An integrated energy storage mechanism for wind power and photovoltaic power

By designing mechanical components such as wind structures, photovoltaic structures and other mechanical components in wind power and photovoltaic integrated energy storage institutions, the difficulty of repairing and replacement and safety problems when photovoltaic panels are damaged is solved, and the convenient disassembly of photovoltaic panels and the stable transmission of electricity are achieved.

CN119766072BActive Publication Date: 2025-08-12GAOCHUANG (YANCHENG) TECHNOLOGY TRANSFER CO LTD
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Patent Information

Application Number
CN202411934582.0
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-12-26
Publication Date
2025-08-12
Estimated Expiration
2044-12-26

AI Technical Summary

Technical Problem

The existing wind power and photovoltaic integrated energy storage mechanisms are difficult and dangerous to repair and replace when the photovoltaic panels are damaged, and cannot effectively ensure the safety of staff.

Method used

An energy storage mechanism including wind structure, photovoltaic structure, installation structure, limit structure, conflict structure and connection structure is designed. Through mechanical components such as ratchets, springs, cams and drawstrings, the photovoltaic panels are easily disassembled and replaced, ensuring safety and electrical energy transmission.

Benefits of technology

It realizes convenient maintenance and replacement of photovoltaic panels, ensures the safety of staff, and ensures the stable transmission and storage of electricity.

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Abstract

The present invention relates to the field of photovoltaic energy storage technology, and specifically to an integrated energy storage mechanism for wind power and photovoltaics, comprising a windmill main body, a wind structure for wind energy storage connected to the windmill main body, a photovoltaic structure connected to the wind structure, an installation structure for facilitating maintenance and replacement of the photovoltaic structure connected to the wind structure, a limiting structure for limiting the photovoltaic structure connected to the wind structure, a resistance structure connected to the photovoltaic structure, and a connection structure for electric energy transmission connected to the photovoltaic structure; wind power can be converted into electric energy for storage through the wind structure; solar energy can be converted into electric energy for storage through the photovoltaic structure, and at the same time, maintenance and replacement are facilitated, disassembly and assembly are facilitated through the installation structure, the photovoltaic structure can be limited through the limiting structure, the resistance structure can make disassembly and maintenance more convenient, and the connection structure facilitates the transmission of electric energy.
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Description

Technical Field

[0001] The present invention relates to the technical field of photovoltaic energy storage, in particular to an integrated energy storage mechanism for wind power and photovoltaics. Background Art

[0002] As the pollution problem of thermal power generation becomes more serious, new energy technologies such as wind power and photovoltaic power generation have been vigorously developed. In areas with relatively sufficient sunlight, photovoltaic power generation is highly efficient and can alleviate the problem of power supply shortage in local areas, thereby reducing the pressure of thermal power generation and environmental pollution problems. Photovoltaic power generation devices have high requirements for light and cannot work effectively at night or in windy and rainy weather. Therefore, the use of integrated wind power and photovoltaic energy storage mechanisms can effectively increase the storage of electrical energy.

[0003] At present, when the photovoltaic panels of the integrated wind power and photovoltaic energy storage mechanism are damaged, it is rather troublesome to repair and replace them. The photovoltaic panels are fixed on the fan blades, and they need to be disassembled and assembled using an escalator during maintenance. The fan blades are relatively high, making repair and replacement more dangerous. Summary of the Invention

[0004] In response to the problems in the prior art, the present invention provides an integrated energy storage mechanism for wind power and photovoltaic power.

[0005] The technical solution adopted by the present invention to solve its technical problems is: an integrated energy storage mechanism for wind power and photovoltaic power, comprising a windmill main body, a wind structure for wind energy storage connected to the windmill main body, a photovoltaic structure for photovoltaic energy storage connected to the wind structure, a mounting structure for facilitating maintenance and replacement of the photovoltaic structure connected to the wind structure, a limiting structure for limiting the photovoltaic structure connected to the wind structure, a resistance structure for increasing stability connected to the photovoltaic structure, and a connection structure for electric energy transmission connected to the photovoltaic structure;

[0006] The photovoltaic structure includes a push bar, the wind structure includes an electric power conversion group, the top of the windmill body is installed with an electric power conversion group, the electric power conversion group is installed with fan blades, a plurality of push bars are slidably connected to the fan blades through a slide groove, and the plurality of push bars are fixedly connected by a pull rope, a pair of tension springs are fixedly connected between the push bar close to one end of the electric power conversion group and the fan blade, a fixed frame is abutted between two adjacent push bars, a photovoltaic panel is fixedly connected to the inside of the fixed frame, the bottom end of the fan blade is rotatably connected to a rotating shaft, the rotating shaft and one end of the pull rope are entangled and connected, and one end of the rotating shaft is fixedly connected to a handle, the fan blade is in a "cross" shape, and the electric power conversion group is in a spherical shape.

[0007] Specifically, a standing platform is fixedly connected to the windmill body, and a guardrail is installed on the standing platform.

[0008] Specifically, the limiting structure includes a ratchet, one end of the rotating shaft is fixedly connected to the ratchet, the ratchet and the fan blade are rotatably connected, one end of the fan blade is rotatably connected to a pawl, the pawl and the ratchet are engaged, a torsion spring is in contact between the pawl and the fan blade, one end of the fan blade is slidably connected to a control block, elastic sheets are installed at both ends of the fan blade close to the control block, the control block and the elastic sheet are in contact, the elastic sheet is "W"-shaped, the end of the control block that is in contact with the elastic sheet is convex, one end of the control block is "L"-shaped, and the pawl is "L"-shaped.

[0009] Specifically, the interference structure includes a second spring, both ends of the fixed frame are fixedly connected to the second spring, the other end of the second spring is fixedly connected to the roller, and the roller interferes with the fan blade through a sliding groove.

[0010] Specifically, the connection structure includes a connection card block, the bottom end of the photovoltaic panel is electrically connected to the connection card block, the top end of the photovoltaic panel is electrically connected to the connection sleeve, and the connection card block on the photovoltaic panel is socketed with the connection sleeve on another photovoltaic panel.

[0011] Specifically, the mounting structure includes a rotating plate, one end of the fan blade is rotatably connected to a pair of rotating plates, the rotating plate is rotatably connected to a cam, a rotating hole is provided on the cam, both ends of the cam are rotatably connected to a connecting rod, one end of the connecting rod is rotatably connected to a limiting rod, the limiting rod and the rotating plate are slidably connected, a first spring is fixedly connected between the limiting rod and the rotating plate, one end of the limiting rod is in contact with the fan blade through a limiting groove, the fan blade is provided with a limiting groove, the cam is elliptical, and the pair of limiting rods are symmetrically distributed.

[0012] The beneficial effects of the present invention are:

[0013] (1) The present invention relates to an integrated energy storage mechanism for wind power and photovoltaic power generation. A wind structure for wind energy storage is connected to the main body of the windmill. The wind structure can convert wind power into electrical energy for storage. That is, when the wind drives the fan blades, the fan blades will rotate. The mechanical energy generated by the rotation of the fan blades can be converted into electrical energy for storage through an electrical device through a power conversion group. The standing platform is convenient for maintenance, and the guardrail can protect the safety of the staff.

[0014] (2) The present invention relates to an integrated energy storage mechanism for wind power and photovoltaic power, wherein a photovoltaic structure for photovoltaic energy storage is connected to the wind structure, a mounting structure for facilitating the maintenance and replacement of the photovoltaic structure is connected to the wind structure, and a limiting structure for limiting the photovoltaic structure is connected to the wind structure. The photovoltaic structure can convert solar energy into electrical energy for storage, and is convenient for maintenance and replacement. The mounting structure facilitates disassembly and assembly, and the limiting structure can limit the photovoltaic structure, that is, the photovoltaic panel can convert solar energy into electrical energy for storage. When the photovoltaic panel is damaged and needs to be replaced, the user steps on the standing platform, inserts a screwdriver into the rotating hole, rotates the screwdriver, and the screwdriver drives the cam to rotate, and the cam drives the connecting rod to rotate, thereby pulling the connecting rod and the limiting rod to move, and the limiting rod will be disengaged from the limiting groove, and the first spring will be compressed, so that the rotating plate can be rotated outward to take out the first fixed frame and the photovoltaic panel, and the handle is rotated to drive the rotating shaft to rotate. The pull rope will be reeled in, thereby pulling the push bar to move, and the push bar close to the rotating shaft end will be rolled onto the rotating shaft, so that the push bar away from the rotating shaft end moves toward the rotating shaft, thereby driving the fixed frame and the photovoltaic panel to move in the direction of the rotating shaft, and the tension spring will be stretched, so that the photovoltaic panels can be removed from the vicinity of the rotating plate in turn, thereby facilitating the repair and replacement of damaged photovoltaic panels. When the rotating shaft rotates, it will drive the ratchet to rotate. Under the push of the torsion spring, the pawl and the ratchet are tightly in contact, and the ratchet can only rotate in one direction, thereby reeling the pull rope, and the tension spring will not be able to pull the push bar to reset. When it needs to be reset, the control block is pushed in the direction away from the rotating shaft. The protrusion on the control block will move to the other end of the elastic sheet. The elastic sheet is in a "W" shape, thereby limiting the reset of the control block. One end of the control block is in an "L" shape, and the pawl is in an "L" shape. The control block will pull the pawl and ratchet out of contact, and the torsion spring is compressed, so that the handle can be slowly rotated in the opposite direction to release the pull rope wrapped around the rotating shaft and the tension spring will shrink.

[0015] (3) The present invention relates to an integrated energy storage mechanism for wind power and photovoltaic power generation. The photovoltaic structure is connected to a resistance structure for increasing stability. The photovoltaic structure is connected to a connection structure for electric energy transmission. The resistance structure can make disassembly and maintenance more convenient. The connection structure facilitates the transmission of electric energy. That is, a good photovoltaic panel and a fixed frame are placed inside the slide. The bottom end of the slide is wider, which is convenient for the placement of the fixed frame. Under the push of the second spring, the roller will pass through the slide and the fan blade to facilitate the smooth movement of the fixed frame. When replacing the photovoltaic panel, the connection block and the connection sleeve are pulled to separate them, which facilitates the replacement of the photovoltaic panel. After replacing the new photovoltaic panel and the fixed frame, the connection block and the connection sleeve are connected to ensure normal power transmission. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] The present invention will be further described below with reference to the accompanying drawings and examples.

[0017] Figure 1 A schematic diagram of the overall structure of a preferred embodiment of an integrated wind power and photovoltaic energy storage mechanism provided by the present invention;

[0018] Figure 2 for Figure 1 An enlarged schematic diagram of the structure of section A is shown;

[0019] Figure 3 Schematic diagram of the connection structure between the wind power structure and the photovoltaic structure of the present invention;

[0020] Figure 4 for Figure 3 An enlarged schematic diagram of the structure of part B is shown;

[0021] Figure 5 for Figure 3 The enlarged schematic diagram of the C-section structure is shown;

[0022] Figure 6 for Figure 3 An enlarged schematic diagram of the D portion structure is shown;

[0023] Figure 7 This is a schematic diagram of the connection structure between the connecting card block and the connecting card sleeve of the present invention;

[0024] Figure 8 Schematic diagram of the connection structure between the wind power structure and the limiting structure of the present invention;

[0025] Figure 9 It is a schematic diagram of the connection structure between the wind power structure and the mounting structure of the present invention;

[0026] Figure 10 for Figure 9 The enlarged schematic diagram of the E part structure is shown.

[0027] In the figure: 1. Windmill body; 2. Wind structure; 201. Fan blades; 202. Standing platform; 203. Power conversion group; 204. Guardrail; 3. Photovoltaic structure; 301. Photovoltaic panel; 302. Handle; 303. Fixed frame; 304. Tension spring; 305. Push bar; 306. Rotating shaft; 307. Slide groove; 308. Pull rope; 4. Limiting structure; 401. Control block; 402. Ratchet; 403. Pawl; 404. Elastic sheet; 405. Torsion spring; 5. Mounting structure; 501. Rotating plate; 502. Limiting rod; 503. Limiting groove; 504. First spring; 505. Connecting rod; 506. Cam; 507. Rotating hole; 6. Interference structure; 601. Second spring; 602. Roller; 7. Connecting structure; 701. Connecting block; 702. Connecting sleeve. DETAILED DESCRIPTION

[0028] In order to make the technical means, creative features, objectives and effects achieved by the present invention easier to understand, the present invention is further described below in conjunction with specific implementation methods.

[0029] like Figures 1-10 As shown, the present invention provides an integrated energy storage mechanism for wind power and photovoltaic power, comprising a windmill body 1, to which is connected a wind structure 2 for storing wind energy, to which is connected a photovoltaic structure 3 for storing photovoltaic energy, to which is connected a mounting structure 5 for facilitating maintenance and replacement of the photovoltaic structure 3, to which is connected a limiting structure 4 for limiting the position of the photovoltaic structure 3, to which is connected a resistance structure 6 for increasing stability, and to which is connected a connecting structure 7 for transmitting electric energy;

[0030] The photovoltaic structure 3 includes a push bar 305, and the wind structure 2 includes a power conversion group 203. The power conversion group 203 is installed at the top of the windmill body 1, and the power conversion group 203 is installed with a fan blade 201. A plurality of push bars 305 are slidably connected to the fan blade 201 through a slide groove 307. The plurality of push bars 305 are fixedly connected by a pull rope 308. A pair of tension springs 304 are fixedly connected between the push bar 305 close to one end of the power conversion group 203 and the fan blade 201. A fixed frame 303 is abutted between two adjacent push bars 305. The interior of the fixed frame 303 is fixedly connected to the photovoltaic panel 301. The bottom end of the fan blade 201 is rotatably connected to a rotating shaft 306. The rotating shaft 306 and one end of the pull rope 308 are entangled and connected. One end of the rotating shaft 306 is fixedly connected to a handle 302. The fan blade 201 is in a "cross" shape, and the power conversion group 203 is spherical.

[0031] Specifically, a standing platform 202 is fixedly connected to the windmill body 1, and a guardrail 204 is installed on the standing platform 202; when the wind drives the fan blades 201, the fan blades 201 will rotate, and the mechanical energy generated by the rotation of the fan blades 201 can be converted into electrical energy for storage through the power conversion group 203. The standing platform 202 is convenient for maintenance, and the guardrail 204 can protect the safety of the staff.

[0032] Specifically, the limiting structure 4 includes a ratchet 402, one end of the rotating shaft 306 is fixedly connected to the ratchet 402, the ratchet 402 and the fan blade 201 are rotatably connected, one end of the fan blade 201 is rotatably connected to a pawl 403, the pawl 403 and the ratchet 402 are meshed, a torsion spring 405 is in contact between the pawl 403 and the fan blade 201, one end of the fan blade 201 is slidably connected to a control block 401, and elastic sheets 404 are installed at both ends of the fan blade 201 close to the control block 401, the control block 401 and the elastic sheet 404 are in contact, the elastic sheet 404 is in a "W" shape, the end of the control block 401 and the elastic sheet 404 are in contact, one end of the control block 401 is in an "L" shape, and the pawl 403 is in an "L" shape; when the rotating shaft 306 rotates When the lever 402 is in motion, the ratchet 402 is driven to rotate. Under the push of the torsion spring 405, the pawl 403 and the ratchet 402 are in close contact. The ratchet 402 can only rotate in one direction, thereby retracting the pull rope 308, and the tension spring 304 will not be able to pull the push bar 305 to reset. When it needs to be reset, the control block 401 is pushed away from the rotating shaft 306. The protrusion on the control block 401 will move to the other end of the elastic sheet 404. The elastic sheet 404 is in a "W" shape, thereby restricting the reset of the control block 401. One end of the control block 401 is in an "L" shape, and the pawl 403 is in an "L" shape. The control block 401 will pull the pawl 403 and the ratchet 402 out of contact, and the torsion spring 405 is compressed, so that the handle 302 can be slowly rotated in the opposite direction to release the pull rope 308 wrapped around the rotating shaft 306, and the tension spring 304 will shrink.

[0033] Specifically, the interference structure 6 includes a second spring 601, and both ends of the fixed frame 303 are fixedly connected to the second spring 601. The other end of the second spring 601 is fixedly connected to the roller 602, and the roller 602 interferes with the fan blade 201 through the slide groove 307; the good photovoltaic panel 301 and the fixed frame 303 are placed inside the slide groove 307, and the bottom end of the slide groove 307 is wider, which facilitates the placement of the fixed frame 303. Under the push of the second spring 601, the roller 602 will interfere with the fan blade 201 through the slide groove 307, thereby facilitating the smooth movement of the fixed frame 303.

[0034] Specifically, the connection structure 7 includes a connection card block 701, the bottom end of the photovoltaic panel 301 is electrically connected to the connection card block 701, and the top end of the photovoltaic panel 301 is electrically connected to the connection card sleeve 702. The connection card block 701 on the photovoltaic panel 301 and the connection card sleeve 702 on another photovoltaic panel 301 are connected; when replacing the photovoltaic panel 301, the connection card block 701 and the connection card sleeve 702 are pulled out to separate them, thereby facilitating the replacement of the photovoltaic panel 301. After replacing the new photovoltaic panel 301 and the fixing frame 303, the connection card block 701 and the connection card sleeve 702 are connected again to ensure normal power transmission.

[0035] Specifically, the mounting structure 5 includes a rotating plate 501, one end of the fan blade 201 is rotatably connected to a pair of rotating plates 501, a cam 506 is rotatably connected to the rotating plate 501, and a rotating hole 507 is provided on the cam 506. Both ends of the cam 506 are rotatably connected to a connecting rod 505, one end of the connecting rod 505 is rotatably connected to a limiting rod 502, the limiting rod 502 and the rotating plate 501 are slidably connected, a first spring 504 is fixedly connected between the limiting rod 502 and the rotating plate 501, one end of the limiting rod 502 contacts the fan blade 201 through a limiting groove 503, and the fan blade 201 is provided with a The limiting groove 503, the cam 506 is elliptical, and a pair of limiting rods 502 are symmetrically distributed; the photovoltaic panel 301 can convert solar energy into electrical energy for storage. When the photovoltaic panel 301 is damaged and needs to be replaced, climb onto the standing platform 202, insert a screwdriver into the rotating hole 507, and rotate the screwdriver. The screwdriver will drive the cam 506 to rotate, and the cam 506 will drive the connecting rod 505 to rotate, thereby pulling the connecting rod 505 and the limiting rod 502 to move, and the limiting rod 502 will be disengaged from the limiting groove 503, and the first spring 504 will be compressed, so that the rotating plate 501 can be rotated outward to take out the first fixed frame 303 and the photovoltaic panel 301.

[0036] When the present invention is in use, when the wind drives the fan blades 201, the fan blades 201 will rotate, and the mechanical energy of the rotation of the fan blades 201 can be converted into electrical energy for storage through the electrical device through the power conversion group 203. The standing platform 202 is convenient for maintenance, and the guardrail 204 can protect the safety of the staff. The photovoltaic panel 301 can convert solar energy into electrical energy for storage. When the photovoltaic panel 301 is damaged and needs to be replaced, step onto the standing platform 202, insert a screwdriver into the rotating hole 507, and rotate the screwdriver. The screwdriver will drive the cam 506 to rotate, and the cam 506 will drive the connecting rod 505 to rotate, thereby pulling the connecting rod 505 and the limiting rod 502 to move, and the limiting rod 502 will be separated from the limiting groove 503, and the first spring 504 will be compressed, and it can be moved to The first fixing frame 303 and the photovoltaic panel 301 are taken out by rotating the rotating plate 501, and the handle 302 is turned. The handle 302 will drive the rotating shaft 306 to rotate, and the rotating shaft 306 will reel in the pull rope 308, thereby pulling the push bar 305 to move. The push bar 305 close to the end of the rotating shaft 306 will be rolled onto the rotating shaft 306, so that the push bar 305 away from the end of the rotating shaft 306 moves toward the rotating shaft 306, thereby driving the fixing frame 303 and the photovoltaic panel 301 to move toward the rotating shaft 306, and the tension spring 304 will be stretched, so that the photovoltaic panels 301 can be removed from the vicinity of the rotating plate 501 one by one, thereby facilitating the repair and replacement of the damaged photovoltaic panel 301. When the rotating shaft 306 rotates, it will drive the ratchet 402 to rotate. When the torsion spring 405 The torsion spring 405 is compressed, so that the handle 302 can be slowly rotated in the opposite direction to release the pull rope 308 wrapped around the rotating shaft 306, and the tension spring 304 will not be able to pull the push bar 305 to reset. When it is necessary to reset, the control block 401 is pushed away from the rotating shaft 306, and the protrusion on the control block 401 will move to the other end of the elastic piece 404. The elastic piece 404 is in a "W" shape, thereby restricting the control block 401 from resetting. One end of the control block 401 is in an "L" shape, and the pawl 403 is in an "L" shape. The control block 401 will pull the pawl 403 and the ratchet 402 out of contact, and the torsion spring 405 is compressed, so that the handle 302 can be slowly rotated in the opposite direction to release the pull rope 308 wrapped around the rotating shaft 306, and the tension spring 304 will contract. The photovoltaic panel 301 and the fixing frame 303 are placed into the inside of the slide groove 307. The bottom end of the slide groove 307 is wider, which is convenient for placing the fixing frame 303. Under the push of the second spring 601, the roller 602 will pass through the slide groove 307 and contact the fan blade 201, thereby facilitating the smooth movement of the fixing frame 303. When replacing the photovoltaic panel 301, pull the connecting block 701 and the connecting sleeve 702 to separate them, thereby facilitating the replacement of the photovoltaic panel 301. After replacing the new photovoltaic panel 301 and the fixing frame 303, the connecting block 701 and the connecting sleeve 702 are connected again to ensure normal power transmission. After placing the first photovoltaic panel 301 and the fixing frame 303, rotate the handle 302 in the opposite direction to make the photovoltaic panel 301 enter the inside of the fan blade 201.Once the wrapped push bar 305 is exposed, the control block 401 is pushed toward the shaft 306, separating the control block 401 and the pawl 403. Under the action of the torsion spring 405, the pawl 403 limits the ratchet 402, allowing the photovoltaic panel 301 to be placed again. The photovoltaic panel 301 near the shaft 306 contacts the fan blades 201. Once the photovoltaic panel 301 is installed, the rotating plate 501 is closed to complete the replacement of the photovoltaic panel 301.

[0037] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above and that the invention can be embodied in other specific forms without departing from the spirit or essential characteristics of the invention. Therefore, the embodiments should be considered in all respects as illustrative and non-restrictive, and the scope of the invention is defined by the appended claims, not the foregoing description, and all variations within the meaning and range of equivalents of the claims are intended to be included therein. Any reference sign in a claim should not be construed as limiting the claim to which it relates.

[0038] In addition, it should be understood that although this specification is described in terms of implementation methods, not every implementation method contains only one independent technical solution. This narrative method of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment can also be appropriately combined to form other implementation methods that can be understood by those skilled in the art.

Claims

1. An integrated energy storage mechanism for wind power and photovoltaic power generation, characterized in that: The invention comprises a windmill body (1), wherein the windmill body (1) is connected to a wind structure (2) for storing wind energy, the wind structure (2) is connected to a photovoltaic structure (3) for storing photovoltaic energy, the wind structure (2) is connected to a mounting structure (5) for facilitating maintenance and replacement of the photovoltaic structure (3), the wind structure (2) is connected to a limiting structure (4) for limiting the photovoltaic structure (3), the photovoltaic structure (3) is connected to a resistance structure (6) for increasing stability, and the photovoltaic structure (3) is connected to a connection structure (7) for transmitting electric energy; The photovoltaic structure (3) includes a push bar (305), the wind power structure (2) includes a power conversion group (203), the top of the windmill body (1) is equipped with a power conversion group (203), the power conversion group (203) is equipped with a fan blade (201), and the fan blade (201) is slidably connected to a plurality of push bars (305) through a slide groove (307), and the plurality of push bars (305) are fixedly connected to each other through a pull rope (308), and are close to the power conversion group (203). ) A pair of tension springs (304) are fixedly connected between the push bar (305) at one end and the fan blade (201); a fixed frame (303) is abutted between two adjacent push bars (305); a photovoltaic panel (301) is fixedly connected inside the fixed frame (303); a rotating shaft (306) is rotatably connected to the bottom end of the fan blade (201); the rotating shaft (306) and one end of the pull rope (308) are entangled and connected; and one end of the rotating shaft (306) is fixedly connected to a handle (302); The limiting structure (4) includes a ratchet (402), one end of the rotating shaft (306) is fixedly connected to the ratchet (402), the ratchet (402) and the fan blade (201) are rotatably connected, one end of the fan blade (201) is rotatably connected to a pawl (403), the pawl (403) and the ratchet (402) are engaged, a torsion spring (405) is in contact between the pawl (403) and the fan blade (201), one end of the fan blade (201) is slidably connected to a control block (401), elastic sheets (404) are installed at both ends of the fan blade (201) close to the control block (401), and the control block (401) and the elastic sheet (404) are in contact; The interference structure (6) includes a second spring (601), both ends of the fixed frame (303) are fixedly connected to the second spring (601), the other end of the second spring (601) is fixedly connected to a roller (602), and the roller (602) is in interference with the fan blade (201) through the sliding groove (307); The mounting structure (5) comprises a rotating plate (501), one end of the fan blade (201) is rotatably connected to a pair of rotating plates (501), a cam (506) is rotatably connected to the rotating plate (501), a rotating hole (507) is provided on the cam (506), both ends of the cam (506) are rotatably connected to a connecting rod (505), one end of the connecting rod (505) is rotatably connected to a limiting rod (502), the limiting rod (502) and the rotating plate (501) are slidably connected, a first spring (504) is fixedly connected between the limiting rod (502) and the rotating plate (501), one end of the limiting rod (502) contacts the fan blade (201) through a limiting groove (503), and the fan blade (201) is provided with a limiting groove (503).

2. The integrated energy storage mechanism for wind power and photovoltaic power generation according to claim 1, characterized in that: The fan blades (201) are in a cross shape, and the power conversion group (203) is in a spherical shape.

3. The integrated energy storage mechanism for wind power and photovoltaic power generation according to claim 1, characterized in that: A standing platform (202) is fixedly connected to the windmill body (1), and a guardrail (204) is installed on the standing platform (202).

4. The integrated energy storage mechanism for wind power and photovoltaic power generation according to claim 1, characterized in that: The elastic piece (404) is in a "W" shape, and the end of the control block (401) that contacts the elastic piece (404) is in a convex shape.

5. The integrated energy storage mechanism for wind power and photovoltaic power generation according to claim 1, characterized in that: One end of the control block (401) is in an "L" shape, and the pawl (403) is in an "L" shape.

6. The integrated energy storage mechanism for wind power and photovoltaic power generation according to claim 1, characterized in that: The connection structure (7) comprises a connection block (701), the bottom end of the photovoltaic panel (301) is electrically connected to the connection block (701), the top end of the photovoltaic panel (301) is electrically connected to a connection sleeve (702), and the connection block (701) on the photovoltaic panel (301) and the connection sleeve (702) on another photovoltaic panel (301) are sleeved.

7. The integrated energy storage mechanism for wind power and photovoltaic power generation according to claim 1, characterized in that: The cam (506) is elliptical, and the pair of limiting rods (502) are symmetrically distributed.

Citation Information

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