Solar photovoltaic power generation equipment with windproof protection function

Through innovative designs of wind guide devices, support components, anti-overturning components, and fixing components, the stability and safety issues of photovoltaic equipment under strong winds have been solved, enabling efficient power generation and safe operation in complex wind environments.

CN121055875BActive Publication Date: 2026-05-08DATANG TAIZHOU THERMAL POWER CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
DATANG TAIZHOU THERMAL POWER CO LTD
Filing Date
2025-09-15
Publication Date
2026-05-08

AI Technical Summary

Technical Problem

Strong winds can cause photovoltaic panels to bend, tear, and fail fasteners, or even overturn or twist the entire support array, resulting in damage to the power station and interruption of power generation revenue. Furthermore, the photovoltaic modules blown away become dangerous flying debris, endangering personal safety and surrounding property. Especially in areas with abundant wind resources but frequent wind hazards, existing wind-resistant designs rely on construction techniques and increased weight, making it difficult to meet the stability requirements of complex wind environments.

Method used

The design incorporates a combination of air guide devices, support components, anti-tipping components, and fixing components. The air guide plate automatically deflects to reduce wind resistance, the air outlet pressure relief reduces equipment vibration, the combination of screw sleeves and springs to fix the screws enhances anti-tipping, the triangular fixing cylinder increases friction, and the rotating components allow for easy adjustment and fixation, ensuring the stability of the equipment under different wind directions and speeds.

Benefits of technology

It effectively reduces the risk of wind-induced vibration and loosening of photovoltaic equipment, improves the stability and anti-overturning ability of equipment in complex wind environments, reduces maintenance costs, and ensures power generation safety and personnel safety.

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Abstract

The application relates to the technical field of photovoltaic power generation equipment, and particularly discloses a solar photovoltaic power generation equipment with windproof protection function. The equipment base is provided with a wind guide device fixedly connected to the top of the equipment base, an upper supporting plate rotatably connected to the top of the wind guide device, a supporting assembly fixedly connected to the top of the upper supporting plate, an anti-overturning assembly fixedly connected to the top of the equipment base, a fixing assembly fixedly connected to the bottom of the equipment base, and the wind guide device comprises a wind guide plate, a lower rotating sleeve fixedly connected to the bottom of the wind guide plate, an upper rotating sleeve rotatably sleeved on the side of the upper rotating seat and fixedly connected to the top of the upper rotating sleeve and the bottom of the upper supporting plate, and the bottom of the lower rotating seat is fixedly connected to the top of the equipment base. The solar photovoltaic power generation equipment with windproof protection function can resist wind overturning.
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Description

Technical Field

[0001] This invention relates to the field of photovoltaic power generation equipment technology, specifically to a solar photovoltaic power generation equipment with wind protection function. Background Technology

[0002] Strong winds generate enormous static loads (continuous wind pressure) and dynamic loads (gusts, vortex-induced vibrations), which can cause photovoltaic panels to bend, tear, and fail fasteners. In some cases, the entire support array can be overturned or twisted. Debris (gravel, branches, etc.) blown up by the wind can impact the photovoltaic panels, causing glass breakage or microcracks in the cells, leading to performance degradation or safety hazards. Damage to the power station means huge repair or reconstruction costs and interruption of power generation revenue. In the worst cases, blown-off photovoltaic modules become dangerous "flying debris," endangering personal safety and surrounding property. Photovoltaic power stations are increasingly being built in coastal areas, open plains, and mountainous regions—areas rich in wind resources but also prone to wind damage. Distributed photovoltaic systems are largely installed on the roofs of industrial and commercial buildings and residential buildings, where the wind environment is more complex (e.g., vortices can be generated by eaves and corners), placing higher demands on wind resistance. Ultimately, the wind resistance is transferred to the foundation or roof, requiring the use of stronger beams and columns, as well as reinforced connectors (such as angle brackets and bolts). Excellent design utilizes computer fluid dynamics... (CFD) simulation and actual wind tunnel testing are used to verify and optimize its wind resistance performance, ensuring stability under various wind directions and speeds. Concrete foundation counterweights or helical piles are used, and the depth, size and strength of the foundation are strictly calculated to ensure sufficient pull-out and overturning resistance. Ballast systems that do not penetrate the roof (such as using concrete blocks for weight) are used to avoid damaging the roof waterproofing, but its wind resistance depends on sufficient counterweight. Using chemical bolts or mechanical bolts to directly fix the bracket to the main structure of the building (such as purlins and beams) is the most secure method, but it requires high construction technology.

[0003] Strong winds generate enormous static loads (continuous wind pressure) and dynamic loads (gusts, vortex-induced vibrations), which may cause photovoltaic panels to bend, tear, or fail fasteners, or even overturn or twist the entire support array. Damage to the power station means huge repair or reconstruction costs, as well as the interruption of power generation revenue. The photovoltaic modules that are blown away become dangerous "flying debris," endangering personal safety and the safety of surrounding property. Summary of the Invention

[0004] To achieve the above objectives, the present invention is implemented through the following technical solution: a solar photovoltaic power generation device with wind protection function, including a device base, a wind guide device fixedly connected to the top of the device base, an upper support plate rotatably connected to the top of the wind guide device, a support component fixedly connected to the top of the upper support plate, an anti-overturning component fixedly connected to the top of the device base, and a fixing component fixedly connected to the bottom of the device base.

[0005] The air guiding device includes an air guiding plate, a lower rotating sleeve fixedly connected to the bottom of the air guiding plate, a lower rotating seat rotatably connected to the inner wall of the lower rotating sleeve, an upper rotating seat fixedly connected to the top of the upper rotating seat, an upper rotating sleeve sleeved and rotatably connected to the side of the upper rotating seat, the top of the upper rotating sleeve fixedly connected to the bottom of the upper support plate, and the bottom of the lower rotating seat fixedly connected to the top of the equipment base.

[0006] Preferably, the upper rotating seat includes a lower protective ring, a connecting rod fixedly connected to the bottom of the lower protective ring, a fixed shaft fixedly connected to the lower protective ring, a rotating ring sleeved and fixedly connected to the side of the fixed shaft, and an upper protective ring fixedly connected to the top of the fixed shaft. The side of the upper protective ring is rotatably connected to the inner wall of the upper rotating sleeve. When the equipment faces the wind, the wind drives the air guide plate to rotate along the top of the lower rotating sleeve, thereby automatically deflecting the air guide plate in the wind and rotating it through the rotating ring. During the windward process, the air guide plate is kept stable under the combined action of the upper and lower protective rings. The wrapping effect of the lower and upper rotating sleeves prevents wind and sand from being directly blown into the lower or upper rotating sleeve, thus preventing jamming and other situations. The extension design of the connecting rod increases the inertia of the air guide plate when it swings with the wind, thereby swinging better in the wind and reducing the resistance caused by the wind, which leads to equipment vibration.

[0007] Preferably, the support assembly includes a support rod, with a wind guide shell fixedly connected to the top of the support rod. An air outlet is provided on the side of the wind guide shell, and a photovoltaic panel is fixedly connected to the inner wall of the wind guide shell. The bottom of the support rod is fixedly connected to the top of the upper support plate. When facing the wind, the wind moves between the photovoltaic panel and the air outlet, and the air pressure is released through the air outlet, thereby preventing the photovoltaic panel from encountering excessive pressure on the front when facing the wind, which could cause equipment vibration and other problems. The support rod is also used to adjust the angle of the equipment, making it easy to make corresponding adjustments according to different solar irradiation angles in actual use.

[0008] Preferably, the anti-overturning component includes an inclined bracket, a fixed screw threaded through and connected to the side of the inclined bracket, an inclined tip fixedly connected to the bottom of the fixed screw, a spring sleeved on the side of the fixed screw above the inclined bracket, a threaded sleeve fixedly connected to the top of the fixed screw, and the bottom of the inclined bracket fixedly connected to the top of the equipment base. During installation, when the equipment base is installed on the ground, the threaded sleeve is rotated, the rotation of the threaded sleeve drives the fixed screw, and the rotation of the fixed screw drives the inclined tip, thereby penetrating deeper into the ground. At the same time as the threaded sleeve rotates, the spring is compressed, and the spring compression generates an elastic force that generates an upward elastic force on the threaded sleeve, thereby fixing the fixed screw and reducing the probability of the fixed screw loosening. The combination of multiple sets of fixed screws supports the equipment to cope with wind blowing at different angles. Compared with traditional distributed fixing, it strengthens the overall anti-overturning strength of the equipment, thus helping to reduce the lateral tilting effect caused by crosswinds.

[0009] Preferably, the fixing assembly includes a fixing base, a triangular fixing cylinder fixedly connected to the bottom of the fixing base, arc-shaped blades fixedly connected to the sides of the triangular fixing cylinder, a vertical pointed tip fixedly connected to the bottom of the triangular fixing cylinder, a rotating assembly rotatably connected through the top of the fixing base, and the top of the fixing base fixedly connected to the bottom of the inclined bracket. The fixing assembly includes a structurally stable fixing base, which is typically made of high-strength metal to ensure no deformation under stress. A triangular fixing cylinder is welded or integrally formed at the bottom of the fixing base. This cylinder is triangular prism-shaped, which significantly enhances its structural resistance in the torsional direction and effectively prevents deflection or loosening during use. Arc-shaped blades are fixedly connected to the three outer sides of the triangular fixing cylinder, and these blades are evenly distributed along the circumference of the cylinder. Their cutting edges are specially heat-treated, possessing high hardness and wear resistance, and are able to withstand insertion. The device easily cuts through soil or other soft substrates, reducing penetration resistance. It features a hardened, conical, pointed tip for initial positioning and penetration of the surface medium, allowing the entire fixing assembly to quickly and accurately enter the predetermined position. The top center of the fixing base has a through hole, typically fitted with a bearing or bushing structure, allowing the rotating component to pass through and rotate smoothly. This rotating component can be used to connect external operating equipment or transmit torque, enabling adjustment or driving functions after fixing. One side of the top of the fixing base is also fixedly connected to the bottom of an inclined bracket, typically a rigid rod or plate structure. Its tilt angle is mechanically calculated to provide additional lateral support, improving the stability and anti-overturning capacity of the entire fixing module. The inclined bracket and the fixing base can be reliably connected by bolts or welding, ensuring the overall structure remains robust under complex working conditions.

[0010] Preferably, the rotating assembly includes a rotating disk, a drive handle fixedly connected to the top of the rotating disk, an adjusting screw fixedly connected to the bottom of the rotating disk, an adjusting component threadedly connected to the side of the adjusting screw, a rotating hole adapted to the adjusting component being opened on the side of the triangular fixed cylinder, and the side of the adjusting screw penetrating the top of the fixed base and rotatably connected to the fixed base. The rotating assembly includes a disc-shaped rotating disk, which is usually made of metal and has high flatness and strength to ensure stability and durability during rotation. A drive handle is fixedly installed at the center of the top of the rotating disk. The surface of the handle may have anti-slip texture or be covered with rubber material to enhance the grip and comfort during operation, allowing the user to control the movement of the entire assembly by manual rotation. An adjusting screw is fixedly connected to the center of the bottom of the rotating disk. This screw generally adopts a precision thread structure with high-precision lead and thread angle to ensure smooth transmission and accurate positioning. The axis of the adjusting screw coincides with the rotation center of the rotating disk, so that it can transmit uniform torque during rotation. An adjusting component is fitted and threaded onto the outer side. This component typically includes an internally threaded sleeve or a slider structure, allowing axial movement as the screw rotates, thus achieving position adjustment. A rotating hole, adapted to the shape of the adjusting component, is provided on the side wall of the triangular fixed cylinder. The hole diameter is slightly larger than the outer diameter of the adjusting component, allowing it to rotate or move freely within the hole while preventing it from disengaging. This hole is usually precision-machined, possessing good roundness and surface finish to ensure the adjusting component does not jam or skew during movement. The bottom end of the adjusting screw extends downwards, passing through the top opening of the fixed base, and is rotatably connected to the fixed base via a bearing or bushing structure. This connection typically has a sealing structure to prevent dust or impurities from entering and affecting movement accuracy. A support boss or reinforcing rib structure can be provided at the corresponding position on the fixed base to improve overall rigidity and stability, ensuring the rotating component maintains high repeatability during long-term use. This rotating component is compact and easy to operate; linear displacement of the adjusting component can be achieved by rotating the drive handle. It is suitable for mechanical devices or optical equipment requiring fine adjustment.

[0011] Preferably, the adjustment assembly includes a telescopic rod, the movable end of which is rotatably connected to a movable base via a pivot, the fixed end of which is fixedly connected to a grooved bottom plate, and a rotating shaft rotatably connected to the side of the telescopic rod. The movable base is sleeved on the side of the grooved bottom plate and threadedly connected to it. The side of the rotating shaft is fixedly connected to the side of the triangular fixing cylinder. During installation, the fixed base drives the triangular fixing cylinder to descend, which in turn drives the vertical tip to descend, which in turn drives the arc-shaped blade to descend and break the soil layer. By increasing the contact area, the friction is increased, thereby increasing... The stability of the equipment is enhanced when the bottom of the fixed base contacts the top of the soil layer. Rotating the drive handle causes the adjusting screw to rotate, which in turn rotates the moving base, causing it to move downwards. This downward movement of the moving base causes the telescopic rod to rotate along the rotation axis, which in turn rotates the grooved bottom plate along the axis. The grooves on the bottom plate contact the soil layer, increasing friction and increasing the vertical projection area of ​​the fixed base, thus fixing the equipment within the soil layer and increasing its stability. Furthermore, the cooperation with the fixing screw increases the equipment's resistance to overturning in wind.

[0012] This invention provides a solar photovoltaic power generation device with windproof protection. It has the following beneficial effects:

[0013] 1. This solar photovoltaic power generation equipment with wind protection function is equipped with a wind guide plate. When the equipment faces the wind, the wind blows and drives the wind guide plate to rotate along the top of the lower rotating sleeve, thereby automatically deflecting the wind guide plate in the wind and rotating through the rotating ring. During the windward process, the wind guide plate is kept stable by the combined action of the upper and lower protective rings. The wrapping of the lower and upper rotating sleeves prevents wind and sand from being blown directly into the interior of the lower or upper rotating sleeve, thus preventing jamming and other situations. The extension design of the connecting rod increases the inertia of the wind guide plate when swinging with the wind, thereby swinging better in the wind and reducing the resistance caused by the wind that causes equipment vibration.

[0014] 2. This solar photovoltaic power generation equipment with wind protection function is equipped with an air outlet. When facing the wind, the wind moves through the gap between the photovoltaic panel and the air outlet, and the air pressure is released through the air outlet, thereby preventing the photovoltaic panel from encountering excessive pressure on the front when facing the wind, which could cause equipment vibration and other problems. The equipment angle can be adjusted by the support rod, so that it can be adjusted according to different solar irradiation angles in actual use.

[0015] 3. This solar photovoltaic power generation equipment with wind protection function is equipped with a screw sleeve. During installation, when the equipment base is installed on the ground, rotating the screw sleeve drives the fixing screw. The rotation of the screw screw drives the tilting tip, thus penetrating deeper into the ground. At the same time as the screw sleeve rotates, it compresses the spring. The spring compression generates elastic force, which in turn generates an upward elastic force on the screw sleeve, thereby fixing the fixing screw. This reduces the probability of the fixing screw loosening. The combination of multiple sets of fixing screws supports the equipment to cope with wind blowing at different angles. Compared with traditional distributed fixing, it strengthens the overall anti-overturning strength of the equipment, thus helping to reduce the lateral tilting effect caused by crosswinds.

[0016] 4. This solar photovoltaic power generation equipment with wind protection function is equipped with a triangular fixing cylinder. During installation, the fixing base drives the triangular fixing cylinder to descend, which in turn drives the vertical tip to descend, which in turn drives the arc-shaped blade to descend and break the soil layer. This increases the contact area, thereby increasing friction and thus increasing the stability of the equipment. When the bottom of the fixing base contacts the top of the soil layer, the drive handle is rotated. The rotation of the drive handle drives the adjustment screw to rotate, which in turn drives the moving base to rotate and move it downward. The downward movement of the moving base drives the telescopic rod to rotate along the rotation axis, which in turn drives the grooved bottom plate to rotate along the rotation axis. The groove on the surface of the grooved bottom plate contacts the soil layer, thereby increasing friction. The grooved bottom plate also increases the vertical projection area of ​​the fixing base, thus fixing the equipment in the soil layer and increasing the stability of the equipment. In conjunction with the fixing screw, it increases the equipment's resistance to overturning in the wind. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the structure of the solar photovoltaic power generation device with wind protection function of the present invention;

[0018] Figure 2 This is a schematic diagram of the air guide device of the present invention;

[0019] Figure 3 This is a schematic diagram of the rotating seat structure of the present invention;

[0020] Figure 4 This is a schematic diagram of the supporting component structure of the present invention;

[0021] Figure 5 This is a schematic diagram of the anti-overturning component structure of the present invention;

[0022] Figure 6 This is a schematic diagram of the fixed component structure of the present invention;

[0023] Figure 7 This is a schematic diagram of the rotating component structure of the present invention;

[0024] Figure 8This is a schematic diagram of the adjusted component structure for the present invention.

[0025] In the diagram: 1. Equipment base; 2. Air guide device; 3. Upper support plate; 4. Support assembly; 5. Anti-tipping assembly; 6. Fixing assembly; 201. Air guide plate; 202. Lower rotating sleeve; 203. Lower rotating seat; 204. Upper rotating seat; 205. Upper rotating sleeve; 2041. Lower protective ring; 2042. Connecting rod; 2043. Fixed shaft; 2044. Rotating ring; 2045. Upper protective ring; 401. Support rod; 402. Air guide shell; 403. Air outlet; 404. Photovoltaic panel; 501. 502. Inclined bracket; 503. Fixing screw; 504. Inclined tip; 505. Spring; 506. Screw sleeve; 607. Fixed base; 608. Triangular fixing cylinder; 609. Curved blade; 6000. Vertical tip; 601. Rotating assembly; 602. Rotating disk; 603. Drive handle; 604. Adjusting screw; 6055. Adjusting assembly; 6056. Rotating hole; 60541. Telescopic rod; 60542. Moving base; 60543. Groove base plate; 60544. Rotating shaft. Detailed Implementation

[0026] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0027] Please see Figures 1-3 The present invention provides a technical solution: a solar photovoltaic power generation device with wind protection function, including a device base 1, a wind guide device 2 fixedly connected to the top of the device base 1, an upper support plate 3 rotatably connected to the top of the wind guide device 2, a support component 4 fixedly connected to the top of the upper support plate 3, an anti-overturning component 5 fixedly connected to the top of the device base 1, and a fixing component 6 fixedly connected to the bottom of the device base 1.

[0028] The equipment base 1 serves as the equipment base for support. The air guide device 2 automatically guides the equipment when facing the wind, thereby reducing the impact of crosswinds on the equipment. The upper support plate 3 supports the solar panels. The support component 4 supports the solar panels and guides the airflow through corresponding components, thereby reducing the impact of crosswinds on the solar panels. The anti-tipping component 5 provides tilt support for the equipment at various angles, thereby fixing the equipment and coping with the pressure brought by winds at different angles through support at certain angles. Corresponding components prevent loosening. At the same time, the fixing component 6 provides overall support for the equipment, thereby maintaining the stability of the equipment and increasing the fixation of the soil layer during the fixing process, thus facilitating the stability of the equipment in the wind.

[0029] The air guiding device 2 includes an air guiding plate 201. A lower rotating sleeve 202 is fixedly connected to the bottom of the air guiding plate 201. A lower rotating seat 203 is rotatably connected to the inner wall of the lower rotating sleeve 202. An upper rotating seat 204 is fixedly connected to the top of the upper rotating seat 204. An upper rotating sleeve 205 is sleeved on and rotatably connected to the side of the upper rotating seat 204. The top of the upper rotating sleeve 205 is fixedly connected to the bottom of the upper support plate 3. The bottom of the lower rotating seat 203 is fixedly connected to the top of the equipment base 1.

[0030] The upper rotating seat 204 includes a lower protective ring 2041, a connecting rod 2042 fixedly connected to the bottom of the lower protective ring 2041, a fixed shaft 2043 fixedly connected to the lower protective ring 2041, a rotating ring 2044 sleeved and fixedly connected to the side of the fixed shaft 2043, and an upper protective ring 2045 fixedly connected to the top of the fixed shaft 2043. The side of the upper protective ring 2045 is rotatably connected to the inner wall of the upper rotating sleeve 205.

[0031] When the equipment faces the wind, the wind causes the air guide plate 201 to rotate along the top of the lower rotating sleeve 202, thus automatically deflecting the air guide plate 201 in the wind and rotating through the rotating ring 2044. During the windward process, the air guide plate 201 is kept stable by the combined action of the upper protective ring 2045 and the lower protective ring 2041. The wrapping effect of the lower rotating sleeve 202 and the upper rotating sleeve 205 prevents wind and sand from being blown directly into the interior of the lower rotating sleeve 202 or the upper rotating sleeve 205, thus preventing jamming and other situations. The extension design of the connecting rod 2042 increases the inertia of the air guide plate 201 when it swings with the wind, thus swinging better in the wind and reducing the resistance brought by the wind that causes equipment vibration.

[0032] Please see Figures 1-4The present invention provides a technical solution: the support component 4 includes a support rod 401, the top of the support rod 401 is fixedly connected to an air guide shell 402, the side of the air guide shell 402 is provided with an air outlet 403, the inner wall of the air guide shell 402 is fixedly connected to a photovoltaic panel 404, and the bottom of the support rod 401 is fixedly connected to the top of the upper support plate 3.

[0033] When facing the wind, the wind moves through the gap between the photovoltaic panel 404 and the air outlet 403, and the air pressure is released through the air outlet 403, thereby preventing the photovoltaic panel 404 from encountering excessive pressure on the front when facing the wind, which could cause equipment vibration and other problems. The support rod 401 is used to adjust the angle of the equipment, so that it can be adjusted according to different solar irradiation angles in actual use.

[0034] Please see Figures 1-5 The present invention provides a technical solution: the anti-overturning component 5 includes an inclined bracket 501, a fixing screw 502 is threaded through and connected to the side of the inclined bracket 501, an inclined tip 503 is fixedly connected to the bottom of the fixing screw 502, a spring 504 is sleeved on the side of the fixing screw 502 above the inclined bracket 501, a screw sleeve 505 is fixedly connected to the top of the fixing screw 502, and the bottom of the inclined bracket 501 is fixedly connected to the top of the equipment base 1.

[0035] During installation, when the equipment base 1 is installed on the ground, the screw sleeve 505 is rotated. The rotation of the screw sleeve 505 drives the fixing screw 502, and the rotation of the fixing screw 502 drives the inclined tip 503, thereby penetrating deeper into the ground. At the same time as the screw sleeve 505 rotates, the spring 504 is compressed. The compression of the spring 504 generates elastic force, which generates an upward elastic force on the screw sleeve 505, thereby fixing the fixing screw 502. This reduces the probability of the fixing screw 502 loosening. The combination of multiple sets of fixing screws 502 supports the equipment to cope with wind blowing at different angles. Compared with traditional distributed fixing, this strengthens the overall anti-overturning strength of the equipment, thus helping to reduce the lateral tilting effect caused by crosswinds.

[0036] Please see Figures 1-8 The present invention provides a technical solution: the fixing component 6 includes a fixing base 601, a triangular fixing cylinder 602 is fixedly connected to the bottom of the fixing base 601, an arc-shaped blade 603 is fixedly connected to the side of the triangular fixing cylinder 602, a vertical tip 604 is fixedly connected to the bottom of the triangular fixing cylinder 602, a rotating component 605 is rotatably connected through the top of the fixing base 601, and the top of the fixing base 601 is fixedly connected to the bottom of the inclined bracket 501.

[0037] The rotating assembly 605 includes a rotating disk 6051, a drive handle 6052 fixedly connected to the top of the rotating disk 6051, an adjusting screw 6053 fixedly connected to the bottom of the rotating disk 6051, an adjusting assembly 6054 sleeved and threadedly connected to the side of the adjusting screw 6053, a rotating hole 6055 adapted to the adjusting assembly 6054 opened on the side of the triangular fixed cylinder 602, and the side of the adjusting screw 6053 passes through the top of the fixed base 601 and is rotatably connected to the fixed base 601.

[0038] The adjustment assembly 6054 includes a telescopic rod 60541. The movable end of the telescopic rod 60541 is rotatably connected to a movable base 60542 via a pivot. The fixed end of the telescopic rod 60541 is fixedly connected to a grooved bottom plate 60543. A rotating shaft 60544 is rotatably connected to the side of the telescopic rod 60541. The movable base 60542 is sleeved on the side of the grooved bottom plate 60543 and threadedly connected to the grooved bottom plate 60543. The side of the rotating shaft 60544 is fixedly connected to the side of the triangular fixed cylinder 602.

[0039] During installation, the fixed base 601 lowers the triangular fixed cylinder 602, which in turn lowers the vertical tip 604. The vertical tip 604 then lowers the curved blade 603 to break the soil layer, increasing friction by increasing the contact area and thus enhancing the stability of the equipment. When the bottom of the fixed base 601 contacts the top of the soil layer, the drive handle 6052 is rotated. This rotation of the drive handle 6052 rotates the adjusting screw 6053, which in turn rotates the moving base 60542, thus moving the base... 60542 moves downward, and the downward movement of the movable base 60542 drives the telescopic rod 60541 to rotate along the rotating shaft 60544. The rotation of the rotating shaft 60544 drives the grooved bottom plate 60543 to rotate along the rotating shaft 60544. The groove on the surface of the grooved bottom plate 60543 contacts the soil layer, thereby increasing the friction. The grooved bottom plate 60543 also increases the vertical projection area of ​​the fixed base 601, thereby fixing the equipment in the layer and increasing the stability of the equipment. In cooperation with the fixing screw 502, the overturning strength of the equipment in the wind is increased.

[0040] Obviously, the described embodiments are only a part of the embodiments of the present invention, and not all of them. All other embodiments obtained by those skilled in the art and related fields based on the embodiments of the present invention without inventive effort should fall within the scope of protection of the present invention. Structures, devices, and operating methods not specifically described and explained in the present invention, unless otherwise specified or limited, shall be implemented according to conventional means in the art.

Claims

1. A solar photovoltaic power generation device with windproof protection function, characterized in that: The equipment includes a base (1), a wind guide device (2) is fixedly connected to the top of the base (1), an upper support plate (3) is rotatably connected to the top of the wind guide device (2), a support component (4) is fixedly connected to the top of the upper support plate (3), an anti-overturning component (5) is fixedly connected to the top of the base (1), and a fixing component (6) is fixedly connected to the bottom of the base (1). The air guiding device (2) includes an air guiding plate (201), a lower rotating sleeve (202) is fixedly connected to the bottom of the air guiding plate (201), a lower rotating seat (203) is rotatably connected to the inner wall of the lower rotating sleeve (202), an upper rotating seat (204) is fixedly connected to the top of the air guiding plate (201), and an upper rotating sleeve (205) is sleeved and rotatably connected to the side of the upper rotating seat (204). The upper rotating seat (204) includes a lower protective ring (2041), a connecting rod (2042) is fixedly connected to the bottom of the lower protective ring (2041), a fixed shaft (2043) is fixedly connected to the lower protective ring (2041), a rotating ring (2044) is sleeved and fixedly connected to the side of the fixed shaft (2043), an upper protective ring (2045) is fixedly connected to the top of the fixed shaft (2043), and the side of the upper protective ring (2045) is rotatably connected to the inner wall of the upper rotating sleeve (205). The support assembly (4) includes a support rod (401), the top of which is fixedly connected to an air guide housing (402), the side of which is provided with an air outlet (403), the inner wall of which is fixedly connected to a photovoltaic panel (404), and the bottom of which is fixedly connected to the top of the upper support plate (3).

2. A solar photovoltaic power generation device with windproof protection function according to claim 1, characterized in that: The top of the upper rotating sleeve (205) is fixedly connected to the bottom of the upper support plate (3), and the bottom of the lower rotating seat (203) is fixedly connected to the top of the equipment base (1).

3. A solar photovoltaic power generation device with windproof protection function according to claim 1, characterized in that: The anti-overturning component (5) includes an inclined bracket (501), a fixed screw (502) is threaded through and connected to the side of the inclined bracket (501), an inclined tip (503) is fixedly connected to the bottom of the fixed screw (502), a spring (504) is sleeved on the side of the fixed screw (502) above the inclined bracket (501), a screw sleeve (505) is fixedly connected to the top of the fixed screw (502), and the bottom of the inclined bracket (501) is fixedly connected to the top of the equipment base (1).

4. A solar photovoltaic power generation device with windproof protection function according to claim 1, characterized in that: The fixing component (6) includes a fixing base (601), a triangular fixing cylinder (602) is fixedly connected to the bottom of the fixing base (601), an arc-shaped blade (603) is fixedly connected to the side of the triangular fixing cylinder (602), a vertical tip (604) is fixedly connected to the bottom of the triangular fixing cylinder (602), a rotating component (605) is rotatably connected through the top of the fixing base (601), and the top of the fixing base (601) is fixedly connected to the bottom of the inclined bracket (501).

5. A solar photovoltaic power generation device with windproof protection function according to claim 4, characterized in that: The rotating assembly (605) includes a rotating disk (6051), a drive handle (6052) is fixedly connected to the top of the rotating disk (6051), an adjusting screw (6053) is fixedly connected to the bottom of the rotating disk (6051), and an adjusting assembly (6054) is sleeved and threadedly connected to the side of the adjusting screw (6053).

6. A solar photovoltaic power generation device with windproof protection function according to claim 5, characterized in that: The side of the triangular fixed cylinder (602) is provided with a rotating hole (6055) that is compatible with the adjusting assembly (6054). The side of the adjusting screw (6053) passes through the top of the fixed base (601) and is rotatably connected to the fixed base (601).

7. A solar photovoltaic power generation device with windproof protection function according to claim 6, characterized in that: The adjustment assembly (6054) includes a telescopic rod (60541), the movable end of which is rotatably connected to a movable base (60542) via a rotating shaft, the fixed end of which is fixedly connected to a grooved bottom plate (60543), the side of which is rotatably connected to a rotating shaft (60544), the movable base (60542) being sleeved on an adjusting screw (6053) and threadedly connected to the adjusting screw (6053), and the side of the rotating shaft (60544) being fixedly connected to the side of a triangular fixed cylinder (602).

Citation Information

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