An anti-pullout photovoltaic support pile

By designing pull-resistant photovoltaic bracket piles, the combination of power shaft and threaded sections can be used to achieve stable fixation of the bracket and rapid ejection of the photovoltaic plate; at the same time, the rotating gears and air guide plates reduce the wind contact area, solving the problem that existing photovoltaic brackets are easily pulled up or blown over in extreme weather, and improving stability and construction efficiency.

CN119813906BActive Publication Date: 2025-06-13JIANGSU JIALIDE NEW MATERIAL TECH CO LTD +2
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Patent Information

Application Number
CN202510285997.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-03-12
Publication Date
2025-06-13
Estimated Expiration
2045-03-12

AI Technical Summary

Technical Problem

Existing photovoltaic brackets are easily pulled up or blown over in extreme weather, resulting in equipment damage and system paralysis. The construction period requirements are high, making it difficult to ensure the safety and reliability of the bracket foundation.

Method used

A resistant photovoltaic bracket pile is designed, including a pile body and cavity with hollow structure, equipped with power source parts, power shafts, stabilizing members and air guide plates. The threaded sections and push blocks are driven through the power shaft, and the pile is inserted into the side wall of the installation pit, and the pile body is fixed in the pit; at the same time, the storage rollers and storage ropes are used for ejecting and fixing of the photovoltaic panels, and the rotating gears and air guide plates are used to reduce the wind contact area and quickly guide the wind.

Benefits of technology

It improves the stability and wind resistance of the photovoltaic bracket, avoids the risk of being pulled up or blown in strong wind environments, simplifies the construction process, shortens the construction time, and meets the requirements of efficiency and safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a pull-resistant photovoltaic support pile, which includes a pile body, a power source component, a stabilizing component, a positioning pile, a rotating component and a storage component. The pile body is installed at the bottom of the installation pit. The power source component drives the power shaft to rotate, and the rotation of the power shaft drives the stabilizing component to operate. The stabilizing component drives the positioning pile to insert into the side wall of the installation pit. The rotating component drives the air guide plate to rotate. The air guide plate will rotate 90 degrees so that the air guide holes are connected. The air guide plate rotates to be parallel to the side wall of the air guide hole, thereby reducing the contact area with the wind and reducing the wind force received by the device. The storage component drives the guide block to rise, and the upward movement of the guide block drives the photovoltaic platform to move upward. The upward movement of the photovoltaic platform drives the photovoltaic panel installed in the photovoltaic cavity to eject from the cavity, so as to realize that during the reinforcement installation of the pile body, the photovoltaic panel to be installed can be ejected from the cavity for use at the same time. The set positioning piece drives the limiting plate to fixedly clamp the photovoltaic panel, improving the stability of the photovoltaic panel.
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Description

Technical Field

[0001] The present invention relates to a support pile, specifically a tensile-resistant photovoltaic support pile. Background Art

[0002] With the maturity of photovoltaic power generation technology, the scale and quantity of ground power station construction are getting larger and larger. In recent years, the frequency of extreme weather such as strong winds has been increasing. Some ground power station support foundations cannot resist the attack of strong winds and are uprooted or overturned, resulting in damage to photovoltaic power station equipment and even system paralysis. At present, it is particularly important to ensure the safety of the support structure of the power station and meet the requirements of secondary use in photovoltaic power stations. Coupled with the increasing requirements for the construction period of photovoltaic power stations, rapid construction and ensuring the safety and reliability of the support foundation have become the key.

[0003] At present, a part of the photovoltaic supports are installed in desert areas where the wind speed is generally high. Some ground power station support foundations cannot resist the attack of strong winds and are uprooted, making it difficult to achieve the anti-wind effect after the installation of photovoltaic panels, which will cause the photovoltaic supports to fall off, resulting in economic losses. Moreover, there is a lack of corresponding reinforcement mechanisms during the installation process. When the wind force is too large, the contact area between the support and the wind is too large, which will also increase the wind force on the support, making it easy to be uprooted or overturned. Therefore, it is necessary to design a tensile-resistant photovoltaic support pile to solve this problem. Summary of the Invention

[0004] The purpose of the present invention is to provide a tensile-resistant photovoltaic support pile to solve the problems raised in the above background art.

[0005] To achieve the above purpose, the present invention provides the following technical solutions:

[0006] A tensile-resistant photovoltaic support pile includes a pile body. A cavity is connected to one side of the pile body. Both the cavity and the pile body are hollow structures. A dividing plate is installed on the top wall of the pile body. The side wall of the pile body is annularly and arrayedly provided with pile holes. A positioning pile is arranged on one side of the pile holes. A power source component is installed on the bottom wall of the pile body. A power shaft is installed at the output end of the power source component. One end of the power shaft away from the power source component penetrates through the dividing plate and extends into the cavity, and the power shaft is rotationally connected to the dividing plate. A stabilizing member is arranged in the pile body. One end of the stabilizing member is connected to the power shaft, and the other end of the stabilizing member is connected to the positioning pile. A guide rail groove is opened on the side wall of the cavity. A guide block is slidably installed in the guide rail groove. A support rod is installed on one side of the guide block. A photovoltaic platform is installed at one end of the support rod away from the guide block. A photovoltaic cavity is opened on the photovoltaic platform. An installation component is arranged in the photovoltaic cavity. A storage member is arranged in the cavity. One end of the storage member is connected to the power shaft, and the other end is connected to the guide block. Guide wind holes are annularly and arrayedly opened on the side wall of the cavity. Guide wind plates are arranged in the guide wind holes. A rotating component is installed on the power shaft. One end of the rotating component away from the power shaft is connected to the guide wind plate.

[0007] As a further solution of the present invention: The stabilizing member includes a pile groove, which is opened on the bottom wall of the pile body. A guiding block is slidably installed in the pile groove. A guiding plate is installed on one side of the guiding block. A telescopic sleeve is rotatably connected to the guiding plate. The movable end of the telescopic sleeve penetrates through the guiding plate and is fixedly connected to one end of the positioning pile. A positioning unit is installed on the power shaft. The end of the positioning unit away from the power shaft is connected to the telescopic sleeve. A threaded section is sleeved on the power shaft. The threaded section is fixedly connected to the power shaft. A pushing block is threadedly connected to the threaded section. One side of the pushing block is hinged to a pushing rod. The end of the pushing rod away from the pushing block is hinged to the guiding block.

[0008] As a further solution of the present invention: The rotating assembly includes a power gear, which is installed on the power shaft. A connecting cavity is opened on the side wall of the cavity. A steering rod is rotatably connected in the connecting cavity. A rotating gear is installed on the steering rod. The rotating gear meshes with the power gear. A rotating rod is rotatably connected to the bottom wall of the connecting cavity. The end of the rotating rod away from the connecting cavity extends into the air guiding hole, and the top end of the rotating rod is rotatably connected to the top wall of the air guiding cavity. The air guiding plate is installed on the rotating rod. A steering unit is installed on the steering rod. The end of the steering unit away from the steering rod is connected to the rotating rod.

[0009] As a further solution of the present invention: The storage member includes a storage roller, which is installed on the power shaft. A guiding roller is opened on the side wall of the cavity. A storage rope is installed on the storage roller. The end of the storage rope away from the storage roller is connected to the guide block. The storage rope is wound around the guiding roller.

[0010] As a further solution of the present invention: A reset element is arranged in the guide rail groove. One end of the reset element is connected to the top wall of the guide rail groove, and the other end is connected to the guide block.

[0011] As a further solution of the present invention: The installation assembly includes a positioning member. One end of the positioning member is connected to the side wall of the photovoltaic cavity. A limiting plate is connected to the end of the positioning member away from the side wall of the photovoltaic cavity.

[0012] As a further solution of the present invention: It further includes an installation shaft, which is rotatably connected to the side wall of the cavity. A cover plate is installed on the installation shaft. A connecting groove is opened on the cover plate. A connecting block is slidably installed in the connecting groove. A vertical rod is installed on the photovoltaic platform. The end of the vertical rod away from the photovoltaic platform is hinged to the connecting block.

[0013] Compared with the prior art, the beneficial effects of the present invention are as follows: When installing the device, an installation pit with a suitable size is dug at the required installation position, and the device is placed in the installation pit. The pile body will be installed at the bottom of the installation pit. At this time, the power source component drives the power shaft to rotate. The rotation of the power shaft drives the threaded section connected to it to rotate. During the rotation of the threaded section, the push block connected to it moves downward through the thread. The downward movement of the push block drives the guiding block at one end to slide in the pile groove through the push rod. The sliding of the guiding block drives the guiding plate to move. The movement of the guiding plate drives the positioning pile at one end of the telescopic sleeve to move towards the side of the pile hole. As a result, the positioning pile extends outside the pile hole and is inserted into the side wall of the preset installation pit. During this process, the power shaft drives the telescopic sleeve to rotate through the positioning unit. The telescopic sleeve drives the positioning pile to rotate during this process, making it more convenient for the positioning pile to be inserted into the side wall of the installation pit. Multiple positioning piles are inserted into the side wall of the installation pit, thus fixing the pile body in the installation pit, improving the stability of the device, and enabling the device to have a better wind resistance effect. During the rotation of the power shaft, the storage roller will be driven to rotate. The rotation of the storage roller drives the storage rope to be wound. During the winding process of the storage rope, the guide block at one end will be driven to slide upward. During this process, the reset component set will be compressed to generate elastic force. Under the action of the elastic force, the guide block can rise stably. The upward movement of the guide block drives the photovoltaic platform at one end of the support rod to move upward. The upward movement of the photovoltaic platform drives the photovoltaic panel installed in the photovoltaic cavity to eject from the cavity, thus realizing that during the process of strengthening and installing the pile body, the photovoltaic panel to be installed can be ejected from the cavity for use at the same time. The rotation of the power shaft drives the power gear connected to it to rotate. During the rotation of the power gear, it meshes with the rotating gear to drive the rotating gear to rotate. The rotation of the rotating gear drives the steering rod to rotate. The rotation of the steering rod drives the rotating rod connected to it to rotate through the steering unit. The rotation of the rotating rod drives the air deflector connected to it to rotate. During this process, the air deflector will rotate 90 degrees to make the air guide hole communicate. The air deflector rotates to be parallel to the side wall of the air guide hole, which can reduce the contact area with the wind and also enable the wind to quickly pass through the air guide hole, reducing the wind force received by the device in a strong wind environment, thus playing a good protective role for the device and avoiding the device being pulled out or overturned due to excessive wind force, and improving the practicability of the device. BRIEF DESCRIPTION OF THE DRAWINGS

[0014] Figure 1 It is a schematic structural diagram of a photovoltaic support pile with anti-pulling property.

[0015] Figure 2 It is a schematic structural diagram of a cavity in a photovoltaic support pile with anti-pulling property.

[0016] Figure 3 It is a schematic structural diagram of a positioning pile in a photovoltaic support pile with anti-pulling property.

[0017] Figure 4 It is a schematic structural diagram of an air deflector in a photovoltaic support pile with anti-pulling property.

[0018] Figure 5 It is a schematic cross-sectional view of the pile body in an anti-pulling photovoltaic support pile.

[0019] Figure 6 It is a schematic connection diagram of the threaded section and the power shaft in an anti-pulling photovoltaic support pile.

[0020] Figure 7 It is a schematic structural view of the cavity side wall in an anti-pulling photovoltaic support pile.

[0021] Figure 8 It is a schematic connection diagram of the power shaft and the storage roller in an anti-pulling photovoltaic support pile.

[0022] Figure 9 It is a schematic connection diagram of the cover plate and the connecting block in an anti-pulling photovoltaic support pile.

[0023] Figure 10 It is a schematic structural view of the telescopic sleeve in an anti-pulling photovoltaic support pile.

[0024] In the figure: 1, stabilizing member; 101, positioning unit; 102, telescopic sleeve; 103, guiding block; 104, guiding plate; 105, push rod; 106, threaded section; 107, pushing block; 108, pile groove; 2, rotating assembly; 201, power gear; 202, rotating gear; 203, steering unit; 204, rotating rod; 205, steering rod; 3, storage member; 301, storage rope; 302, guiding roller; 304, reset element; 306, storage roller; 4, installation assembly; 401, positioning member; 402, limiting plate; 5, power source member; 6, power shaft; 7, pile body; 8, cavity; 9, dividing plate; 11, pile hole; 12, air guiding hole; 13, air guiding plate; 14, installation shaft; 15, cover plate; 16, connecting block; 17, connecting groove; 18, vertical rod; 19, photovoltaic platform; 21, guiding block; 22, supporting rod; 23, guide rail groove; 24, positioning pile. Detailed implementation manners

[0025] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0026] Please refer to Figures 1 to 10, as an embodiment of the present invention, a pull-resistant photovoltaic support pile includes a pile body 7. A cavity 8 is connected to one side of the pile body 7. Both the cavity 8 and the pile body 7 are hollow structures. A dividing plate 9 is installed on the top wall of the pile body 7. A pile hole 11 is annularly and arrayedly opened on the side wall of the pile body 7. A positioning pile 24 is arranged on one side of the pile hole 11. A power source member 5 is installed on the bottom wall of the pile body 7. A power shaft 6 is installed at the output end of the power source member 5. One end of the power shaft 6 away from the power source member 5 penetrates through the dividing plate 9 and extends into the cavity 8, and the power shaft 6 is rotatably connected to the dividing plate 9. A stabilizing member 1 is arranged in the pile body 7. One end of the stabilizing member 1 is connected to the power shaft 6, and the other end of the stabilizing member 1 is connected to the positioning pile 24. A guide rail groove 23 is opened on the side wall of the cavity 8. A guide block 21 is slidably installed in the guide rail groove 23. A support rod 22 is installed on one side of the guide block 21. A photovoltaic platform 19 is installed at one end of the support rod 22 away from the guide block 21. A photovoltaic cavity is opened on the photovoltaic platform 19. An installation component 4 is arranged in the photovoltaic cavity; the installation component 4 includes a positioning member 401. One end of the positioning member 401 is connected to the side wall of the photovoltaic cavity, and a limiting plate 402 is connected to the end of the positioning member 401 away from the side wall of the photovoltaic cavity. A storage member 3 is arranged in the cavity 8. One end of the storage member 3 is connected to the power shaft 6, and the other end is connected to the guide block 21. Air guide holes 12 are annularly and arrayedly opened on the side wall of the cavity 8. Air guide plates 13 are arranged in the air guide holes 12. A rotating component 2 is installed on the power shaft 6. One end of the rotating component 2 away from the power shaft 6 is connected to the air guide plate 13. An installation shaft 14 is arranged in the cavity 8. The installation shaft 14 is rotatably connected to the side wall of the cavity 8. A cover plate 15 is installed on the installation shaft 14. A connection groove 17 is opened on the cover plate 15. A connection block 16 is slidably installed in the connection groove 17. A vertical rod 18 is installed on the photovoltaic platform 19. One end of the vertical rod 18 away from the photovoltaic platform 19 is hinged to the connection block 16.

[0027] In this embodiment, when installing the device, an installation pit with a suitable size is dug at the required installation position, and the device is placed in the installation pit. The pile body 7 will be installed at the bottom of the installation pit. At this time, the power source member 5 drives the power shaft 6 to rotate. The rotation of the power shaft 6 drives the stable member 1 connected thereto to operate. The operation of the stable member 1 drives the positioning pile 24 connected thereto to move toward the side of the pile hole 11, so that the positioning pile 24 extends outside the pile hole 11 and is inserted into the side wall of the preset installation pit. During this process, the stable member 1 also drives the positioning pile 24 to rotate, so that it is more convenient for the positioning pile 24 to be inserted into the side wall of the installation pit. Multiple positioning piles 24 are inserted into the side wall of the installation pit, thereby fixing the pile body 7 in the installation pit and improving the stability of the device. During this process, the power shaft 6 drives the rotating assembly 2 to operate. The rotating assembly 2 drives the air guide plate 13 connected thereto to rotate. During this process, the air guide plate 13 rotates 90 degrees so that the air guide holes 12 are communicated. The air guide plate 13 rotates to be parallel to the side wall of the air guide hole 12, thereby reducing the contact area with the wind and allowing the wind to quickly pass through the air guide holes 12, reducing the wind force on the device in a strong wind environment, thus playing a good protective role for the device and preventing the device from being pulled up or overturned due to excessive wind force. The power shaft 6 also drives the storage member 3 to operate during this process. The storage member 3 drives the guide block 21 to rise. The upward movement of the guide block 21 drives the photovoltaic platform 19 at one end of the support rod 22 to rise. The upward movement of the photovoltaic platform 19 drives the photovoltaic panel installed in the photovoltaic cavity to eject from the cavity 8, so that the photovoltaic panel to be installed can be ejected from the cavity 8 for use while strengthening and installing the pile body 7. The positioning member 401 drives the limiting plate 402 to fixedly clamp the photovoltaic panel, improving the stability of the photovoltaic panel. During the process of the photovoltaic platform 19 ejecting from the cavity 8, the upright rod 18 drives the cover plate 15 to rotate, ensuring that the photovoltaic platform 19 can be smoothly ejected from the cavity 8 for use.

[0028] In this embodiment, the positioning member 401 can be an electric telescopic rod or an electric push rod, etc., and specific description is not made here.

[0029] Further, the power source member 5 can be a stepper motor or a servo motor, etc., and specific description is not made here.

[0030] Please refer to Figures 1 to 6, as an embodiment of the present invention, the stabilizing member 1 includes a pile groove 108 which is opened on the bottom wall of the pile body 7. A guiding block 103 is slidably installed in the pile groove 108. A guiding plate is installed on one side of the guiding block 103. A telescopic sleeve 102 is rotatably connected to the guiding plate 104. The movable end of the telescopic sleeve 102 penetrates through the guiding plate 104 and is fixedly connected to one end of the positioning pile 24. A positioning unit 101 is installed on the power shaft 6. The end of the positioning unit 101 away from the power shaft 6 is connected to the telescopic sleeve 102. A threaded section 106 is sleeved on the power shaft 6. The threaded section 106 is fixedly connected to the power shaft 6. A pushing block 107 is threadedly connected to the threaded section 106. One side of the pushing block 107 is hinged to a pushing rod 105. The end of the pushing rod 105 away from the pushing block 107 is hinged to the guiding block 103.

[0031] In this embodiment, the rotation of the installed power shaft 6 drives the rotation of the threaded section 106 connected thereto. During the rotation of the threaded section 106, the pushing block 107 connected thereto is driven to move downward through the thread. The downward movement of the pushing block 107 drives the guiding block 103 at one end to slide in the pile groove 108 through the pushing rod 105. The sliding of the guiding block 103 drives the movement of the guiding plate 104. The movement of the guiding plate 104 drives the positioning pile 24 at one end of the telescopic sleeve 102 to move toward the side of the pile hole 11, so that the positioning pile 24 extends outside the pile hole 11 and is inserted into the side wall of the preset installation pit. During this process, the power shaft 6 drives the telescopic sleeve 102 to rotate through the positioning unit 101. The telescopic sleeve 102 drives the positioning pile 24 to rotate during this process, so that the positioning pile 24 is more convenient to insert into the side wall of the installation pit. Multiple positioning piles 24 are inserted into the side wall of the installation pit, thereby fixing the pile body 7 in the installation pit, improving the stability of the device, and making the device have a better wind resistance effect.

[0032] Furthermore, when the device needs to be transferred, the power shaft 6 rotates in reverse to drive the threaded section 106 to rotate in reverse, so that the pushing block 107 moves upward to pull the positioning pile 24 on one side of the guiding plate into the pile body 7, releasing the fixation of the pile body 7 and the installation pit, which is convenient for subsequent removal and transfer.

[0033] Furthermore, the positioning unit 101 can be a gear set or the cooperation of a worm and a worm wheel, and specific description is not made here.

[0034] Please refer to Figures 1 to 7, as an embodiment of the present invention, the rotating assembly 2 includes a driving gear 201, the driving gear 201 is installed on the driving shaft 6, a connecting cavity is provided on the side wall of the cavity 8, a steering rod 205 is rotatably connected in the connecting cavity, a rotating gear 202 is installed on the steering rod 205, the rotating gear 202 meshes with the driving gear 201, a rotating rod 204 is rotatably connected to the bottom wall of the connecting cavity, one end of the rotating rod 204 away from the connecting cavity extends into the air guiding hole 12, and the top end of the rotating rod 204 is rotatably connected to the top wall of the air guiding cavity, the air guiding plate 13 is installed on the rotating rod 204, and a steering unit 203 is installed on the steering rod 205, one end of the steering unit 203 away from the steering rod 205 is connected to the rotating rod 204.

[0035] In this embodiment, the installed driving shaft 6 rotates to drive the driving gear 201 connected thereto to rotate. During the rotation of the driving gear 201, it meshes with the rotating gear 202 to drive the rotating gear 202 to rotate. The rotation of the rotating gear 202 drives the steering rod 205 to rotate. The rotation of the steering rod 205 drives the rotating rod 204 connected thereto to rotate through the steering unit 203. The rotation of the rotating rod 204 drives the air guiding plate 13 connected thereto to rotate. During this process, the air guiding plate 13 will rotate 90 degrees to communicate the air guiding hole 12, and the air guiding plate 13 rotates to be parallel to the side wall of the air guiding hole 12, so that the contact area with the wind can be reduced, and the wind can quickly pass through the air guiding hole 12, reducing the wind force received by the device in a strong wind environment, thereby playing a good protective role for the device, avoiding the device being pulled up or blown over due to excessive wind force, and improving the practicability of the device.

[0036] Furthermore, when the pile body 7 needs to be transferred, during the reverse rotation of the driving rotating shaft, under the transmission action of the driving gear 201 and the rotating gear 202, the air guiding plate 13 blocks the air guiding hole 12, thereby playing a protective role for the photovoltaic panel placed in the cavity 8.

[0037] Furthermore, the steering unit 203 can be a gear set or a pulley set, etc., which will not be specifically described here.

[0038] Please refer to Figures 7 to 10 , the storage member 3 includes a storage roller 306, the storage roller 306 is installed on the driving shaft 6, a guiding roller 302 is provided on the side wall of the cavity 8, a storage rope 301 is installed on the storage roller 306, one end of the storage rope 301 away from the storage roller 306 is connected to the guide block 21, the storage rope 301 is wound around the guiding roller 302, a reset element 304 is arranged in the guide rail groove 23, one end of the reset element 304 is connected to the top wall of the guide rail groove 23, and the other end is connected to the guide block 21.

[0039] In this embodiment, during the installation of the device, when the power shaft 6 rotates during installation, it drives the storage roller 306 to rotate. The rotation of the storage roller 306 drives the storage rope 301 to wind up. During the winding process of the storage rope 301, it drives the guide block 21 at one end to slide upward. During this process, the reset element 304 provided is compressed to generate elastic force, and under the action of the elastic force, the guide block 21 can rise stably. The upward movement of the guide block 21 drives the photovoltaic platform 19 at one end of the support rod 22 to move upward, and the upward movement of the photovoltaic platform 19 drives the photovoltaic panel installed in the photovoltaic cavity to eject the cavity 8, so that during the reinforcement installation of the pile body 7, the photovoltaic panel to be installed can be ejected from the cavity 8 for use at the same time, improving the practicability of the device.

[0040] Further, when the pile body 7 needs to be transferred, during the reverse rotation of the power rotating shaft, under the action of the reset element 304, it drives the guide block 21 connected thereto to slide downward. The guide block 21 drives the photovoltaic platform 19 at one end of the support rod 22 to move downward and be stored, which is convenient for subsequent transfer of the pile body 7 and also plays a good protective role for the installed photovoltaic panel, improving the practicability of the device.

[0041] Further, the reset element 304 can be a spring or an elastic film, etc., and no specific description is made here.

[0042] The working principle of the present invention is as follows: When installing the device, an installation pit with a suitable size is dug at the required installation position, and the device is placed in the installation pit. The pile body 7 will be installed at the bottom of the installation pit. At this time, the power source member 5 drives the power shaft 6 to rotate. The rotation of the power shaft 6 drives the threaded section 106 connected thereto to rotate. During the rotation of the threaded section 106, the push block 107 connected thereto moves downward through the thread. The downward movement of the push block 107 drives the guiding block 103 at one end to slide in the pile groove 108 through the push rod 105. The sliding of the guiding block 103 drives the guiding plate 104 to move. The movement of the guiding plate 104 drives the positioning pile 24 at one end of the telescopic sleeve 102 to move closer to the pile hole 11, so that the positioning pile 24 extends outside the pile hole 11 and is inserted into the side wall of the preset installation pit. During this process, the power shaft 6 drives the telescopic sleeve 102 to rotate through the positioning unit 101. The telescopic sleeve 102 drives the positioning pile 24 to rotate during this process, so that the positioning pile 24 can be inserted into the side wall of the installation pit more conveniently. Multiple positioning piles 24 are inserted into the side wall of the installation pit, thereby fixing the pile body 7 in the installation pit, improving the stability of the device, and enabling the device to have a better wind resistance effect. During the rotation of the power shaft 6, the storage roller 306 will be driven to rotate. The rotation of the storage roller 306 drives the storage rope 301 to wind up. During the winding process of the storage rope 301, the guide block 21 at one end is driven to slide upward. During this process, the reset element 304 provided will be compressed to generate an elastic force, and under the action of the elastic force, the guide block 21 can rise stably. The upward movement of the guide block 21 drives the photovoltaic platform 19 at one end of the support rod 22 to move upward. The upward movement of the photovoltaic platform 19 drives the photovoltaic panel installed in the photovoltaic cavity to eject from the cavity 8, so as to realize that during the process of strengthening and installing the pile body 7, the photovoltaic panel to be installed can be ejected from the cavity 8 for use at the same time. The rotation of the power shaft 6 drives the power gear 201 connected thereto to rotate. During the rotation of the power gear 201, it meshes with the rotating gear 202 to drive the rotating gear 202 to rotate. The rotation of the rotating gear 202 drives the steering rod 205 to rotate. The rotation of the steering rod 205 drives the rotating rod 204 connected thereto to rotate through the steering unit 203. The rotation of the rotating rod 204 drives the air guide plate 13 connected thereto to rotate. During this process, the air guide plate 13 will rotate 90 degrees so that the air guide holes 12 are communicated, and the air guide plate 13 rotates to be parallel to the side wall of the air guide holes 12, so that the contact area with the wind can be reduced, and the wind can quickly pass through the air guide holes 12, reducing the wind force received by the device in a strong wind environment, thereby playing a good protective role for the device, avoiding the device being pulled out or overturned due to excessive wind force, and improving the practicability of the device.

[0043] For those skilled in the art, it is obvious that the present invention is not limited to the details of the above-described exemplary embodiments, and the present invention can be implemented in other specific forms without departing from the spirit or essential characteristics of the present invention. Therefore, in any aspect, the embodiments should be regarded as exemplary and non-limiting. The scope of the present invention is defined by the appended claims rather than the above description. Therefore, all changes falling within the meaning and scope of the equivalent elements of the claims are intended to be embraced within the present invention. Any reference signs in the claims should not be construed as limiting the claims involved.

[0044] In addition, it should be understood that although this specification is described in terms of embodiments, not every embodiment only contains an independent technical solution. This narrative manner of the specification is only for clarity. Those skilled in the art should regard the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. A pull-out resistant photovoltaic support pile, comprising a pile body, characterized in that: A cavity is connected to one side of the pile body, and both the cavity and the pile body are hollow structures. A dividing plate is installed on the top wall of the pile body, and pile holes are opened in a circular array on the side wall of the pile body. A positioning pile is arranged on one side of the pile hole. A power source is installed on the bottom wall of the pile body, and a power shaft is installed at the output end of the power source. The end of the power shaft away from the power source extends through the dividing plate into the cavity, and the power shaft is rotatably connected to the dividing plate. A stabilizing member is arranged in the pile body, and one end of the stabilizing member is connected to the power shaft, and the other end of the stabilizing member is connected to the positioning pile. A guide rail groove is provided on the side wall of the cavity, a guide block is slidably installed in the guide rail groove, a support rod is installed on one side of the guide block, a photovoltaic platform is installed on the end of the support rod away from the guide block, a photovoltaic cavity is provided on the photovoltaic platform, and a mounting component is arranged in the photovoltaic cavity; A storage component is provided in the cavity, one end of the storage component is connected to the power shaft, and the other end is connected to the guide block, a circular array of air guide holes is provided on the side wall of the cavity, and an air guide plate is provided in the air guide hole, a rotating assembly is installed on the power shaft, and the end of the rotating assembly away from the power shaft is connected to the air guide plate; The stabilizing member includes a pile groove, which is arranged on the bottom wall of the pile body, a guide block is slidably installed in the pile groove, a guide plate is installed on one side of the guide block, a telescopic sleeve is rotatably connected to the guide plate, a movable end of the telescopic sleeve passes through the guide plate and is fixedly connected to one end of the positioning pile, a positioning unit is installed on the power shaft, the positioning unit is connected to the telescopic sleeve at one end away from the power shaft, a threaded section is sleeved on the power shaft, the threaded section is fixedly connected to the power shaft, a pushing block is connected to the threaded section through a thread, a pushing rod is hinged on one side of the pushing block, and the pushing rod is hinged to the guide block at one end away from the pushing block; The rotating assembly includes a power gear, which is mounted on a power shaft. A connecting cavity is provided on a side wall of the cavity. A steering rod is rotatably connected in the connecting cavity. A rotating gear is mounted on the steering rod. The rotating gear meshes with the power gear. A rotating rod is rotatably connected to the bottom wall of the connecting cavity. The rotating rod extends away from one end of the connecting cavity to the air guide hole, and the top end of the rotating rod is rotatably connected to the top wall of the air guide cavity. The air guide plate is mounted on the rotating rod. A steering unit is mounted on the steering rod. The steering unit is connected to the rotating rod at one end away from the steering rod. The storage component includes a storage roller, which is installed on the power shaft. A guide roller is provided on the side wall of the cavity. A storage rope is installed on the storage roller. One end of the storage rope away from the storage roller is connected to the guide block. The storage rope is wound around the guide roller. It also includes an installation shaft, which is rotatably connected to the side wall of the cavity. A cover plate is installed on the installation shaft, a connecting groove is opened on the cover plate, a connecting block is slidably installed in the connecting groove, and a vertical pole is installed on the photovoltaic platform. The vertical pole is hinged to the connecting block at one end away from the photovoltaic platform.

2. The pull-out resistant photovoltaic support pile according to claim 1, characterized in that: A reset element is arranged in the guide rail groove, one end of the reset element is connected to the top wall of the guide rail groove, and the other end is connected to the guide block.

3. The pull-out resistant photovoltaic support pile according to claim 1, characterized in that: The mounting assembly comprises a positioning member, one end of which is connected to the photovoltaic cavity side wall, and one end of which is away from the photovoltaic cavity side wall is connected to a limiting plate.

Citation Information

Patent Citations

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