groove 9 opened on the lateral support plate 2. The connecting frame 5 forms a rotational connection structure with the lateral support plate 2 via a central rotating shaft, and the transmission gear 10 fixed on the central rotating shaft of the connecting frame 5 is meshed with the movable gear rack 8. A receiving block 111 is mounted on the side of the connecting frame 5, and the slider at the bottom of the receiving block 111 is connected to the connecting frame 5 via an internal spring 112. The upper end of the receiving block 111 is fixedly connected to a positioning frame 113, and a small motor 114 is fixedly mounted in the middle of the upper end of the positioning frame 113. The output end of the small motor 114 is connected to a resistance plate 115, and the circumference of the movable rod 1114 is fixedly connected to the bristles 1115.

[0042] The base 1 is fixed to the desired installation position by bolts. When there is strong wind outside, the servo motor 6 is controlled to start by the wind sensor 4. After the servo motor 6 is turned on, the guide screw 7 can be rotated. The rotation of the guide screw 7 can make the threaded movable rack 8 move. The movement of the movable rack 8 can make the meshing transmission gear 10 drive the connecting frame 5 to rotate. The photovoltaic panel on it can be adjusted to the minimum windward angle by rotating the connecting frame 5 to reduce wind resistance. At the same time, the lateral support plate 2 is supported by the diagonal support rods 3 on both sides. It is fixed to the base 1, thereby further improving the stability of the entire bracket. At the same time, in windy weather, the resistance plate 115 is controlled to rotate by the small motor 114, so that the resistance plate 115 is rotated to the maximum windward angle, and the wind resistance of the resistance plate 115 is the largest. After the wind force of the strong wind acts on the resistance plate 115, the slider at the bottom of the accommodating block 111 can be pushed to slide on the side of the connecting frame 5. Through the movement of the accommodating block 111, the bristles 1115 on the movable rod 1114 can be used to automatically clean impurities attached to the surface of the photovoltaic panel.

[0043] Embodiment 2: The technical content disclosed in this embodiment is a further improvement made on the basis of the above-mentioned embodiment 1. Photovoltaic brackets are usually set outdoors. When the cleaning components are used for a long time, they are also prone to adhere to impurities, and then in the subsequent cleaning, the cleaning effect of the photovoltaic panels is reduced. In order to further solve this technical problem, this embodiment discloses the following technical content, and the resistance plate 115 is composed of a heat insulation plate 1151 and a heat absorption plate 1152. The middle part of the lower end of the heat absorption plate 1152 is fixedly connected with a heat conducting column 116, and the heat conducting column 116 extends into the storage tank 118 inside the accommodating block 111. The storage tank 11 8 is filled with hot evaporative liquid, a mixing impeller 117 is fixedly connected to the heat-conducting column 116, and a booster plate 119 is installed inside the storage tank 118. The booster plate 119 is connected to the receiving block 111 via an adjustment spring 1110. The center of the booster plate 119 is fixedly connected to the center rod 1111, and a clamping block 1112 is fixedly installed on the center rod 1111. The clamping block 1112 is inserted into the power groove 1113, which is opened on the inner wall of the movable rod 1114. A limit bar 1116 is provided below the movable rod 1114, and the limit bar 1116 is fixed to the connecting frame 5. The heat absorbing plate 1152, the heat-conducting column 116, and the mixing impeller 117 are all made of heat-conducting metal. There are multiple mixing impellers 117 evenly distributed on the heat-conducting column 116, and the heat-conducting column 116 can rotate on the receiving block 111. The power-assisting plate 119 forms a seamless sliding connection structure with the storage tank 118 through a circumferentially fixed sealing ring, and the power-assisting plate 119 and the center rod 1111 are vertically distributed. The outer wall of the clamping block 1112 at the end of the center rod 1111 and the inner wall of the power tank 1113 fit together, and the power tank 1113 is configured as a spiral structure. The center rod 1111 and the movable rod 1114 are slidably connected, and the movable rod 1114 can rotate around the accommodating block 111. The length of the movable rod 1114 is greater than the length of the photovoltaic panel, and a plurality of bristles 1115 are evenly distributed on the movable rod 1114, and in the initial state, the bristles 1115 are located above the limit bar 1116.

[0044] When the outside weather is sunny and hot, the heat is absorbed by the heat absorbing plate 1152 on the resistance plate 115. After the heat is absorbed by the heat absorbing plate 1152, it is transferred to the hot evaporation liquid in the storage tank 118 through the heat conducting column 116 and the mixing impeller 117. During this process, the small motor 114 can be turned on. After the small motor 114 is turned on, the heat absorbing plate 1152, the heat conducting column 116 and the mixing impeller 117 can be rotated. The rotation of the mixing impeller 117 can mix the hot evaporation liquid in the storage tank 118, thereby improving the heating effect of the hot evaporation liquid in the storage tank 118. After the hot evaporation liquid is heated and evaporates, the pressure inside the storage tank 118 is increased. As the force increases, the assist plate 119 and the center rod 1111 can be pushed to move. After the center rod 1111 moves, the connecting block 1112 at its end moves in the spiral power groove 1113, which can make the movable rod 1114 rotate. When the movable rod 1114 rotates, the bristles 1115 on it contact with the limiting strip 1116 at the bottom, which can make the bristles 1115 bend and deform. When the bristles 1115 are separated from the limiting strip 1116 after the movable rod 1114 rotates, the bristles 1115 are reset by their own elasticity, and the reset bristles 1115 can shake off the impurities attached to them.

[0045] The contents not described in detail in this specification belong to the prior art known to those skilled in the art.

[0046] Although the present invention has been described in detail with reference to the aforementioned embodiments, it is still possible for those skilled in the art to modify the technical solutions described in the aforementioned embodiments, or to make equivalent substitutions for some of the technical features therein. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.

Claims

1. A wind-resistant reinforced solar photovoltaic bracket, comprising a base (1), a lateral support plate (2) fixedly mounted on the middle portion of the upper end of the base (1), and the side edges of the lateral support plate (2) are connected to the base (1) via diagonal braces (3), a wind sensor (4) is fixedly mounted on the upper end of the lateral support plate (2), and a connecting frame (5) is connected to the inner side of the lateral support plate (2) via a bearing, and the connecting frame (5) is used to fix a photovoltaic panel; It is characterized in that Also includes: The wind sensor (4) and the servo motor (6) are electrically connected, and a guide screw (7) is fixedly connected to the output end of the servo motor (6), the guide screw (7) is installed through the middle of the mobile gear rack (8), and the edge block of the mobile gear rack (8) is located in the guide groove (9) provided on the lateral support plate (2), the inner side of the mobile gear rack (8) is provided with a transmission gear (10), and the transmission gear (10) is key-connected to the middle rotating shaft of the connecting frame (5), and two wind-driven self-cleaning components (11) are installed on the lateral support plate (2), and the wind-driven self-cleaning components (11) are used to clean impurities attached to the photovoltaic panel when there is strong wind, and to achieve self-cleaning of the wind-driven self-cleaning components (11) by heat energy when the weather is clear; The wind-driven self-cleaning component (11) comprises a receiving block (111), an internal spring (112), a positioning frame (113), a small motor (114), a resistance plate (115), a heat insulation plate (1151), a heat absorbing plate (1152), a heat conducting column (116), a mixing impeller (117), a storage tank (118), a power plate (119), an internal spring (1110), a central rod (1111), a clamping block (1112), a power tank (1113), a movable rod (1114), bristles (1115) and a limit strip (1116); The accommodating block (111) is installed on the side of the connecting frame (5), and the slider at the bottom of the accommodating block (111) is connected to the connecting frame (5) through the built-in spring (112). The upper end of the accommodating block (111) is fixedly connected to the positioning frame (113), and the middle part of the upper end of the positioning frame (113) is fixedly installed with a small motor (114). The output end of the small motor (114) is connected to a resistance plate (115), and the resistance plate (115) is composed of a heat insulation plate (1151) and a heat absorption plate (1152). The middle part of the lower end of the heat absorption plate (1152) is fixedly connected with a heat conduction column (116), and the heat conduction column (116) extends into the storage tank (118) inside the accommodating block (111). The interior of the storage tank (118) is filled with hot evaporation liquid. A mixing impeller (117) is fixedly connected to the heat column (116), a power-assisting plate (119) is installed inside the storage tank (118), and the power-assisting plate (119) is connected to each other through an adjusting spring (1110) and a receiving block (111), a center rod (1111) is fixedly connected to the middle of the power-assisting plate (119), and a clamping block (1112) is fixedly installed on the center rod (1111), the clamping block (1112) is inserted into the power groove (1113), and the power groove (1113) is opened on the inner wall of the movable rod (1114), the movable rod (1114) is fixedly connected to the circumference of the movable rod (1114), a limit strip (1116) is provided below the movable rod (1114), and the limit strip (1116) is fixed to the connecting frame (5).

2. The wind-resistant reinforced solar photovoltaic support according to claim 1, characterized in that: The guide screw (7) and the middle part of the movable gear rack (8) are meshedly connected, and the outer wall of the edge block of the movable gear rack (8) and the inner wall of the guide groove (9) opened on the lateral support plate (2) fit each other, and the edge block of the movable gear rack (8) can slide in the guide groove (9) opened on the lateral support plate (2).

3. The wind-resistant reinforced solar photovoltaic support according to claim 1, characterized in that: The connecting frame (5) forms a rotation connection structure with the lateral support plate (2) through a central rotating shaft, and a transmission gear (10) fixed on the central rotating shaft of the connecting frame (5) is meshedly connected with the movable gear frame (8).

4. The wind-resistant reinforced solar photovoltaic support according to claim 1, characterized in that: The heat absorbing plate (1152), the heat conducting column (116) and the mixing impeller (117) are all made of heat conducting metal, and a plurality of mixing impellers (117) are evenly distributed on the heat conducting column (116), and the heat conducting column (116) is capable of rotating on the accommodating block (111).

5. The wind-resistant reinforced solar photovoltaic support according to claim 1, characterized in that: The power-assisting plate (119) forms a seamless sliding connection structure with the storage groove (118) via a circumferentially fixed sealing ring, and the power-assisting plate (119) and the center rod (1111) are vertically distributed.

6. The wind-resistant reinforced solar photovoltaic support according to claim 1, characterized in that: The outer wall of the clamping block (1112) at the end of the central rod (1111) and the inner wall of the power groove (1113) fit together, and the power groove (1113) is configured as a spiral structure.

7. The wind-resistant reinforced solar photovoltaic support according to claim 1, characterized in that: The central rod (1111) and the movable rod (1114) are slidably connected, and the movable rod (1114) can rotate on the accommodating block (111).

8. The wind-resistant reinforced solar photovoltaic support according to claim 1, characterized in that: The length of the movable rod (1114) is greater than the length of the photovoltaic panel, and a plurality of bristles (1115) are evenly distributed on the movable rod (1114), and in an initial state, the bristles (1115) are located above the limiting strip (1116).

Citation Information

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