Mounting bracket for solar photovoltaic panel mechanism on automobile roof

By designing a vehicle-top solar photovoltaic panel mechanism installation bracket that includes stable components, adsorption components and auxiliary stabilization components, the problem of poor stability during high speed in the prior art automobile-top solar photovoltaic panel mechanism installation bracket is solved, and the stable installation of photovoltaic panels and efficient power generation are achieved.

CN120016919APending Publication Date: 2025-05-16SHENZHEN SHENGQI NEW ENERGY VEHICLE TECHNOLOGY CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202510321061.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-18
Publication Date
2025-05-16

AI Technical Summary

Technical Problem

The existing automotive roof solar photovoltaic panel mechanism installation bracket has poor stability when driving at high speed, making it difficult to ensure the stable installation of photovoltaic panels and efficient power generation.

Method used

A vehicle-top solar photovoltaic panel mechanism installation bracket including a photovoltaic solar structure device and a top-cover photovoltaic mechanism installation bracket is designed. By setting a stable component, an adsorption component and an auxiliary stabilization component, the connection stability and adsorption effect between the photovoltaic solar structure device and the top-cover photovoltaic mechanism installation bracket is improved.

Benefits of technology

It realizes a stable connection between the photovoltaic solar structure device and the top-cover photovoltaic mechanism installation bracket when the car is driving at high speed, improving the use stability of the photovoltaic panel and power generation efficiency.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120016919A_ABST
    Figure CN120016919A_ABST
Patent Text Reader

Abstract

The invention discloses an automobile roof solar photovoltaic panel mechanism mounting bracket, and relates to the technical field of photovoltaic brackets. The automobile roof solar photovoltaic panel mechanism mounting bracket comprises a photovoltaic solar structure device and a roof photovoltaic mechanism mounting bracket, a mounting shaft is assembled at the bottom of the photovoltaic solar structure device, a guide shaft is assembled at the bottom of the mounting shaft, and a sliding block is assembled between the guide shaft and the mounting shaft. According to the automobile roof solar photovoltaic panel mechanism mounting bracket, mounting and dismounting of a photovoltaic solar structure device can be rapidly completed, and under the condition that an automobile runs at a high speed, wind wheels, a first hydraulic bin, an elastic telescopic rod, a moving block, an arc-shaped rod, a second hydraulic bin, a stress rod, a push rod, a second spring, a rotating shaft, a stress plate, a limiting plate, an arc-shaped limiting block and an arc-shaped limiting groove are matched; and the stability of connection between the photovoltaic solar structure device and the top cover photovoltaic mechanism mounting bracket is improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The invention relates to the technical field of photovoltaic brackets, in particular to a solar photovoltaic panel mechanism mounting bracket on a car roof. Background Art

[0002] In the field of photovoltaic brackets, the design, manufacture and installation of vehicle-mounted photovoltaic panel brackets, as a special application of photovoltaic brackets, all involve photovoltaic bracket technology. This includes the structural design, material selection, manufacturing process, installation and commissioning of the bracket, aiming to ensure the stable support and efficient power generation of photovoltaic panels on the vehicle. In the field of new energy vehicle technology, vehicle-mounted photovoltaic panel brackets, as an important supporting facility for new energy vehicles, are closely related to the development of new energy vehicles. The design of the bracket needs to take into account the particularities of new energy vehicles, such as vehicle weight, driving stability, and installation convenience, to ensure the compatibility and safety of photovoltaic panel brackets with new energy vehicles. With the rapid growth of the new energy vehicle market and the huge potential of the solar panel market, the market demand for vehicle-mounted photovoltaic panel brackets, as an important supporting facility for new energy vehicles, continues to increase. Especially in transportation tools such as logistics vehicles, taxis, and private cars, the use of photovoltaic solar panels can reduce operating costs and improve economic benefits.

[0003] The vehicle-mounted photovoltaic panel bracket needs to be lightweight in design to ensure that it does not have too much impact on vehicle driving. It needs to have good weather resistance and shock resistance to ensure that it can work stably in various harsh environments and ensure the normal operation of the vehicle. It also needs to be easy to install and maintain. In addition, the existing car-top solar photovoltaic panel mechanism mounting bracket may have poor stability when the car is running at high speed. Summary of the invention

[0004] In view of the deficiencies of the prior art, the present invention provides a car roof solar photovoltaic panel mechanism mounting bracket, which solves the problems raised in the above background technology. To achieve the above purpose, the present invention is implemented through the following technical solutions: a car roof solar photovoltaic panel mechanism mounting bracket, including a photovoltaic solar structure device and a top cover photovoltaic mechanism mounting bracket, the bottom of the photovoltaic solar structure device is equipped with a mounting shaft, the bottom of the mounting shaft is equipped with a guide shaft, a slider is equipped between the guide shaft and the mounting shaft, the top of the top cover photovoltaic mechanism mounting bracket is equipped with a plastic mounting seat by arranging a rubber pad, the top of the plastic mounting seat is equipped with a guide tube, the interior of the guide tube is connected to a locking pin cap by arranging a spring, and the side of the locking pin cap is equipped with a locking pin;

[0005] A stabilizing component is arranged between the photovoltaic solar structure device and the top photovoltaic mechanism mounting bracket, the stabilizing component includes a wind wheel rotatably connected to the top photovoltaic mechanism mounting bracket, the top of the wind wheel is connected to a hydraulic warehouse 1, the interior of the hydraulic warehouse 1 is slidably connected to a moving block by setting an elastic telescopic rod, the side of the hydraulic warehouse 1 is slidably connected to an arc rod, the top of the top photovoltaic mechanism mounting bracket is equipped with a hydraulic warehouse 2, one end of the hydraulic warehouse 2 is slidably connected to a force rod, the other end of the hydraulic warehouse 2 is slidably connected to a push rod, the side of the force rod is equipped with a spring 2, the top of the top photovoltaic mechanism mounting bracket is rotatably connected to a rotating shaft, the outer side of the rotating shaft is respectively fixedly connected to a force plate and a limit plate, the top of the limit plate is fixedly connected to an arc limit block, and the side of the photovoltaic solar structure device is provided with an arc limit groove. The stability of the connection between the photovoltaic solar structure device and the top photovoltaic mechanism mounting bracket is improved by the arrangement of the stabilizing component.

[0006] Preferably, the force-bearing rod is located at a side position of the arc-shaped rod and is in contact with the arc-shaped rod.

[0007] Preferably, the force-bearing plate is located at the top of the push rod and is fixed to the push rod.

[0008] Preferably, the cross-sectional shape of the arc-shaped limiting groove is matched with the cross-sectional shape of the arc-shaped limiting block.

[0009] Preferably, the top of the top cover photovoltaic mechanism mounting bracket is provided with an adsorption assembly, the adsorption assembly includes an electric telescopic rod, the top of the electric telescopic rod is transmission-connected with a moving rod, the top of the moving rod is equipped with a suction cup, the top of the top cover photovoltaic mechanism mounting bracket is fixedly connected with a pressure chamber 1, the inside of the moving rod is fixedly connected with a penetrating pressure chamber 2, the pressure chamber 2 is connected to the pressure chamber 1 by a hose, and the side of the pressure chamber 1 is slidably connected with a connecting rod. The provision of the adsorption assembly improves the stability of the photovoltaic solar structure device during use.

[0010] Preferably, the second air pressure chamber is located at the bottom of the suction cup and is interconnected with the suction cup.

[0011] Preferably, the connecting rod is located at a side position of the stress-bearing rod and is in a fixed state with the stress-bearing rod.

[0012] Preferably, an auxiliary stabilizing component is arranged on the side of the top photovoltaic mechanism mounting bracket, the auxiliary stabilizing component includes a windshield, a transmission rod is fixedly connected to the side of the rotating shaft, a ratchet is fixedly connected to the side of the transmission rod, a spring is arranged on the side of the windshield and connected to a pull rod, and a ratchet is fixedly connected to the side of the pull rod. The auxiliary stabilizing component is arranged to further improve the stability of the device when in use.

[0013] Preferably, the wind shield is located at a side position of the top cover photovoltaic mechanism mounting bracket, and is in a fixed state with the top cover photovoltaic mechanism mounting bracket.

[0014] Preferably, the pawl is located at a side of the ratchet wheel and is in meshing state with the ratchet wheel.

[0015] The present invention provides a car roof solar photovoltaic panel mechanism mounting bracket, which has the following beneficial effects:

[0016] (1) The automobile roof solar photovoltaic panel mechanism mounting bracket can quickly complete the installation and disassembly of the photovoltaic solar structure device, and when the automobile is driving at high speed, it cooperates with the wind wheel, hydraulic compartment 1, elastic telescopic rod, moving block, arc rod, hydraulic compartment 2, force rod, push rod, spring 2, rotating shaft, force plate, limit plate, arc limit block and arc limit groove to improve the stability of the connection between the photovoltaic solar structure device and the top cover photovoltaic mechanism mounting bracket.

[0017] (2) After the photovoltaic solar structure device is installed on the roof photovoltaic structure mounting bracket, the electric telescopic rod is started, and the mobile rod, the air pressure chamber 1, the air pressure chamber 2, the hose and the connecting rod are cooperated to improve the adsorption effect of the suction cup on the photovoltaic solar structure device, thereby improving the stability of the photovoltaic solar structure device during use.

[0018] (3) After the stabilizing component of the solar photovoltaic panel mounting bracket on the roof of the car is activated, when the speed of the vehicle suddenly slows down, causing the wind wheel to stop rotating or the speed to slow down, the stabilizing component can be kept in an activated state by cooperating with the wind shield, transmission rod, ratchet, spring three and ratchet pawl. Only when the stabilizing component is no longer needed can the stabilizing component be completely reset by manually pulling the pull rod, thereby further improving the stability of the device during use. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] In order to more clearly illustrate the technical solutions in the present invention or the prior art, a brief introduction is given below to the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.

[0020] Figure 1 It is a schematic diagram of the overall three-dimensional structure of the present invention;

[0021] Figure 2 It is a schematic diagram of the overall cross-sectional three-dimensional structure of the present invention;

[0022] Figure 3 It is a schematic diagram of the three-dimensional structure of some parts of the present invention;

[0023] Figure 4 It is a schematic diagram of the three-dimensional structure of the stabilizing assembly of the present invention;

[0024] Figure 5 For the present invention Figure 4 The enlarged structural diagram at A in the middle;

[0025] Figure 6 For the present invention Figure 4 The enlarged structural diagram at B in the middle;

[0026] Figure 7 It is a schematic diagram of the three-dimensional structure of the adsorption component of the present invention;

[0027] Figure 8 It is a schematic diagram of the structure of the auxiliary stabilizing component of the present invention.

[0028] In the figure:

[0029] 100, photovoltaic solar structure device; 200, top cover photovoltaic mechanism mounting bracket; 600, mounting shaft; 700, guide shaft; 800, slider; 900, rubber pad; 1000, plastic mounting seat; 1100, guide tube; 1200, spring 1; 1300, locking pin cap; 1400, locking pin;

[0030] 300, stabilizing assembly; 301, wind wheel; 302, hydraulic chamber 1; 303, elastic telescopic rod; 304, moving block; 305, arc rod; 306, hydraulic chamber 2; 307, force rod; 308, push rod; 309, spring 2; 310, rotating shaft; 311, force plate; 312, limiting plate; 313, arc limiting block; 314, arc limiting groove;

[0031] 400, adsorption assembly; 401, electric telescopic rod; 402, mobile rod; 403, suction cup; 404, air pressure chamber 1; 405, air pressure chamber 2; 406, hose; 407, connecting rod;

[0032] 500, auxiliary stabilization assembly; 501, wind shield; 502, transmission rod; 503, ratchet; 504, spring three; 505, pull rod; 506, pawl. DETAILED DESCRIPTION

[0033] In order to make the purpose, technical solution and advantages of the present invention clearer, the technical solution of the present invention will be clearly and completely described below in conjunction with the drawings of the present invention. Obviously, the described embodiments are part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0034] Embodiment 1

[0035] See also Figure 1-Figure 6 A car roof solar photovoltaic panel mechanism mounting bracket comprises a photovoltaic solar structure device 100 and a top cover photovoltaic mechanism mounting bracket 200, the bottom of the photovoltaic solar structure device 100 is equipped with a mounting shaft 600, the bottom of the mounting shaft 600 is equipped with a guide shaft 700, a slider 800 is installed between the guide shaft 700 and the mounting shaft 600, the top of the top cover photovoltaic mechanism mounting bracket 200 is equipped with a plastic mounting seat 1000 by arranging a rubber pad 900, the top of the plastic mounting seat 1000 is equipped with a guide tube 1100, the interior of the guide tube 1100 is connected with a locking pin cap 1300 by arranging a spring 1200, and the side of the locking pin cap 1300 is equipped with a locking pin 1400, the photovoltaic solar structure device 100 is moved toward the top cover photovoltaic mechanism mounting bracket 200, so that the mounting shaft 600 at the bottom of the photovoltaic solar structure device 100 passes through The guide tube 1100 is directly inserted into the plastic mounting seat 1000 on the top of the top cover photovoltaic mechanism mounting bracket 200. As the mounting shaft 600 moves downward, it cooperates with the spring 1200 and the locking pin 1400 to automatically lock when it reaches the locking position; when the photovoltaic solar structure device 100 needs to be disassembled, the photovoltaic solar structure device 100 is continued to be pressed downward, and the photovoltaic solar structure device 100 can be smoothly pulled out through the action of the slider 800; the installation hole of the top cover photovoltaic mechanism mounting bracket 200 can be prevented from leaking by the setting of the rubber pad 900; the top cover photovoltaic mechanism mounting bracket 200 is screwed to the vehicle body, and the top cover photovoltaic mechanism mounting bracket 200 is installed on the vehicle body only when the vehicle model needs the photovoltaic solar structure device 100. The vehicle model without the photovoltaic solar structure device 100 can directly remove the top cover photovoltaic mechanism mounting bracket 200;

[0036] A stabilizing assembly 300 is arranged between the photovoltaic solar structure device 100 and the top cover photovoltaic mechanism mounting bracket 200. The stabilizing assembly 300 includes a wind wheel 301 rotatably connected to the top cover photovoltaic mechanism mounting bracket 200. The top of the wind wheel 301 is transmission-connected to a hydraulic bin 302. The interior of the hydraulic bin 302 is slidably connected to a moving block 304 via an elastic telescopic rod 303. The side of the hydraulic bin 302 is slidably connected to an arc rod 305. After the photovoltaic solar structure device 100 is installed on the top cover photovoltaic mechanism mounting bracket 200, when the car is driving at high speed, the wind wheel 301 rotatably connected to the top cover photovoltaic mechanism mounting bracket 200 can be driven to rotate rapidly, so that the wind wheel 301 drives the hydraulic chamber 1 302 transmission-connected thereto to rotate rapidly, and the moving block 304 in the hydraulic chamber 1 302 can stretch the elastic telescopic rod 303 under the action of centrifugal force, and slide inside the hydraulic chamber 1 302, so that the pressure in the hydraulic chamber 1 302 is increased, and the arc rod 305 slidably connected to the hydraulic chamber 1 302 is driven to rotate. At this time, the arc rod 305 is extended while rotating.

[0037] The top of the top cover photovoltaic mechanism mounting bracket 200 is equipped with a hydraulic bin 2 306, one end of the hydraulic bin 2 306 is slidably connected to a force rod 307, the force rod 307 is located at the side of the arc rod 305 and contacts the arc rod 305, the other end of the hydraulic bin 2 306 is slidably connected to a push rod 308, the side of the force rod 307 is equipped with a spring 2 309, the top of the top cover photovoltaic mechanism mounting bracket 200 is rotatably connected to a rotating shaft 310, the outer sides of the rotating shaft 310 are respectively fixedly connected with a force plate 311 and a limit plate 312, the force plate 311 is located at the top position of the push rod 308, and is in a fixed state with the push rod 308, the top of the limit plate 312 is fixedly connected with an arc limit block 313, and an arc limit groove 314 is opened on the side of the photovoltaic solar structure device 100, and the cross-sectional shape of the arc limit groove 314 is adapted to the cross-sectional shape of the arc limit block 313. When the arc rod 305 extends while rotating, it can squeeze the stress rod 307, cooperate with the hydraulic chamber 2 306 slidably connected to the stress rod 307, so that the pressure in the hydraulic chamber 2 306 increases, driving the push rod 308 slidably connected to the hydraulic chamber 2 306 to extend, so that the push rod 308 drives the stress plate 311 fixedly connected thereto to rotate, and the stress plate 311 then drives the rotating shaft 310 fixedly connected thereto to rotate, so that the rotating shaft 310 drives the limiting plate 312 fixedly connected thereto to rotate, and the arc limiting block 313 fixed on the limiting plate 312 moves with the limiting plate 312 into the arc limiting groove 314 opened on the side of the photovoltaic solar structure device 100. At this time, the arc limiting blocks 313 on both sides move into the arc limiting groove 314, and the restriction of the photovoltaic solar structure device 100 is completed through the arc limiting groove 314. The stability of the connection between the photovoltaic solar structure device 100 and the top cover photovoltaic mechanism mounting bracket 200 is improved.

[0038] When in use, the photovoltaic solar structure device 100 is moved toward the top cover photovoltaic mechanism mounting bracket 200, so that the mounting shaft 600 at the bottom of the photovoltaic solar structure device 100 is directly inserted into the plastic mounting seat 1000 at the top of the top cover photovoltaic mechanism mounting bracket 200 through the guide tube 1100. As the mounting shaft 600 moves downward, it cooperates with the spring 1200 and the locking pin 1400 to automatically lock when it reaches the locking position; when it is necessary to disassemble the photovoltaic solar structure device 100, continue to press the photovoltaic solar structure device 100 downward, and the photovoltaic solar structure device 100 can be smoothly pulled out through the action of the slider 800. 00; the installation hole of the top cover photovoltaic mechanism mounting bracket 200 can be prevented from leaking by setting the rubber pad 900; the top cover photovoltaic mechanism mounting bracket 200 is screwed on the vehicle body, and the top cover photovoltaic mechanism mounting bracket 200 is installed on the vehicle body only when the vehicle model needs the photovoltaic solar structure device 100. The vehicle model without the photovoltaic solar structure device 100 can directly remove the top cover photovoltaic mechanism mounting bracket 200; after the photovoltaic solar structure device 100 is installed on the top cover photovoltaic mechanism mounting bracket 200, when the vehicle is driving at high speed, it can drive the wind turbine connected to the top cover photovoltaic mechanism mounting bracket 200 to rotate. The wind wheel 301 rotates rapidly, so that the wind wheel 301 drives the hydraulic chamber 1 302 connected thereto to rotate rapidly. The moving block 304 in the hydraulic chamber 1 302 can stretch the elastic telescopic rod 303 under the action of centrifugal force, and slide inside the hydraulic chamber 1 302, so that the pressure in the hydraulic chamber 1 302 increases, and drives the arc rod 305 slidably connected to the hydraulic chamber 1 302 to rotate. At this time, the arc rod 305 extends while rotating, thereby squeezing the force-bearing rod 307, and cooperating with the hydraulic chamber 2 306 slidably connected to the force-bearing rod 307, so that the pressure in the hydraulic chamber 2 306 increases, and drives the hydraulic chamber 2 306 to rotate. 06 The slidingly connected push rod 308 extends out, so that the push rod 308 drives the force-bearing plate 311 fixedly connected thereto to rotate, and the force-bearing plate 311 then drives the rotating shaft 310 fixedly connected thereto to rotate, so that the rotating shaft 310 drives the limiting plate 312 fixedly connected thereto to rotate, and the arc-shaped limiting block 313 fixed on the limiting plate 312 moves with the limiting plate 312 to the arc-shaped limiting groove 314 opened on the side of the photovoltaic solar structure device 100. At this time, the arc-shaped limiting blocks 313 on both sides move into the arc-shaped limiting groove 314, and the restriction of the photovoltaic solar structure device 100 is completed through the arc-shaped limiting groove 314.

[0039] Embodiment 2

[0040] See also Figure 1-Figure 7On the basis of the first embodiment, a suction assembly 400 is provided on the top of the top cover photovoltaic mechanism mounting bracket 200, and the suction assembly 400 includes an electric telescopic rod 401, and the top of the electric telescopic rod 401 is connected to a moving rod 402 in a transmission manner, and a suction cup 403 is installed on the top of the moving rod 402. After the photovoltaic solar structure device 100 is installed on the top cover photovoltaic mechanism mounting bracket 200, the electric telescopic rod 401 is started, and the moving rod 402 connected to it in a transmission manner can be driven to move upward a certain distance, and the suction cup 403 installed on the moving rod 402 moves upward accordingly, and the photovoltaic solar structure device 100 is initially adsorbed.

[0041] The top of the top cover photovoltaic mechanism mounting bracket 200 is fixedly connected with a pressure chamber 1 404, and the inside of the movable rod 402 is fixedly connected with a penetrating pressure chamber 2 405, the pressure chamber 2 405 is located at the bottom of the suction cup 403, and is interconnected with the suction cup 403, the pressure chamber 2 405 and the pressure chamber 1 404 are connected by a hose 406, and the side of the pressure chamber 1 404 is slidably connected with a connecting rod 407, and the connecting rod 407 is located on the side of the force-bearing rod 307 and is fixed to the force-bearing rod 307. As the car travels at high speed, the stress rod 307 is squeezed and moves to the side, which can drive the connecting rod 407 fixedly connected to the stress rod 307 to move to the side synchronously. At this time, the connecting rod 407 moves to the side away from the air pressure chamber 1 404, and the pressure in the air pressure chamber 1 404 is reduced immediately. Because the air pressure chamber 1 404 is connected to the air pressure chamber 2 405 through the hose 406, the pressure in the air pressure chamber 2 405 is reduced. Because the air pressure chamber 2 405 is located at the bottom of the suction cup 403 and is connected to the suction cup 403, the residual gas between the suction cup 403 and the photovoltaic solar structure device 100 is extracted into the air pressure chamber 2 405. The adsorption effect of the suction cup 403 on the photovoltaic solar structure device 100 can be improved, thereby improving the stability of the photovoltaic solar structure device 100 when in use.

[0042] When the force-bearing rod 307 is reset, the connecting rod 407 fixedly connected to the force-bearing rod 307 is reset together, so that the pressure in the air pressure chamber 1 404 slidably connected to the connecting rod 407 is restored to the initial state. Similarly, the gas extracted in the air pressure chamber 2 405 is discharged between the suction cup 403 and the photovoltaic solar structure device 100, and then the electric telescopic rod 401 is started to move the moving rod 402 transmission-connected to the electric telescopic rod 401 to completely reset the adsorption assembly 400, so as to facilitate the next use of the device.

[0043] When in use, on the basis of Example 1, after the photovoltaic solar structure device 100 is installed on the top cover photovoltaic mechanism mounting bracket 200, the electric telescopic rod 401 is started, which can drive the moving rod 402 connected to it to move upward a certain distance, and the suction cup 403 mounted on the moving rod 402 moves upward accordingly, and the photovoltaic solar structure device 100 is initially adsorbed; as the car is driving at high speed, the force-bearing rod 307 is squeezed and moves to the side, which can drive the connecting rod 407 fixedly connected to the force-bearing rod 307 to move to the side synchronously. At this time, the connecting rod 407 moves to the side away from the air pressure chamber 1 404, and the pressure in the air pressure chamber 1 404 is reduced immediately, because the air pressure chamber 1 404 is connected to the air pressure chamber 2 405 through the hose 406. The pressure in the air pressure chamber 405 is reduced, and because the air pressure chamber 405 is located at the bottom of the suction cup 403 and is connected to the suction cup 403, the residual gas between the suction cup 403 and the photovoltaic solar structure device 100 is extracted into the air pressure chamber 405; and when the force-bearing rod 307 is reset, the connecting rod 407 fixedly connected to the force-bearing rod 307 is reset therewith, so that the pressure in the air pressure chamber 404 slidingly connected to the connecting rod 407 is restored to its initial state. Similarly, the gas extracted in the air pressure chamber 405 is discharged to between the suction cup 403 and the photovoltaic solar structure device 100, and then the electric telescopic rod 401 is started to move the moving rod 402 transmission-connected to the electric telescopic rod 401, so that the adsorption component 400 is completely reset.

[0044] Embodiment 3

[0045] See also Figure 1-Figure 8 On the basis of the first and second embodiments, an auxiliary stabilizing assembly 500 is provided on the side of the top photovoltaic mechanism mounting bracket 200, and the auxiliary stabilizing assembly 500 includes a windshield 501, which is located on the side of the top photovoltaic mechanism mounting bracket 200 and is fixed to the top photovoltaic mechanism mounting bracket 200. A transmission rod 502 is fixedly connected to the side of the rotating shaft 310, and a ratchet 503 is fixedly connected to the side of the transmission rod 502. A spring 3 504 is provided on the side of the windshield 501 and is connected to a pull rod 505. A ratchet 506 is fixedly connected to the side of the pull rod 505. The ratchet 506 is located on the side of the ratchet 503 and is meshed with the ratchet 503. When the rotating shaft 310 is rotating, Figure 2 and Figure 8As shown, the rotating shaft 310 rotates counterclockwise by 90 degrees, driving the transmission rod 502 fixedly connected to the rotating shaft 310 to rotate counterclockwise, so that the transmission rod 502 drives the ratchet 503 fixedly connected thereto to rotate counterclockwise, and as the ratchet 503 rotates counterclockwise, the protruding parts on the ratchet 503 sequentially squeeze the pawl 506, so that the pawl 506 sequentially stretches the spring 3 504 through the pull rod 505 to reciprocate, ensuring that the ratchet 503 can smoothly rotate counterclockwise, thereby ensuring that the arc-shaped limit block 313 can be smoothly inserted into the arc-shaped limit groove 314. The auxiliary stabilizing assembly 500 does not affect the normal activation of the stabilizing assembly 300.

[0046] If the vehicle speed suddenly slows down, causing the wind wheel 301 to stop or slow down, the moving block 304 loses the restriction of centrifugal force and resets under the action of the elastic telescopic rod 303, so that the force-bearing rod 307 loses the restriction of the arc rod 305. At this time, the force-bearing rod 307 has a tendency to reset under the action of the second spring 309. If the force-bearing rod 307 completes the reset under the action of the second spring 309, then Figure 8 The rotating shaft 310 in the back is rotated clockwise by 90 degrees to reset, and at this time, the rotating shaft 310 is restricted by the ratchet 503 and the pawl 506 and cannot rotate clockwise, thereby ensuring that the arc-shaped limit block 313 is still inserted into the arc-shaped limit groove 314. The stability of the device during use is further improved.

[0047] When the stabilizing assembly 300 is not needed, the rod 505 is manually pulled to drive the pawl 506 fixedly connected to the rod 505 to move to a side away from the ratchet wheel 503. At this time, the restriction on the rotating shaft 310 is removed, so that the stabilizing assembly 300 can be reset to facilitate the next use of the device.

[0048] When in use, based on the first and second embodiments, when the rotating shaft 310 is in a state of rotation, Figure 2 and Figure 8As shown, the rotating shaft 310 rotates counterclockwise by 90 degrees, driving the transmission rod 502 fixedly connected to the rotating shaft 310 to rotate counterclockwise, so that the transmission rod 502 drives the ratchet 503 fixedly connected thereto to rotate counterclockwise. As the ratchet 503 rotates counterclockwise, the inclined protruding parts on the ratchet 503 squeeze the pawl 506 in turn, so that the pawl 506 stretches the spring 3 504 in turn through the pull rod 505 to reciprocate, ensuring that the ratchet 503 can smoothly rotate counterclockwise. The arc-shaped limit block 313 can be smoothly inserted into the arc-shaped limit groove 314. At this time, if the vehicle speed suddenly slows down, causing the wind wheel 301 to stop or the speed to slow down, the moving block 304 loses the restriction of the centrifugal force and resets under the action of the elastic telescopic rod 303, so that the force-bearing rod 307 loses the restriction of the arc rod 305. At this time, the force-bearing rod 307 has a tendency to reset under the action of the second spring 309. If the force-bearing rod 307 completes the reset under the action of the second spring 309, then Figure 8 The rotating shaft 310 is rotated ninety degrees clockwise to reset, and at this time the rotating shaft 310 is restricted by the ratchet 503 and the pawl 506 and cannot rotate clockwise, thereby ensuring that the arc limit block 313 is still inserted into the arc limit groove 314; when the stabilizing component 300 is not needed, the pull rod 505 is manually pulled to drive the pawl 506 fixedly connected to the pull rod 505 to move to the side away from the ratchet 503. At this time, the restriction on the rotating shaft 310 is cancelled, so that the stabilizing component 300 can be reset.

[0049] The above description is only a preferred specific implementation manner of the present invention, but the protection scope of the present invention is not limited thereto. Any technician familiar with the technical field can make equivalent replacements or changes according to the technical scheme and inventive concept of the present invention within the technical scope disclosed by the present invention, which should be covered by the protection scope of the present invention.

Claims

1. A solar photovoltaic panel mounting bracket for a car roof, comprising a photovoltaic solar structure device (100) and a top photovoltaic mechanism mounting bracket (200), wherein the bottom of the photovoltaic solar structure device (100) is equipped with a mounting shaft (600), the bottom of the mounting shaft (600) is equipped with a guide shaft (700), a slider (800) is arranged between the guide shaft (700) and the mounting shaft (600), the top of the top photovoltaic mechanism mounting bracket (200) is equipped with a plastic mounting seat (1000) by arranging a rubber pad (900), the top of the plastic mounting seat (1000) is equipped with a guide tube (1100), the interior of the guide tube (1100) is connected to a locking pin cap (1300) by arranging a spring 1 (1200), and the side of the locking pin cap (1300) is equipped with a locking pin (1400); Features: A stabilizing assembly (300) is provided between the photovoltaic solar structure device (100) and the top photovoltaic mechanism mounting bracket (200), the stabilizing assembly (300) comprising a wind wheel (301) rotatably connected to the top photovoltaic mechanism mounting bracket (200), the top of the wind wheel (301) being transmission-connected to a hydraulic chamber 1 (302), the interior of the hydraulic chamber 1 (302) being slidably connected to a moving block (304) by means of an elastic telescopic rod (303), the side of the hydraulic chamber 1 (302) being slidably connected to an arc rod (305), the top of the top photovoltaic mechanism mounting bracket (200) being equipped with a hydraulic chamber 2 (30 6), one end of the hydraulic bin 2 (306) is slidably connected to a force rod (307), the other end of the hydraulic bin 2 (306) is slidably connected to a push rod (308), the side of the force rod (307) is equipped with a spring 2 (309), the top of the top cover photovoltaic mechanism mounting bracket (200) is rotatably connected to a rotating shaft (310), the outer sides of the rotating shaft (310) are respectively fixedly connected to a force plate (311) and a limit plate (312), the top of the limit plate (312) is fixedly connected to an arc-shaped limit block (313), and the side of the photovoltaic solar structure device (100) is provided with an arc-shaped limit groove (314).

2. The vehicle roof solar photovoltaic panel mechanism mounting bracket according to claim 1, characterized in that: The force-bearing rod (307) is located on the side of the arc-shaped rod (305) and is in contact with the arc-shaped rod (305).

3. The vehicle roof solar photovoltaic panel mechanism mounting bracket according to claim 1, characterized in that: The force-bearing plate (311) is located at the top of the push rod (308) and is in a fixed state with the push rod (308).

4. The vehicle roof solar photovoltaic panel mechanism mounting bracket according to claim 1, characterized in that: The cross-sectional shape of the arc-shaped limiting groove (314) is compatible with the cross-sectional shape of the arc-shaped limiting block (313).

5. The vehicle roof solar photovoltaic panel mechanism mounting bracket according to claim 1, characterized in that: The top of the top cover photovoltaic mechanism mounting bracket (200) is provided with an adsorption assembly (400), and the adsorption assembly (400) includes an electric telescopic rod (401), and the top of the electric telescopic rod (401) is transmission-connected with a moving rod (402), and the top of the moving rod (402) is equipped with a suction cup (403), and the top of the top cover photovoltaic mechanism mounting bracket (200) is fixedly connected with a pressure chamber 1 (404), and the inside of the moving rod (402) is fixedly connected with a penetrating pressure chamber 2 (405), and the pressure chamber 2 (405) is connected to the pressure chamber 1 (404) by setting a hose (406), and the side of the pressure chamber 1 (404) is slidably connected with a connecting rod (407).

6. The vehicle roof solar photovoltaic panel mechanism mounting bracket according to claim 5, characterized in that: The air pressure chamber 2 (405) is located at the bottom of the suction cup (403) and is interconnected with the suction cup (403).

7. The vehicle roof solar photovoltaic panel mechanism mounting bracket according to claim 5, characterized in that: The connecting rod (407) is located at the side of the force-bearing rod (307) and is in a fixed state with the force-bearing rod (307).

8. The vehicle roof solar photovoltaic panel mechanism mounting bracket according to claim 1, characterized in that: An auxiliary stabilization component (500) is arranged on the side of the top cover photovoltaic mechanism mounting bracket (200), and the auxiliary stabilization component (500) includes a windshield (501), a transmission rod (502) is fixedly connected to the side of the rotating shaft (310), a ratchet (503) is fixedly connected to the side of the transmission rod (502), a spring three (504) is arranged on the side of the windshield (501) and is connected to a pull rod (505), and a ratchet (506) is fixedly connected to the side of the pull rod (505).

9. The vehicle roof solar photovoltaic panel mechanism mounting bracket according to claim 8, characterized in that: The wind shield (501) is located on the side of the top cover photovoltaic mechanism mounting bracket (200) and is in a fixed state with the top cover photovoltaic mechanism mounting bracket (200).

10. The vehicle roof solar photovoltaic panel mechanism mounting bracket according to claim 8, characterized in that: The pawl (506) is located on the side of the ratchet wheel (503) and is in meshing state with the ratchet wheel (503).