A source, network, load and storage integrated power generation and energy storage device

By designing a device for collecting and filtering rainwater and an atomizing cooling mechanism, the corrosion problem of photovoltaic power generation devices in rainy weather and the efficiency problem at high temperatures were solved, realizing the effective utilization of rainwater and the efficient collection of electrical energy.

CN120785276BActive Publication Date: 2026-03-10STATE GRID ZHEJIANG ELECTRIC POWER CO LTD +2
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-07-03
Publication Date
2026-03-10

AI Technical Summary

Technical Problem

Existing photovoltaic power generation devices cannot recycle rainwater on rainy days, leading to corrosion of photovoltaic panels. Furthermore, they cannot effectively cool down in high-temperature environments, affecting the efficiency of power collection.

Method used

A device comprising a collection tank, a collection box, a servo motor, a bidirectional motor, a bevel gear, and an electric motor was designed to collect and filter rainwater on rainy days. The device improves rainwater collection efficiency through atomizing nozzles for cooling and a vibration mechanism, while a limiting mechanism secures the solar panel.

Benefits of technology

It enables the effective collection and utilization of rainwater, prevents corrosion of photovoltaic panels, and effectively cools down at high temperatures, thereby improving the efficiency of power collection.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application belongs to the technical field of power generation and energy storage, and discloses a source-network-load-storage integrated power generation and energy storage device, which comprises a supporting frame, the top end of the supporting frame is fixed with a mounting frame, one end of a collecting mechanism is fixed with an extension plate, and the outside of the mounting frame is fixed with a limiting mechanism. The device can collect rainwater into the inside of the collecting box through the guidance of the collecting groove, filter the collected rainwater through the filter plate, make the impurities stay on the top end of the filter plate, drive the screw rod to rotate by starting the second servo motor, make the screw rod drive the cleaning rod to move, clean the impurities staying on the top end of the filter plate through the cleaning rod, and transport the water source in the collecting box to the inside of the water collecting box through the water outlet by starting the conveying pump, so as to achieve the purpose of conveniently collecting rainwater by the device.
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Description

Technical Field

[0001] This invention belongs to the field of power generation and energy storage technology, specifically an integrated power generation and energy storage device that combines source, grid, load, and storage. Background Technology

[0002] The generation-grid-load-storage (GPS) model is an operational mode that integrates power supply, grid, load, and energy storage into a comprehensive solution. It can precisely control the interruptible power load and energy storage resources in society, improve the safety of grid operation, and solve problems such as grid fluctuations during the consumption of clean energy. Photovoltaic power generation is a technology that directly converts light energy into electrical energy using the photovoltaic effect at the semiconductor interface. It mainly consists of three parts: solar panels, controllers, and inverters. The main components are composed of electronic components. Solar cells are connected in series and then encapsulated for protection to form large-area solar cell modules. Combined with power controllers and other components, a photovoltaic power generation device is formed.

[0003] Publication No. CN118539857A discloses an integrated photovoltaic power generation and energy storage device system, which relates to the field of integrated photovoltaic technology. The system includes a support base, on which a solar photovoltaic power generation unit is fixedly installed via a support frame. Through timing settings of a timing module, the system can monitor and determine whether the driving components used for wiping and cleaning are faulty. When a fault is detected, information can be wirelessly sent to the monitoring center via a 5G module, allowing staff at the monitoring center to be promptly informed of the fault. This solves the problem that existing automated mechanical structures used for wiping and cleaning solar photovoltaic panels lack automatic fault monitoring and determination functions, and therefore cannot achieve timely fault monitoring, determination, and notification when a fault occurs, thus exhibiting deficiencies.

[0004] However, when the device is in use, if the external photovoltaic device is in rainy weather, it cannot recycle rainwater, and the surface of the photovoltaic panel will corrode due to long-term rain erosion. Therefore, it is necessary to protect the photovoltaic panel and recycle the collected rainwater. Summary of the Invention

[0005] To address the problems mentioned in the background section, this invention provides an integrated power generation and energy storage device.

[0006] To achieve the above objectives, the present invention provides the following technical solution: an integrated power generation and energy storage device comprising a support frame, an mounting frame fixed to the top of the support frame, a first servo motor fixed to the outside of the mounting frame, a solar panel fixed to the rotating end of the first servo motor, a collection mechanism mounted on the outside of the mounting frame, a battery fixed to the bottom inside the mounting frame, an extension plate fixed to one end of the collection mechanism, a vibration mechanism fixed to the bottom end of the extension plate, and a limit mechanism fixed to the outside of the mounting frame.

[0007] The collection mechanism includes a collection tank, a collection box, and a second servo motor. The collection tank is fixed to the top of the mounting frame, the collection box is fixed to the outside of the mounting frame, the second servo motor is fixed to the outside of the collection box, and the water collection box is fixed to the bottom of the mounting frame.

[0008] The vibration mechanism includes a bidirectional motor, a first connecting rod, and a first bevel gear. The bidirectional motor is fixed to the bottom end of the extension plate, and the first connecting rod is fixed to the rotating end of the bidirectional motor. The first bevel gear is fixed to the outside of the first connecting rod, and a cooling fan is rotatably connected inside the extension plate.

[0009] Preferably, a screw is fixed to the rotating end of the second servo motor, a cleaning rod is connected to the external thread of the screw, a positioning rod is fixed inside the collection box, a filter plate is fixed inside the collection box, a delivery pump is connected to one end of the collection box, and a water outlet is connected to the output end of the delivery pump.

[0010] Preferably, the collection tanks are provided in several groups, and the collection tanks are arranged at equal intervals. The positioning rod and the cleaning rod are slidably connected. The delivery pump is fixed inside the mounting frame. The water outlets are provided in four groups, and the water outlets are symmetrically distributed about the central axis of the mounting frame.

[0011] Preferably, the bottom end of the cleaning rod is provided with several sets of cleaning bristles, which are arranged at equal intervals; the top end of the filter plate is provided with filter holes, which are distributed in an array; and the outside of the water collection box is connected to an extension plate.

[0012] Preferably, a second bevel gear is fixed to the bottom of the cooling fan, an atomizing nozzle is installed at the top of the extension plate, a second connecting rod is fixed to the top of the cooling fan, an eccentric wheel is fixed to the outside of the second connecting rod, a mounting cylinder is fixed inside the mounting bracket, a third connecting rod is movably connected inside the mounting cylinder, a trigger block is fixed to the outside of the third connecting rod, an extension block is fixed to the outside of the trigger block, a return spring is fixed to the outside of the extension block, and a support block is fixed to the top of the mounting cylinder.

[0013] Preferably, there are two sets of the first connecting rods, which are symmetrically distributed about the central axis of the bidirectional motor. The first bevel gear and the second bevel gear are meshed together. There are several sets of atomizing nozzles, which are arranged in a ring array about the central axis of the cooling fan.

[0014] Preferably, there are two sets of mounting cylinders, which are symmetrically distributed about the central axis of the second connecting rod. The third connecting rod is slidably connected to the mounting cylinders. The trigger block has an arc surface on its exterior. There are two sets of extension blocks, which are symmetrically distributed about the central axis of the trigger block.

[0015] Preferably, the extension block and the mounting cylinder are slidably connected, the return spring is used to compress the extension block and keep it moving outward, and the return spring is provided with two sets of springs symmetrically distributed about the central axis of the extension block.

[0016] Preferably, the limiting mechanism includes an electric motor, a fourth link, and a transmission gear. The electric motor is fixed to the top of the mounting frame, the fourth link is fixed to the bottom rotating end of the electric motor, the transmission gear is fixed to the bottom end of the fourth link, a rack is slidably connected inside the mounting frame, a limiting rod is fixed to the outside of the rack, and a limiting groove is formed on the outside of the solar panel.

[0017] Preferably, the transmission gear has several sets of teeth fixed on its exterior, the rack has several sets of teeth on its exterior, the transmission gear and the rack are meshed together, and two sets of limiting grooves are provided, which are symmetrically distributed about the central axis of the solar panel.

[0018] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0019] This invention, through the combination of a collection trough, a collection box, and a second servo motor, enables the device to collect rainwater into the collection box via the guide of the collection trough. The collected rainwater is then filtered by a filter plate, causing impurities to remain at the top of the filter plate. The second servo motor drives a screw to rotate, which in turn moves a cleaning rod to remove the impurities remaining at the top of the filter plate. A delivery pump is activated to transport water from inside the collection box to the collection container through an outlet, thereby achieving the purpose of convenient rainwater collection.

[0020] This invention, through the coordinated arrangement of a bidirectional motor, a first connecting rod, and a first bevel gear, enables the device to atomize water from inside the extension plate and spray it upwards by activating the atomizing nozzle. Simultaneously, the bidirectional motor drives the first connecting rod and the first bevel gear to rotate, which in turn drives the second bevel gear, the cooling fan, the second connecting rod, and the eccentric wheel to rotate. As the cleaning rod rotates, it blows the atomized water upwards, thereby cooling the battery when the device is in a high-temperature state. This prevents the battery temperature from becoming too high and affecting energy collection, thus achieving the purpose of facilitating battery cooling at high temperatures.

[0021] This invention, through the coordination of an electric motor, a fourth link, and a transmission gear, enables the device to rotate after the first servo motor drives the solar panel to flip. The electric motor then drives the fourth link and the transmission gear to rotate, which in turn drives the rack to move. This causes the limiting rod to insert into the limiting groove, thereby limiting the entire solar panel and facilitating the device's ability to position the solar panel. Attached Figure Description

[0022] Figure 1 This is a schematic diagram of the overall structure of the present invention;

[0023] Figure 2 This is a schematic diagram of the overall right-side structure of the present invention;

[0024] Figure 3 This is a schematic diagram of the overall right-side unfolded structure of the present invention;

[0025] Figure 4 This is a schematic diagram of the overall internal structure of the present invention;

[0026] Figure 5 For the present invention Figure 4 Enlarged cross-sectional view of a portion of point A in the middle section;

[0027] Figure 6 This is a schematic diagram of the heat dissipation section of the vibration mechanism of the present invention;

[0028] Figure 7 For the present invention Figure 4 Enlarged cross-sectional view of section B in the middle section;

[0029] Figure 8 For the present invention Figure 4 Enlarged cross-sectional view of section C in the middle;

[0030] Figure 9 This is a schematic diagram of the collection mechanism of the present invention.

[0031] In the diagram: 1. Support frame; 2. Mounting frame; 3. First servo motor; 4. Solar panel; 5. Collection mechanism; 501. Collection tank; 502. Collection box; 503. Second servo motor; 504. Screw; 505. Cleaning rod; 506. Positioning rod; 507. Filter plate; 508. Transfer pump; 509. Water outlet; 510. Water collection box; 6. Battery; 7. Extension plate; 8. Vibration mechanism; 801. Bidirectional motor; 802. First connecting rod; 80 3. First bevel gear; 804. Second bevel gear; 805. Cooling fan; 806. Atomizing nozzle; 807. Second connecting rod; 808. Eccentric wheel; 809. Mounting cylinder; 810. Third connecting rod; 811. Trigger block; 812. Extension block; 813. Return spring; 814. Support block; 9. Limiting mechanism; 901. Electric motor; 902. Fourth connecting rod; 903. Transmission gear; 904. Rack; 905. Limiting rod; 906. Limiting groove. Detailed Implementation

[0032] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0033] like Figures 1 to 9 As shown, the present invention provides an integrated power generation and energy storage device, including a support frame 1, an mounting frame 2 fixed to the top of the support frame 1, a first servo motor 3 fixed to the outside of the mounting frame 2, a solar panel 4 fixed to the rotating end of the first servo motor 3, a collection mechanism 5 installed on the outside of the mounting frame 2, a battery 6 fixed to the bottom inside the mounting frame 2, an extension plate 7 fixed to one end of the collection mechanism 5, a vibration mechanism 8 fixed to the bottom end of the extension plate 7, and a limit mechanism 9 fixed to the outside of the mounting frame 2.

[0034] The above scheme allows solar energy to be collected through solar panel 4, and the collected solar energy is converted into electrical energy through photovoltaic converter and collected into the battery 6.

[0035] like Figures 1 to 9As shown, the collection mechanism 5 includes a collection tank 501, a collection box 502, and a second servo motor 503. The collection tank 501 is fixed to the top of the mounting frame 2. The collection box 502 is fixed to the outside of the mounting frame 2. The second servo motor 503 is fixed to the outside of the collection box 502. A water collection box 510 is fixed to the bottom of the mounting frame 2. A screw 504 is fixed to the rotating end of the second servo motor 503. A cleaning rod 505 is threaded onto the outside of the screw 504. A positioning rod 506 is fixed inside the collection box 502. A filter plate 507 is fixed inside the collection box 502. One end of the collection box 502... A delivery pump 508 is connected, and the output end of the delivery pump 508 is connected to an outlet 509. Several sets of collection tanks 501 are provided, and the collection tanks 501 are arranged at equal intervals. The positioning rod 506 and the cleaning rod 505 are slidably connected. The delivery pump 508 is fixed inside the mounting frame 2. Four sets of outlets 509 are provided, and the outlets 509 are symmetrically distributed about the central axis of the mounting frame 2. Several sets of cleaning bristles are provided at the bottom of the cleaning rod 505, and the cleaning bristles are arranged at equal intervals. The top of the filter plate 507 is provided with filter holes, and the filter holes are distributed in an array. An extension plate 7 is connected to the outside of the water collection box 510.

[0036] The above solution works as follows: During rainy weather, the first servo motor 3 is activated to flip the solar panel 4, causing rainwater to fall onto the top of the mounting bracket 2. The rainwater is then collected into the collection box 502 via the collection trough 501 and filtered by the filter plate 507, causing impurities to remain at the top of the filter plate 507. The second servo motor 503 is then activated to rotate the screw 504, which in turn moves the cleaning rod 505, removing impurities from the filter plate. Impurities at the top of the filter plate 507 are cleaned, and the water inside the collection box 502 is transported by starting the delivery pump 508 and delivered to the water collection box 510 through the outlet 509. When the delivery pump 508 is started, the filtered rainwater is delivered to the water collection box 510 through four symmetrically distributed outlets 509. The inner wall of the water collection box 510 is coated with a nano waterproof coating to reduce water evaporation loss. At the same time, it is connected to the water channel of the vibration mechanism 8 through the extension plate 7 to provide water source reserve for subsequent atomization cooling.

[0037] like Figures 1 to 9As shown, the vibration mechanism 8 includes a bidirectional motor 801, a first connecting rod 802, and a first bevel gear 803. The bidirectional motor 801 is fixed to the bottom end of the extension plate 7. The rotating end of the bidirectional motor 801 is fixed with the first connecting rod 802. The first bevel gear 803 is fixed to the outside of the first connecting rod 802. A cooling fan 805 is rotatably connected inside the extension plate 7. A second bevel gear 804 is fixed to the bottom end of the cooling fan 805. An atomizing nozzle 806 is installed at the top of the extension plate 7. Two sets of the first connecting rod 802 are provided. The first connecting rod 802 is symmetrically distributed about the central axis of the bidirectional motor 801. The first bevel gear 803 and the second bevel gear 804 are meshed and connected. Several sets of atomizing nozzles 806 are provided. The atomizing nozzles 806 are arranged in a ring array about the central axis of the cooling fan 805.

[0038] like Figures 1 to 9 As shown, a second connecting rod 807 is fixed to the top of the cooling fan 805, and an eccentric wheel 808 is fixed to the outside of the second connecting rod 807. A mounting cylinder 809 is fixed inside the mounting bracket 2, and a third connecting rod 810 is movably connected inside the mounting cylinder 809. A trigger block 811 is fixed to the outside of the third connecting rod 810, and an extension block 812 is fixed to the outside of the trigger block 811. Two sets of mounting cylinders 809 are provided, and the mounting cylinders 809 are symmetrically distributed about the central axis of the second connecting rod 807. The third connecting rod 810 and the mounting cylinder 809 slide... The trigger block 811 has an arc surface on its outside. There are two sets of extension blocks 812. The extension blocks 812 are symmetrically distributed about the central axis of the trigger block 811. A return spring 813 is fixed to the outside of the extension block 812. A support block 814 is fixed to the top of the mounting cylinder 809. The extension block 812 and the mounting cylinder 809 are slidably connected. The return spring 813 is used to squeeze the extension block 812 and keep it moving outward. There are two sets of return springs 813 symmetrically distributed about the central axis of the extension block 812.

[0039] The above solution involves atomizing the water inside the extension plate 7 by activating the atomizing nozzle 806 and spraying it upwards. Simultaneously, the bidirectional motor 801 is activated, driving the first connecting rod 802 and the first bevel gear 803 to rotate. This, in turn, drives the first bevel gear 803 to rotate the second bevel gear 804, the cooling fan 805, the second connecting rod 807, and the eccentric wheel 808. As the cleaning rod 505 rotates, it blows the atomized water upwards, thereby cooling the battery 6 when the device is at a high temperature, preventing the battery 6 from overheating and causing energy loss during energy collection. Simultaneously, when the eccentric wheel 808 rotates, it presses against the trigger block 811. After the eccentric wheel 808 disengages from the trigger block 811, the reset spring 813 resets the extension block 812 and the third connecting rod 810, causing the trigger block 811 to reset. It is then fixedly connected to the mounting frame 2 via the mounting cylinder 809, which in turn causes the mounting cylinder 809 to vibrate, thereby causing the mounting frame 2 to vibrate. In rainy weather, this can cause vibration at the top of the mounting frame 2, thereby improving the efficiency of rainwater collection through the mounting frame 2 and the collection trough 501.

[0040] like Figures 1 to 9 As shown, the limiting mechanism 9 includes an electric motor 901, a fourth connecting rod 902, and a transmission gear 903. The electric motor 901 is fixed to the top of the mounting bracket 2. The fourth connecting rod 902 is fixed to the bottom rotating end of the electric motor 901. The transmission gear 903 is fixed to the bottom end of the fourth connecting rod 902. A rack 904 is slidably connected inside the mounting bracket 2. A limiting rod 905 is fixed to the outside of the rack 904. A limiting groove 906 is opened on the outside of the solar panel 4. Several sets of teeth are fixed to the outside of the transmission gear 903. Several sets of teeth are provided on the outside of the rack 904. The transmission gear 903 and the rack 904 are meshed and connected. Two sets of limiting grooves 906 are opened. The limiting grooves 906 are symmetrically distributed about the central axis of the solar panel 4.

[0041] Using the above scheme: After the first servo motor 3 drives the solar panel 4 to flip, the electric motor 901 is started. The electric motor 901 drives the fourth connecting rod 902 and the transmission gear 903 to rotate. Then, when the transmission gear 903 rotates, it drives the rack 904 to move, so that the limiting rod 905 is inserted into the limiting groove 906. The limiting rod 905 limits the entire solar panel 4. When the rack 904 pushes the limiting rod 905 into the limiting groove 906, the anti-slip texture on the surface of the rod forms an interference fit with the groove wall, generating a frictional torque to ensure that the solar panel 4 remains fixed.

[0042] The working principle and usage process of this invention are as follows: Solar panel 4 collects solar energy, which is then converted into electrical energy by a photovoltaic converter and collected into the battery 6. During rainy weather, the first servo motor 3 is activated to flip solar panel 4, causing rainwater to fall onto the top of mounting bracket 2. The rainwater is then guided by collection trough 501 and collected into collection box 502. The collected rainwater is filtered by filter plate 507, causing impurities to remain at the top of filter plate 507. Finally, the second servo motor 503 is activated to rotate screw 504. This causes the screw 504 to move the cleaning rod 505, which cleans the impurities remaining on the top of the filter plate 507. The pump 508 then pumps water from the collection box 502 through the outlet 509 to the water collection box 510. The atomizing nozzle 806 atomizes the water inside the extension plate 7 and sprays it upwards. Simultaneously, the bidirectional motor 801 starts, rotating the first connecting rod 802 and the first bevel gear 803, which in turn drives the second bevel gear 804, the cooling fan 805, and the... The rotation of the connecting rod 807 and the eccentric wheel 808 causes the cleaning rod 505 to rotate and blow the atomized water upwards, thereby cooling the battery 6 when the device is in a high-temperature state and preventing the battery 6 from overheating and affecting energy collection. Simultaneously, the rotation of the eccentric wheel 808 presses against the trigger block 811. After the eccentric wheel 808 disengages from the trigger block 811, the return spring 813 resets the extension block 812 and the third connecting rod 810, causing the trigger block 811 to reset and be fixedly connected to the mounting bracket 2 via the mounting cylinder 809. 9 generates vibration, which in turn causes the mounting frame 2 to vibrate. This allows the top of the mounting frame 2 to vibrate during rainy weather, thereby improving the efficiency of rainwater collection through the mounting frame 2 and the collection trough 501. After the first servo motor 3 drives the solar panel 4 to rotate, the electric motor 901 is started. The electric motor 901 drives the fourth connecting rod 902 and the transmission gear 903 to rotate. The rotation of the transmission gear 903 drives the rack 904 to move, thereby causing the limiting rod 905 to insert into the limiting groove 906 and limiting the entire solar panel 4 through the limiting rod 905.

[0043] 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.

[0044] 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 source, network, load and energy storage integrated power generation and energy storage device, comprising a support frame (1), characterized in that: The top of supporting frame (1) is fixed with mounting frame (2), the outside of mounting frame (2) is fixed with first servo motor (3), the rotating end of first servo motor (3) is fixed with solar panel (4), the outside of mounting frame (2) is installed with collecting mechanism (5), the bottom of inside of mounting frame (2) is fixed with battery (6), one end of collecting mechanism (5) is fixed with extension plate (7), the bottom of extension plate (7) is fixed with vibration mechanism (8), the outside of mounting frame (2) is fixed with limiting mechanism (9), Collecting mechanism (5) includes collecting groove (501), collecting box (502) and second servo motor (503), the top of mounting frame (2) is fixed with collecting groove (501), the outside of mounting frame (2) is fixed with collecting box (502), the outside of collecting box (502) is fixed with second servo motor (503), the bottom of mounting frame (2) is fixed with water collecting box (510), Vibration mechanism (8) includes bidirectional motor (801), first connecting rod (802) and first bevel gear (803), the bottom of extension plate (7) is fixed with bidirectional motor (801), the rotating end of bidirectional motor (801) is fixed with first connecting rod (802), the outside of first connecting rod (802) is fixed with first bevel gear (803), the inside of extension plate (7) is rotatably connected with cooling fan (805), The rotating end of second servo motor (503) is fixed with screw rod (504), the outside of screw rod (504) is threadedly connected with cleaning rod (505), the inside of collecting box (502) is fixed with positioning rod (506), the inside of collecting box (502) is fixed with filter plate (507), one end of collecting box (502) is communicated with conveying pump (508), the output end of conveying pump (508) is communicated with water outlet (509), The bottom of cooling fan (805) is fixed with second bevel gear (804), the top of extension plate (7) is installed with atomizing nozzle (806), the top of cooling fan (805) is fixed with second connecting rod (807), the outside of second connecting rod (807) is fixed with eccentric wheel (808), the inside of mounting frame (2) is fixed with mounting cylinder (809), the inside of mounting cylinder (809) is movably connected with third connecting rod (810), the outside of third connecting rod (810) is fixed with trigger block (811), the outside of trigger block (811) is fixed with extension block (812), the outside of extension block (812) is fixed with return spring (813), the top of mounting cylinder (809) is fixed with supporting block (814).

2. The source, web, and energy storage integrated power generation and energy storage device of claim 1, wherein: The collecting groove (501) is provided with several groups, the collecting groove (501) is equidistantly arranged, the positioning rod (506) and the cleaning rod (505) are slidingly connected, the delivery pump (508) is fixed in the inside of the mounting frame (2), the water outlet (509) is provided with four groups, and the water outlet (509) is symmetrically distributed about the central axis of the mounting frame (2).

3. The source, web, and energy storage integrated power generation and energy storage device of claim 2, wherein: The bottom end of the cleaning rod (505) is provided with several groups of cleaning hairs, the cleaning hairs are equidistantly arranged, the top end of the filter plate (507) is provided with filter holes, the filter holes are arrayed, and the outside of the water collecting box (510) is communicated with the extension plate (7).

4. The source, web, and energy storage integrated power generation and energy storage device of claim 3, wherein: The first connecting rod (802) is provided with two groups, the first connecting rod (802) is symmetrically distributed about the central axis of the bidirectional motor (801), the first bevel gear (803) and the second bevel gear (804) are engagedly connected, the atomizing nozzle (806) is provided with several groups, and the atomizing nozzle (806) is annularly arrayed about the central axis of the cooling fan (805).

5. The source, web, and energy storage integrated power generation and energy storage device of claim 1, wherein: The mounting cylinder (809) is provided with two groups, the mounting cylinder (809) is symmetrically distributed about the central axis of the second connecting rod (807), the third connecting rod (810) and the mounting cylinder (809) are slidingly connected, and the outer portion of the trigger block (811) is provided with a curved surface.

6. The source, web, and energy storage integrated power generation and energy storage device of claim 5, wherein: The extension block (812) and the mounting cylinder (809) are slidingly connected, the reset spring (813) is used for extruding the extension block (812) and making it keep a tendency of moving outward, and the reset spring (813) is provided with two groups and is symmetrically distributed about the central axis of the extension block (812).

7. The source, web, and energy storage integrated power generation and energy storage device of claim 1, wherein: The limiting mechanism (9) comprises an electric motor (901), a fourth connecting rod (902) and a transmission gear (903), the electric motor (901) is fixed at the top end of the mounting frame (2), the bottom rotating end of the electric motor (901) is fixed with the fourth connecting rod (902), the bottom end of the fourth connecting rod (902) is fixed with the transmission gear (903), the inside of the mounting frame (2) is slidingly connected with a rack (904), the outside of the rack (904) is fixed with a limiting rod (905), and the outside of the solar panel (4) is provided with a limiting groove (906).

8. The source, web, and energy storage integrated power generation and energy storage device of claim 7, wherein: The outside of the transmission gear (903) is fixed with several groups of teeth, the outside of the rack (904) is provided with several groups of teeth, the transmission gear (903) and the rack (904) are engagedly connected, the limiting groove (906) is provided with two groups, and the limiting groove (906) is symmetrically distributed about the central axis of the solar panel (4).

Citation Information

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