Windproof photovoltaic power generation device

By protecting the roof tiles and using a position monitoring device, the system detects tile sinking and alerts users when the photovoltaic panels sway, thus solving the problem of photovoltaic power generation devices swaying in severe weather and improving the safety and reliability of the roof tiles and photovoltaic panels.

CN121727477AInactive Publication Date: 2026-03-24WUXI GOODPOWER NEW ENERGY SCI & TECH CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-17
Publication Date
2026-03-24
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Existing photovoltaic power generation devices are prone to shaking in severe weather, affecting the safety of the tiles and making it difficult to observe the sinking of the tiles and the shaking of the photovoltaic panels, resulting in insufficient safety and reliability.

Method used

The system employs protective roof tiles and position monitoring devices, using lifting columns and buffer springs to protect the tiles, detect tile sinking, and alert users when the photovoltaic panels sway. Simultaneously, a sway indicator is used to assess the stability of the photovoltaic panels during strong winds.

Benefits of technology

Effectively protects roof tiles from falling off, improves the safety of roof tiles and photovoltaic panels, promptly detects roof tile sinking, and provides intuitive indication of photovoltaic panel swaying, ensuring safety and reliability.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN121727477A_ABST
    Figure CN121727477A_ABST
Patent Text Reader

Abstract

The invention discloses a windproof photovoltaic power generation device, and relates to the technical field of photovoltaic power generation. Comprising a photovoltaic power generation part, a height adjusting piece is installed at the bottom of the photovoltaic power generation part, and a tile protecting piece is installed on the height adjusting piece; the tile protecting piece is used for protecting the tile; a position monitoring device is mounted on the height adjusting piece; the position monitoring device is used for detecting tile sinking; the bottom of the photovoltaic power generation part is provided with a shaking prompting piece; when the photovoltaic power generation part is installed in a matched mode through the tile protection part, tiles can be protected conveniently, the safety of the tiles below the photovoltaic power generation part is improved, and when outdoor wind power is large, the shake prompting part can visually prompt the installation stability of the photovoltaic panel body and can assist in prompting when the photovoltaic panel body shakes seriously due to factors such as loosening of a photovoltaic support. The problems that an existing photovoltaic power generation device needs to be connected with roof purlins, and when the wind power is large in severe weather, shaking is likely to happen, and the tile safety is affected are solved.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The present application relates to the field of photovoltaic power generation, in particular to a windproof photovoltaic power generation device. BACKGROUND

[0002] Photovoltaic power generation does not need to burn fuel, does not emit greenhouse gases such as carbon dioxide, and does not pollute the air, and is a green energy source. Photovoltaic power generation technology is widely used. Photovoltaic power generation is not only installed and used in outdoor open areas, but also widely used in urban and rural building roofs, making full use of light and increasing economic income. The current photovoltaic panel can be conveniently installed on the roof through the support, but the existing photovoltaic power generation device has a gap between the photovoltaic panel and the roof tile after being installed on the roof in order to ensure heat dissipation, and the photovoltaic support needs to be connected to the roof purlin. In severe weather with strong wind, it is easy to produce shaking, which affects the safety of the tile and is not convenient for protecting the tile from falling off, the windproof effect is not good, and the tile is also blocked after the photovoltaic panel is installed, which makes it difficult for the worker to observe the subsidence of the tile. It is not convenient to prompt the tile subsidence, and it is not convenient for the user to intuitively understand the shaking of the photovoltaic panel caused by wind force and the like, and the safety is not good.

[0003] Therefore, the present application provides a windproof photovoltaic power generation device. SUMMARY

[0004] The present application aims to provide a windproof photovoltaic power generation device to solve the problem that the current photovoltaic power generation device needs to be connected to the roof purlin, which is easy to produce shaking in severe weather with strong wind, affecting the safety of the tile.

[0005] To achieve the above-mentioned purpose, the present application provides the following technical scheme: a windproof photovoltaic power generation device, comprising a photovoltaic power generation part, the bottom of the photovoltaic power generation part is provided with an adjusting part, and the adjusting part is provided with a tile protection part; the tile protection part is used for protecting the tile; the adjusting part is provided with a position monitoring device; the position monitoring device is used for detecting the subsidence of the tile; the bottom of the photovoltaic power generation part is provided with a shaking prompt part; the photovoltaic power generation part comprises a photovoltaic panel main body and a prompt light, the photovoltaic panel main body is fixedly provided with the prompt light; and the photovoltaic panel main body is installed on a photovoltaic support.

[0006] Preferably, the photovoltaic power generation part further comprises a reinforcing support and a buzzer, the reinforcing support is fixedly installed at the bottom of the photovoltaic panel main body, and the bottom of the reinforcing support is fixedly provided with the buzzer.

[0007] Preferably, the height adjusting part comprises: a sleeve, locking bolts and a sliding column, the sleeve is fixed at the bottom of the reinforcing support, the sleeve is provided with a hexagonal hole, two locking bolts are threadedly connected to the sleeve, the ends of the two locking bolts respectively pass through the sleeve, the sliding column is slidingly sleeved on the sleeve, the ends of the two locking bolts respectively abut and press the sliding column, the sliding column is a hexagonal column, and the bottom of the sliding column is provided with a hexagonal hole.

[0008] Preferably, the tile protection part comprises: a lifting column, a tile protection plate and a protective silica gel pad, the lifting column is a hexagonal column structure, the side surface of the lifting column is provided with an arc-shaped groove, the lifting column is slidingly inserted into the bottom of the sliding column, the tile protection plate is fixedly installed at the bottom of the lifting column, and the protective silica gel pad is fixedly installed at the bottom of the tile protection plate and used for being attached to the tile.

[0009] Preferably, the tile protection part further comprises: a damper and a buffer spring, the damper is fixedly installed on the lifting column, the end of the damper is connected to the inside of the sliding column, the buffer spring is fixedly installed at the top of the lifting column and located in the inside of the sliding column, the end of the buffer spring is connected to the output shaft of the damper, and the buffer spring is located outside the damper.

[0010] Preferably, the position monitoring device comprises: a mounting cylinder, a closing plug and a monitoring switch, the mounting cylinder is fixedly installed at the tail of the sliding column, the closing plug is provided with a threading hole, the closing plug is threadedly connected to the mounting cylinder, and the end of the closing plug is fixedly installed with the monitoring switch; the mounting cylinder is in communication with the inside of the sliding column, and the monitoring switch is electrically connected to the buzzer.

[0011] Preferably, the position monitoring device further comprises: a detection column, the detection column is slidingly sleeved in the mounting cylinder, the detection column passes through the side wall of the sliding column, the end of the detection column is in an arc-shaped structure and is aligned with the arc-shaped groove provided at the side surface of the lifting column, a spring is sleeved in the inside of the mounting cylinder and connected between the detection column and the closing plug, and the spring in the inside of the mounting cylinder is located outside the monitoring switch.

[0012] Preferably, the shaking prompt part comprises: a prompt mounting base, a protective shell, a swing ball head and a counterweight ball, the prompt mounting base is fixedly installed at the bottom of the reinforcing support, the bottom of the prompt mounting base is threadedly connected with the protective shell, the bottom of the prompt mounting base is provided with a spherical groove, the swing ball head is sleeved in the spherical groove at the bottom of the prompt mounting base, the bottom of the swing ball head is fixedly installed with the counterweight ball, and the protective shell is provided with a threading hole.

[0013] Preferably, the shaking prompt part further comprises: a contact terminal, the contact terminal is fixedly installed on the counterweight ball and protrudes from the bottom of the counterweight ball, and the counterweight ball and the contact terminal are insulated.

[0014] Preferably, the shaking indicator further includes a contact coil, which is fixedly installed inside the protective shell and located at the bottom of the contact terminal; the contact terminal, the contact coil, and the indicator light are electrically connected.

[0015] Compared with the prior art, the beneficial effects of the present invention are: This invention employs a protective tile component to easily protect the photovoltaic (PV) panels, improving their safety beneath the PV power generation unit. This prevents tiles from falling off due to wind or being blown away by the wind, thus protecting the PV panel's structure. A position monitoring device facilitates the detection of the protective tile's installation position, preventing excessive pressure during installation that could damage the tiles. The device ensures a light, elastic fit, avoiding installation damage and providing direct alerts. Furthermore, the position monitoring device, combined with a height-adjustable support column, facilitates the detection of tile settling, preventing excessive settlement and allowing users to be informed of tile subsidence. A sway indicator provides a visual indication of the PV panel's installation stability during strong winds. It can also assist in alerting users when the PV panel is swaying significantly due to factors such as loose PV brackets, facilitating personnel evacuation or timely reinforcement and maintenance. This avoids the inaccuracy of relying on manual observation of swaying at high locations. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of the overall structure of a windproof photovoltaic power generation device according to the present invention; Figure 2 This is a schematic diagram of the bottom structure of a windproof photovoltaic power generation device according to the present invention; Figure 3 This is a cross-sectional view of the internal structure of a windproof photovoltaic power generation device according to the present invention; Figure 4 This is a schematic diagram of the photovoltaic power generation section of the present invention; Figure 5 This is a schematic diagram of the installation location of the buzzer alarm of the present invention; Figure 6 For the present invention Figure 5 Enlarged view of the structure of region B in the middle; Figure 7 This is a schematic diagram of the structure of the protective tile component of the present invention; Figure 8 For the present invention Figure 7 Enlarged view of the structure of region C in the middle; Figure 9 For the present invention Figure 4 Enlarged view of the structure of region D in the middle; Figure 10 This is a schematic diagram of the shaking warning device of the present invention.

[0017] In the figure: 1, photovoltaic power generation part; 101, photovoltaic panel main body; 102, prompt light; 103, reinforcing support; 104, buzzer; 2, height adjusting part; 201, sleeve; 202, locking bolt; 203, sliding column; 3, tile protection part; 301, lifting column; 302, tile protection plate; 303, protective silica gel pad; 304, damper; 305, buffer spring; 4, position monitoring device; 401, mounting cylinder; 402, closed plug; 403, monitoring switch; 404, detection column; 5, shaking prompt part; 501, prompt mounting seat; 5011, protective shell; 502, swing ball head; 503, counterweight ball; 504, contact terminal; 505, power supply coil. DETAILED DESCRIPTION

[0018] The technical solutions in the embodiments of the present application will be described clearly and completely below with reference to the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative work fall within the scope of protection of the present application.

[0019] Embodiment one: please refer to Figures 1 to 10 As shown in the figure: The present application provides a technical solution: a windproof photovoltaic power generation device, comprising a photovoltaic power generation part 1, a height adjusting part 2 is installed at the bottom of the photovoltaic power generation part 1, and a tile protection part 3 is installed on the height adjusting part 2; the tile protection part 3 is used for protecting the tile; a position monitoring device 4 is installed on the height adjusting part 2; the position monitoring device 4 is used for detecting the sinking of the tile; a shaking prompt part 5 is installed at the bottom of the photovoltaic power generation part 1; the photovoltaic power generation part 1 comprises a photovoltaic panel main body 101 and a prompt light 102, the prompt light 102 is fixedly installed on the photovoltaic panel main body 101; the photovoltaic panel main body 101 is installed on a photovoltaic support.

[0020] The photovoltaic power generation part 1 further comprises a reinforcing support 103 and a buzzer 104, the reinforcing support 103 is fixedly installed at the bottom of the photovoltaic panel main body 101, and the buzzer 104 is fixedly installed at the bottom of the reinforcing support 103; the height adjusting part 2 comprises a sleeve 201, locking bolts 202 and a sliding column 203, the sleeve 201 is fixed at the bottom of the reinforcing support 103, a hexagonal hole is arranged on the sleeve 201, two locking bolts 202 are threadedly connected to the sleeve 201, the ends of the two locking bolts 202 respectively pass through the sleeve 201, the sliding column 203 is slidably sleeved on the sleeve 201, and the ends of the two locking bolts 202 respectively abut and press the sliding column 203; the sliding column 203 is a hexagonal column, a hexagonal hole is arranged at the bottom of the sliding column 203; the tile protection part 3 comprises a lifting column 301, a tile protection plate 302 and a protective silica gel pad 303, the lifting column 301 is a hexagonal column structure, an arc-shaped groove is arranged on the side surface of the lifting column 301, the lifting column 301 is slidably inserted at the bottom of the sliding column 203, the tile protection plate 302 is fixedly installed at the bottom of the lifting column 301, and the protective silica gel pad 303 is fixedly installed at the bottom of the tile protection plate 302 and used for being attached to a tile; the tile protection part 3 can be used to conveniently protect the tile, improve the safety of the tile below the photovoltaic power generation part 1, limit the shaking range of the tile, prevent the tile from falling off or being blown up by the wind to hit the photovoltaic panel main body 101 and affect the safety of the photovoltaic panel main body 101 when the tile is affected by the wind and the like, can be more suitable for roof installation, reduce economic loss, improve the stability of the tile, and help to guarantee the waterproofness of the tile; the height of the tile protection plate 302 can be adjusted, and the tile protection plate 302 can be adapted to and attached to the tile.

[0021] The tile protection plate 302 is provided with a lifting column 301, a sliding column 203, a position monitoring device 4 and a tile protection plate 302. The lifting column 301 is fixedly installed on the sliding column 203. The lifting column 301 is provided with a lifting hole 302. The lifting hole 302 is located in the middle of the lifting column 301. The lifting hole 302 is used for the sliding column 203 to pass through. The lifting hole 302 is provided with a lifting spring 303. The lifting spring 303 is located in the lifting hole 302. The lifting spring 303 is connected between the lifting column 301 and the sliding column 203. The lifting spring 303 is located outside the lifting column 301. The lifting spring 303 is used for assisting the lifting column 301 to perform the buffering work. The sliding column 203 is located in the lifting hole 302. The sliding column 203 is provided with a sliding hole 204. The sliding hole 204 is located in the middle of the sliding column 203. The sliding hole 204 is used for the lifting column 301 to pass through. The sliding hole 204 is provided with a damping device 304 and a buffer spring 305. The damping device 304 is fixedly installed on the lifting column 301. The end of the damping device 304 is connected in the sliding column 203. The buffer spring 305 is fixedly installed on the top of the lifting column 301 and located in the sliding column 203. The end of the buffer spring 305 is connected with the output shaft of the damping device 304. The buffer spring 305 is located outside the damping device 304. The position monitoring device 4 is provided with a mounting cylinder 401, a closing plug 402 and a monitoring switch 403. The mounting cylinder 401 is fixedly installed on the tail of the sliding column 203. The closing plug 402 is provided with a wire hole. The wire hole of the closing plug 402 is used for the wire harness of the monitoring switch 403 to pass through, so as to facilitate the electrical connection between the monitoring switch 403 and the buzzer alarm 104. The closing plug 402 is threadedly connected with the mounting cylinder 401. The monitoring switch 403 is fixedly installed on the end of the closing plug 402. The mounting cylinder 401 is communicated with the inside of the sliding column 203. The monitoring switch 403 is electrically connected with the buzzer alarm 104. The position monitoring device 4 is further provided with a detection column 404. The detection column 404 is slidingly sleeved in the mounting cylinder 401. The detection column 404 passes through the side wall of the sliding column 203. The end of the detection column 404 is arc-shaped and aligned with the arc-shaped groove arranged on the side of the lifting column 301. A spring is sleeved in the mounting cylinder 401 and connected between the detection column 404 and the closing plug 402. The spring in the mounting cylinder 401 is located outside the monitoring switch 403. The damping device 304 and the buffer spring 305 can assist in buffering work. The position monitoring device 4 can facilitate the detection of the installation position of the tile protection plate 302, avoid excessive pressure on the tile protection plate 302 during installation, cause extrusion damage to the tile, ensure that the tile is lightly pasted, avoid installation damage, and once the tile sinks seriously, the lifting column 301 will also move downward in cooperation with the elastic extrusion of the buffer spring 305. At this time, the groove on the side of the lifting column 301 will be misaligned with the detection column 404 and extrude the detection column 404 to retract, extrude the monitoring switch 403 and control the buzzer alarm 104 to buzz.The prompt work can be directly performed, and the position monitoring device 4 is matched with the lifting column 301 which can be lifted, so that the tile sinking can be detected, the excessive sinking is avoided, the user can know the tile sinking, the photovoltaic power generation part 1 is prevented from being shielded, when the tile sinks, the user can know in time, it is more intuitive, when the tile protection plate 302 and the protective silica gel pad 303 are attached to the tile and the downward sliding column 203 is pressed, the downward sliding column 203 can move up and down on the lifting column 301, the buffer spring 305 can be compressed, when the detection column 404 moves downward and is aligned with the arc-shaped groove on the side of the lifting column 301, the detection column 404 can extend under the spring extrusion in the installation cylinder 401, the monitoring switch 403 is no longer extruded, at this time, the buzzer alarm 104 can be kept off and the buzzing prompt is not performed, otherwise, when the protective silica gel pad 303 is attached to the tile and is not pressed in place or is pressed excessively, the buffer spring 305 is compressed excessively or even completely compressed, the recess on the side of the lifting column 301 is misaligned with the detection column 404, and the monitoring switch 403 is extruded.

[0022] In the embodiment two, on the basis of the embodiment one, the shaking prompt part 5 comprises a prompt mounting seat 501, a protective shell 5011, a swing ball head 502 and a counterweight ball 503, the prompt mounting seat 501 is fixedly installed at the bottom of the reinforced support 103, the protective shell 5011 is threadedly connected to the bottom of the prompt mounting seat 501, the bottom of the prompt mounting seat 501 is provided with a spherical groove, the swing ball head 502 is sleeved in the spherical groove at the bottom of the prompt mounting seat 501, the counterweight ball 503 is fixedly installed at the bottom of the swing ball head 502, the protective shell 5011 is provided with a wire hole, the wire hole of the protective shell 5011 is used for penetrating the wire harness of the contact terminal 504 and the electric coil 505 and is electrically connected with the prompt lamp 102, the shaking prompt part 5 further comprises the contact terminal 504, the contact terminal 504 is fixedly installed on the counterweight ball 503 and protrudes from the bottom of the counterweight ball 503, the counterweight ball 503 and the contact terminal 504 are insulated, the shaking prompt part 5 further comprises the electric coil 505, the electric coil 505 is fixedly installed in the protective shell 5011 and is located at the bottom of the contact terminal 504, the contact terminal 504, the electric coil 505 and the prompt lamp 102 are electrically connected, the shaking prompt part 5 can directly and intuitively prompt the photovoltaic panel main body 101 installation stability when the wind is relatively large outdoors, can assist in prompting when the photovoltaic panel main body 101 shakes seriously due to factors such as loosening of the photovoltaic support, can facilitate personnel to evacuate or timely reinforce and overhaul, can avoid the problem that the photovoltaic panel main body 101 at a high place is not observed accurately by relying on manual observation, the structure is directly and intuitively prompted, the shaking detection is accurate, and greater safety hazards caused by long-term shaking are avoided, when the photovoltaic panel main body 101 shakes, the prompt lamp 102 will light or flash to prompt the user to reinforce in time.

[0023] The working principle of this embodiment is as follows: First, the photovoltaic panel body 101 is installed on the inclined photovoltaic bracket using fasteners. At this time, the protective shell 5011 is in a vertical state. The lifting column 301 is inserted into the sliding column 203. Then, the sliding column 203 can be manually pressed down to move the protective silicone pad 303 to adhere to the tile. Then, the locking bolt 202 can be tightened to compress the sliding column 203 for positioning, ensuring that the tile can remain stable when the wind is strong. When the sliding column 203 is pressed down, the tile protective plate 3... When the protective silicone pad 303 is attached to the tile, the sliding column 203 moves up and down on the lifting column 301, compressing the buffer spring 305. As the detection column 404 moves down and aligns with the arc-shaped groove on the side of the lifting column 301, the detection column 404 extends under the compression of the spring inside the mounting cylinder 401, no longer compressing the monitoring switch 403. At this time, the buzzer alarm 104 remains de-energized and does not sound. The elasticity of the buffer spring 305 controls the tile protection plate 302 to adhere to the tile. The elastic buffer spring 305, with its limited elasticity, prevents excessive pressure on the tile. If the tile subsequently sinks significantly, the elastic compression of the buffer spring 305 will also cause the lifting column 301 to move downwards. At this point, the groove on the side of the lifting column 301 will misalign with the detection column 404, causing the detection column 404 to retract and press against the monitoring switch 403, triggering the buzzer alarm 104 to sound, indicating a change in the position of the tile protection plate 302 and requiring immediate inspection. When the photovoltaic panel body 101 shakes... This will also cause the indicator mounting base 501 to shake. In this outdoor windy environment, the counterweight ball 503 provides auxiliary counterweight. Together with the swing ball head 502, which is fitted inside the indicator mounting base 501, it can rotate flexibly, which will cause the counterweight ball 503 to shake as well. At this time, when the shaking range is large, the contact terminal 504 at the bottom of the counterweight ball 503 will contact the contact coil 505, which will conduct the indicator light 102. At this time, the indicator light 102 will light up or flash to indicate the situation. It can also be used in conjunction with outdoor monitoring to help users to reinforce the mounting base in time.

[0024] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.

[0025] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A windproof photovoltaic power generation device, comprising a photovoltaic power generation unit (1), wherein a height adjustment component (2) is installed at the bottom of the photovoltaic power generation unit (1), characterized in that: The height adjustment component (2) is equipped with a tile protector (3); the tile protector (3) is used to protect the tile. The height adjustment component (2) is equipped with a position monitoring device (4); the position monitoring device (4) is used to detect the sinking of the tile; The bottom of the photovoltaic power generation unit (1) is equipped with a shaking warning device (5); The photovoltaic power generation unit (1) includes: a photovoltaic panel body (101) and an indicator light (102), wherein the indicator light (102) is fixedly installed on the photovoltaic panel body (101); the photovoltaic panel body (101) is installed on a photovoltaic bracket.

2. The windproof photovoltaic power generation device according to claim 1, characterized in that: The photovoltaic power generation unit (1) also includes: a reinforcing support (103) and a buzzer alarm (104). The reinforcing support (103) is fixedly installed at the bottom of the photovoltaic panel body (101). The buzzer alarm (104) is fixedly installed at the bottom of the reinforcing support (103).

3. A windproof photovoltaic power generation device according to claim 2, characterized in that: The height adjustment component (2) includes: a sleeve (201), locking bolts (202) and a sliding column (203). The sleeve (201) is fixed to the bottom of the reinforcing support (103). The sleeve (201) has a hexagonal hole. Two locking bolts (202) are threaded onto the sleeve (201). The ends of the two locking bolts (202) pass through the sleeve (201) respectively. The sliding column (203) is slidably sleeved on the sleeve (201). The ends of the two locking bolts (202) are pressed against the sliding column (203) respectively. The sliding column (203) is a hexagonal column. The bottom of the sliding column (203) has a hexagonal hole.

4. A windproof photovoltaic power generation device according to claim 3, characterized in that: The tile protector (3) includes: a lifting column (301), a tile protection plate (302), and a protective silicone pad (303). The lifting column (301) is a hexagonal column structure. The side of the lifting column (301) is provided with an arc groove. The lifting column (301) is slidably inserted into the bottom of the sliding column (203). The bottom of the lifting column (301) is fixedly installed with the tile protection plate (302). The bottom of the tile protection plate (302) is fixedly installed with the protective silicone pad (303), and the protective silicone pad (303) is used to adhere to the tile.

5. A windproof photovoltaic power generation device according to claim 4, characterized in that: The protective pad (3) further includes: a damper (304) and a buffer spring (305). The damper (304) is fixedly installed on the lifting column (301). The end of the damper (304) is connected to the inside of the sliding column (203). The top of the lifting column (301) is fixedly installed with a buffer spring (305), and the buffer spring (305) is located inside the sliding column (203). The end of the buffer spring (305) is connected to the output shaft of the damper (304). The buffer spring (305) is located outside the damper (304).

6. A windproof photovoltaic power generation device according to claim 4, characterized in that: The position monitoring device (4) includes: a mounting cylinder (401), a sealing plug (402), and a monitoring switch (403). The mounting cylinder (401) is fixedly installed at the bottom of the sliding column (203). The sealing plug (402) is threaded onto the mounting cylinder (401). The monitoring switch (403) is fixedly installed at the end of the sealing plug (402). The mounting cylinder (401) communicates with the interior of the sliding column (203). The monitoring switch (403) is electrically connected to a buzzer alarm (104).

7. A windproof photovoltaic power generation device according to claim 6, characterized in that: The position monitoring device (4) further includes: a detection column (404), which is slidably sleeved in the mounting cylinder (401); the detection column (404) passes through the side wall of the sliding column (203); the end of the detection column (404) is an arc-shaped structure, and the end of the detection column (404) is aligned with the arc-shaped groove provided on the side of the lifting column (301); a spring is sleeved inside the mounting cylinder (401), and the spring inside the mounting cylinder (401) is connected between the detection column (404) and the sealing plug (402); the spring inside the mounting cylinder (401) is located outside the monitoring switch (403).

8. A windproof photovoltaic power generation device according to claim 2, characterized in that: The shaking prompting component (5) includes: a prompting mounting base (501), a protective shell (5011), a swing ball head (502), and a counterweight ball (503). The prompting mounting base (501) is fixedly installed at the bottom of the reinforcing support (103). The protective shell (5011) is threadedly connected to the bottom of the prompting mounting base (501). The bottom of the prompting mounting base (501) is provided with a spherical groove. The swing ball head (502) is sleeved in the spherical groove at the bottom of the prompting mounting base (501). The counterweight ball (503) is fixedly installed at the bottom of the swing ball head (502).

9. A windproof photovoltaic power generation device according to claim 8, characterized in that: The shaking indicator (5) further includes a contact terminal (504), which is fixedly mounted on the counterweight ball (503) and the bottom end of the contact terminal (504) protrudes from the counterweight ball (503); the counterweight ball (503) and the contact terminal (504) are insulated from each other.

10. A windproof photovoltaic power generation device according to claim 9, characterized in that: The shaking indicator (5) further includes a contact coil (505), which is fixedly installed inside the protective shell (5011) and is located at the bottom of the contact terminal (504); the contact terminal (504), the contact coil (505) and the indicator light (102) are electrically connected.