Integrated wind energy, light energy and electricity co-production device

By integrating a foldable, liftable storage structure and energy storage control design for wind and solar cogeneration devices, the inconvenience and damage problems of solar and wind energy conversion devices during the transfer process are solved, achieving flexible and efficient energy conversion and storage.

CN224264922UActive Publication Date: 2026-05-19JIANGSU CHANGTIAN TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
JIANGSU CHANGTIAN TECH CO LTD
Filing Date
2025-06-04
Publication Date
2026-05-19

AI Technical Summary

Technical Problem

Existing solar and wind energy conversion devices are inconvenient to relocate and are easily damaged by bumps and knocks, which affects their application prospects.

Method used

The design combines a foldable, liftable solar energy conversion structure, a liftable wind energy conversion structure, and a container body. Through an energy storage control structure, it achieves flexible conversion and storage of solar and wind energy, ensuring that the device is not damaged during relocation.

Benefits of technology

This technology enables convenient and safe relocation of solar and wind energy conversion devices, avoids damage from impacts, and enhances their application prospects.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of solar energy and wind energy storage and utilization, in particular to an integrated wind energy, light energy and electricity co-production device which comprises a foldable lifting storage solar energy conversion structure, two lifting storage wind energy conversion structures, a container body and an energy storage control structure. The foldable lifting storage solar energy conversion structure is installed in the container body, the two lifting storage wind energy conversion structures are installed in the container body and symmetrically located at the two ends of the foldable lifting storage solar energy conversion structure, and the energy storage control structure is arranged in the container body. According to the utility model, the foldable lifting storage solar energy conversion structure, the lifting storage wind energy conversion structure, the container body and the energy storage control structure are matched with one another, so that the conversion device is very convenient to transfer at a required place, and meanwhile, the phenomenon that the conversion device is collided and damaged when being transferred at the place is avoided; therefore, the conversion device can better meet the use requirements of people, and the application prospect of the conversion device is not affected well.
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Description

Technical Field

[0001] This utility model relates to an integrated wind and solar cogeneration device, and in particular to an integrated wind and solar cogeneration device, belonging to the field of solar and wind energy storage and utilization technology. Background Technology

[0002] Solar and wind energy are two important renewable energy sources that convert energy from nature into electricity in different ways. As important components of renewable energy, solar and wind energy have enormous development potential and broad application prospects. With technological advancements and policy support, they will play an increasingly important role in the global energy transition.

[0003] However, existing solar and wind energy conversion devices are all fixedly installed at the place of use, which makes it very inconvenient to move them when needed. At the same time, the conversion devices may be damaged by bumps and knocks during the relocation, which means that the conversion devices cannot better meet people's needs and will have a negative impact on the application prospects of the conversion devices.

[0004] Therefore, there is an urgent need for integrated wind and solar power cogeneration devices to solve the aforementioned problems. Summary of the Invention

[0005] The purpose of this utility model is to provide an integrated wind and solar power cogeneration device. This device can be made convenient to move to a new location by using a foldable and retractable solar energy conversion structure, a retractable and retractable wind energy conversion structure, a container body, and an energy storage control structure. At the same time, the conversion device will not be damaged by bumps or knocks during the relocation, so that the conversion device can better meet people's needs and will not have a negative impact on the application prospects of the conversion device.

[0006] To achieve the above objectives, the main technical solutions adopted by this utility model include:

[0007] A foldable, liftable, and retractable solar energy conversion structure is fixedly installed in the container body. The foldable, liftable, and retractable solar energy conversion structure can be folded and lifted before and after solar energy conversion operations.

[0008] The wind energy conversion structure is height-adjustable and retractable. Two of the height-adjustable and retractable wind energy conversion structures are fixedly installed in the container body and symmetrically located at both ends of the foldable and retractable solar energy conversion structure. The height-adjustable and retractable wind energy conversion structure can be raised and lowered before and after the wind energy conversion operation.

[0009] An energy storage control structure is installed in the container body. The energy storage control structure is used to store converted electrical energy and control the operation of the foldable, liftable, and retractable solar energy conversion structure and the liftable, liftable, and retractable wind energy conversion structure.

[0010] Preferably, the foldable, liftable, and retractable solar energy conversion structure includes a first support mounting base installed in the container body, first telescopic rods symmetrically arranged on the first support mounting base, and telescopic foldable photovoltaic modules disposed at the top ends of the two first telescopic rods.

[0011] Preferably, the telescopic folding photovoltaic module includes a support sleeve, a dual-axis telescopic rod embedded in the support sleeve, a solar photovoltaic main board disposed above the dual-axis telescopic rod, symmetrically slidingly fitted solar photovoltaic primary plates at both ends of the solar photovoltaic main board, a solar photovoltaic secondary plate slidingly fitted at one end of the outer side of the solar photovoltaic primary plate, and a solar photovoltaic tertiary plate slidingly fitted at one end of the outer side of the solar photovoltaic secondary plate.

[0012] Preferably, the solar photovoltaic main board and the support sleeve are connected together by a support rod, and the telescopic end of the dual-axis telescopic rod is connected to the end of the third-level solar photovoltaic panel by a support connecting frame.

[0013] Preferably, the third-level solar photovoltaic panel is provided with a first slider on both sides, the second-level solar photovoltaic panel is provided with a first groove on both sides that matches the first slider, the second-level solar photovoltaic panel is provided with a second slider on both sides, the first-level solar photovoltaic panel is provided with a second groove on both sides that matches the second slider, the first-level solar photovoltaic panel is provided with a third slider on both sides, and the main solar photovoltaic panel is provided with a third groove on both sides that matches the third slider.

[0014] Preferably, the liftable wind energy conversion structure includes a second support mounting base installed in the container body, second telescopic rods symmetrically arranged on the second support mounting base, support plates arranged at the telescopic ends of the two second telescopic rods, and a wind power generation component bolted to the support plate.

[0015] Preferably, the container body includes a bottom plate, a top plate above the bottom plate, and a plurality of side plates installed around the bottom plate and the top plate. The second support mounting base is bolted to the bottom plate, and the first support mounting base is bolted to the bottom plate.

[0016] Preferably, the energy storage control structure includes an energy storage component disposed on the base plate and a control module disposed on the first support mounting base. Wind energy structure inlets and outlets are provided at both ends of the upper surface of the top plate. A first sealing cover is slidably fitted into the wind energy structure inlets and outlets. A solar energy structure inlet and outlet is provided on the upper surface of the top plate and located between the two wind energy structure inlets and outlets. A second sealing cover is symmetrically slidably fitted into the solar energy structure inlet and outlet.

[0017] This utility model has at least the following beneficial effects:

[0018] 1. This utility model can be made convenient to move to a new location by using a foldable and retractable solar energy conversion structure, a retractable and retractable wind energy conversion structure, a container body, and an energy storage control structure. At the same time, the conversion device will not be damaged by bumps during the relocation, so that the conversion device can better meet people's needs and will not have a negative impact on the application prospects of the conversion device. Attached Figure Description

[0019] The accompanying drawings, which are provided to further illustrate this application and form part of this application, illustrate exemplary embodiments of this application and are used to explain this application, but do not constitute an undue limitation of this application.

[0020] In the attached diagram:

[0021] Figure 1 This is a schematic diagram of the overall internal structure of this utility model;

[0022] Figure 2 This is a schematic diagram of the foldable, liftable, and storage solar energy conversion structure of this utility model;

[0023] Figure 3 This is a schematic diagram of the liftable and retractable wind energy conversion structure of this utility model;

[0024] Figure 4 This is a schematic diagram of the container body structure of this utility model;

[0025] Figure 5 This is a schematic diagram of the overall working appearance structure of this utility model;

[0026] Figure 6 This is a schematic diagram of the overall storage appearance structure of this utility model.

[0027] In the diagram: 1. Foldable, liftable, and retractable solar energy conversion structure; 2. Container body; 3. Energy storage control structure; 4. Liftable, liftable, and retractable wind energy conversion structure; 5. First support mounting base; 6. First telescopic rod; 7. Telescopic foldable photovoltaic module; 8. Support sleeve; 9. Dual-axis telescopic rod; 10. Solar photovoltaic main board; 11. First-level solar photovoltaic panel; 12. Second-level solar photovoltaic panel; 13. Third-level solar photovoltaic panel; 14. Support bar; 15. Support connecting frame. 16. First slider; 17. First slide groove; 18. Second slider; 19. Second slide groove; 20. Third slider; 21. Third slide groove; 22. Second support mounting base; 23. Second telescopic rod; 24. Support plate; 25. Wind power generation component; 26. Base plate; 27. Top plate; 28. Side plate; 29. ​​Wind energy structure inlet / outlet; 30. First sealing cover plate; 31. Solar energy structure inlet / outlet; 32. Second sealing cover plate; 33. Energy storage component; 34. Control module. Detailed Implementation

[0028] The following will describe in detail the implementation of this application with reference to the accompanying drawings and embodiments, so that the implementation process of how this application uses technical means to solve technical problems and achieve technical effects can be fully understood and implemented accordingly.

[0029] like Figures 1-6 As shown, the integrated wind and solar cogeneration device provided in this embodiment includes:

[0030] The foldable and liftable solar energy conversion structure 1 is fixedly installed in the container body 2. The foldable and liftable solar energy conversion structure 1 can be folded and lifted before and after the solar energy conversion operation. The container body 2 is convenient for fixing, supporting, storing and protecting the foldable and liftable solar energy conversion structure 1, the liftable and liftable wind energy conversion structure 4 and the energy storage control structure 3.

[0031] The liftable wind energy conversion structure 4 is fixedly installed in the container body 2 and symmetrically located at both ends of the foldable liftable solar energy conversion structure 1. The liftable wind energy conversion structure 4 can be lifted before and after the wind energy conversion operation.

[0032] Energy storage control structure 3 is installed in container body 2. Energy storage control structure 3 is used to store converted electrical energy and control the operation of foldable and retractable solar energy conversion structure 1 and retractable wind energy conversion structure 4.

[0033] The foldable and retractable solar energy conversion structure 1, the retractable and retractable wind energy conversion structure 4, the container body 2, and the energy storage control structure 3 work together to make it very convenient to move to a new location when needed. At the same time, the conversion device will not be damaged by bumps during the relocation, so that the conversion device can better meet people's needs and will not have a negative impact on the application prospects of the conversion device.

[0034] Furthermore, such as Figure 1 , Figure 2 as well as Figure 3 As shown, the foldable, liftable, and retractable solar energy conversion structure 1 includes a first support mounting base 5 installed in the container body 2, first telescopic rods 6 symmetrically arranged on the first support mounting base 5, and telescopic foldable photovoltaic modules 7 arranged at the top of the two first telescopic rods 6. The first support mounting base 5 facilitates the fixed support of the two first telescopic rods 6, and the two first telescopic rods 6 facilitate the pushing of the telescopic foldable photovoltaic modules 7 out of the container body 2. The telescopic foldable photovoltaic modules 7 can easily extend to absorb solar energy and convert the absorbed solar energy into electrical energy to be transmitted to the energy storage module 33.

[0035] Furthermore, such as Figure 2 and Figure 3 As shown, the telescopic folding photovoltaic module 7 includes a support sleeve 8, a dual-axis telescopic rod 9 embedded in the support sleeve 8, a solar photovoltaic main board 10 disposed above the dual-axis telescopic rod 9, symmetrically slidingly fitted solar photovoltaic primary secondary panels 11 at both ends of the solar photovoltaic main board 10, a solar photovoltaic secondary secondary panel 12 slidingly fitted to one side of the solar photovoltaic primary secondary panel 11, and a solar photovoltaic tertiary secondary panel 13 slidingly fitted to one side of the solar photovoltaic secondary secondary panel 12. The support sleeve 8 facilitates the fixing of the dual-axis telescopic rod 9 to the top of the two first telescopic rods 6. The dual-axis telescopic rod 9 facilitates the telescopic folding of the photovoltaic module 7 through its own telescopic properties. The solar photovoltaic main board 10, the two solar photovoltaic primary secondary panels 11, the two solar photovoltaic secondary secondary panels 12, and the two solar photovoltaic tertiary secondary panels 13 are all existing arc-shaped photovoltaic panels, so their operating principle is also existing technology. Here, they can be telescopically stacked together, which saves space when stored, and at the same time, they can be opened layer by layer during operation to increase the area for absorbing solar energy.

[0036] Furthermore, such as Figure 2 and Figure 3As shown, the solar photovoltaic main board 10 and the support sleeve 8 are connected together by the support bar 14. The telescopic end of the dual-axis telescopic rod 9 is connected to the end of the solar photovoltaic secondary panel 13 by the support connecting frame 15. The support bar 14 facilitates the fixed connection between the solar photovoltaic main board 10 and the support sleeve 8, and the support connecting frame 15 facilitates the connection between the telescopic end of the dual-axis telescopic rod 9 and the end of the solar photovoltaic secondary panel 13, so that the dual-axis telescopic rod 9 can achieve telescopic folding of the photovoltaic module 7 when it is telescopic.

[0037] Furthermore, such as Figure 2 As shown, the third-level solar photovoltaic panel 13 has a first slider 16 on both sides, the second-level solar photovoltaic panel 12 has a first groove 17 on both sides that matches the first slider 16, the second-level solar photovoltaic panel 12 has a second slider 18 on both sides, the first-level solar photovoltaic panel 11 has a second groove 19 on both sides that matches the second slider 18, the first-level solar photovoltaic panel 11 has a third slider 20 on both sides, and the main solar photovoltaic panel 10 has a third groove 21 on both sides that matches the third slider 20. The first slider 16 and the first groove 17 cooperate to allow the third-level solar photovoltaic panel 13 to be slidably and securely stored in the second-level solar photovoltaic panel 12, the second slider 18 and the second groove 19 cooperate to allow the second-level solar photovoltaic panel 12 to be slidably and securely stored in the first-level solar photovoltaic panel 11, and the third slider 20 and the third groove 21 cooperate to allow the first-level solar photovoltaic panel 11 to be slidably and securely stored in the main solar photovoltaic panel 10.

[0038] Furthermore, such as Figure 1 and Figure 3 As shown, the liftable wind energy conversion structure 4 includes a second support mounting base 22 installed in the container body 2, second telescopic rods 23 symmetrically arranged on the second support mounting base 22, a support plate 24 set at the telescopic ends of the two second telescopic rods 23, and a wind power generation component 25 bolted to the support plate 24. The second support mounting base 22 facilitates the fixed support of the two second telescopic rods 23, and the two second telescopic rods 23 facilitate the pushing of the wind power generation component 25 out of the container body 2. The support plate 24 facilitates the connection of the wind power generation component 25 to the top ends of the two second telescopic rods 23. The wind power generation component 25 facilitates the conversion of received wind energy into electrical energy and the transmission of the converted electrical energy to the energy storage component 33. The wind power generation component 25 is an existing module, so its operating principle is existing technology.

[0039] Furthermore, such as Figure 1 , Figure 3 , Figure 4 as well as Figure 6As shown, the container body 2 includes a bottom plate 26, a top plate 27 located above the bottom plate 26, and several side plates 28 installed around the bottom plate 26 and the top plate 27. The second support mounting base 22 is installed on the bottom plate 26 by bolts, and the first support mounting base 5 is installed on the bottom plate 26 by bolts. The bottom plate 26, the top plate 27, and the several side plates 28 are easy to assemble into the container body 2.

[0040] Furthermore, such as Figure 3 , Figure 4 ,as well as Figure 6 As shown, the energy storage control structure 3 includes an energy storage component 33 mounted on the base plate 26 and a control module 34 mounted on the first support mounting base 5. Wind energy structure inlets and outlets 29 are provided at both ends of the upper surface of the top plate 27. A first sealing cover 30 is slidably fitted into each wind energy structure inlet and outlet 29. A solar energy structure inlet and outlet 31 is provided on the upper surface of the top plate 27 between the two wind energy structure inlets and outlets 29. A second sealing cover 32 is symmetrically slidably fitted into each solar energy structure inlet and outlet 31. The energy storage component 33 facilitates the storage of converted electrical energy. The energy storage component 33 is an existing device. The device is a pre-existing device, so its operating principle is based on existing technology. The control module 34 is convenient for receiving operation commands and controlling the device to perform various operations according to the operation commands. The control module 34 is a pre-existing device, so its operating principle is based on existing technology. The wind power structure inlet 29 facilitates the wind power generation component 25 to protrude from the container body 2. The first sealing cover plate 30 facilitates the sealing of the wind power structure inlet 29 when not in use. The solar energy structure inlet 31 facilitates the telescopic and foldable photovoltaic component 7 to protrude from the container body 2. The second sealing cover plate 32 facilitates the sealing of the solar energy structure inlet 31 when not in use.

[0041] like Figures 1-6 As shown, the principle of the integrated wind and solar power cogeneration device provided in this embodiment is as follows: When using the device, it should first be transported to the required location by a transport vehicle, and then the device should be lifted to the designated location by a hoisting structure. After that, the container body 2 should be fixed and placed stably, and then the two first sealing covers 30 and the two second sealing covers 32 on the container body 2 should be manually pushed open.

[0042] At this point, a computer terminal can be remotely connected to the control module 34, and an operation command can be issued to the control module 34 to fold and retract the solar energy conversion structure 1. At this time, the two first telescopic rods 6 will extend until the telescopic foldable photovoltaic module 7 is completely exposed from the container body 2. Then, the two ends of the dual-axis telescopic rod 9 will extend synchronously until the solar photovoltaic primary secondary panel 11, solar photovoltaic secondary panel 12, and solar photovoltaic tertiary secondary panel 13 stored at both ends of the solar photovoltaic main board 10 are all fully extended. At this time, one solar photovoltaic main board 10, two solar photovoltaic primary secondary panels 11, two solar photovoltaic secondary secondary panels 12, and two solar photovoltaic tertiary secondary panels 13 can quickly absorb solar energy and quickly convert the absorbed solar energy into electrical energy. The converted electrical energy will be quickly transmitted to the energy storage component 33 through the connecting wires.

[0043] At the same time, the control module 34 can also issue an operation command for the liftable wind energy conversion structure 4. At this time, the two second telescopic rods 23 will extend until the upper surface of the support plate 24 is flush with the surface of the top plate 27. At this time, the wind power generation component 25 will be completely outside the container body 2. Then the wind power generation component 25 will quickly convert the wind power received from the outside into electrical energy. The converted electrical energy will be quickly transmitted to the energy storage component 33 through the connecting wire. Here, the foldable liftable solar energy conversion structure 1 or the liftable wind energy conversion structure 4 can be selected according to the specific location environment. Both can also be used at the same time.

[0044] When the device needs to be moved to a new location, the control module 34 needs to issue a storage command for the foldable and retractable solar conversion structure 1. At this time, both ends of the dual-axis telescopic rod 9 begin to retract synchronously until the primary solar photovoltaic sub-panels 11, secondary solar photovoltaic sub-panels 12, and tertiary solar photovoltaic sub-panels 13 at both ends of the solar photovoltaic main board 10 are all stored in the solar photovoltaic main board 10. Then the two first telescopic rods 6 will also retract until the telescopic and foldable photovoltaic module 7 is completely inserted into the container body 2. Then the workers can manually seal and close the two second sealing covers 32.

[0045] After the foldable and retractable solar energy conversion structure 1 is properly stored, the control module 34 needs to issue a storage command for the retractable and retractable wind energy conversion structure 4. At this time, the two second telescopic rods 23 will also retract until the wind power generation component 25 is completely inserted into the container body 2. Then, the workers can manually seal and close the two first sealing covers 30.

[0046] Then, workers hoist the device onto a transport vehicle, which then moves it to the next required location. This is achieved through the coordinated operation of the foldable and retractable solar energy conversion structure 1, the retractable and retractable wind energy conversion structure 4, the container body 2, and the energy storage control structure 3. This makes relocation very convenient and prevents damage to the conversion device during the relocation process. As a result, the conversion device can better meet people's needs and will not have a negative impact on its application prospects.

[0047] The foregoing description illustrates and describes several preferred embodiments of the present invention. However, as previously stated, it should be understood that the present invention is not limited to the forms disclosed herein and should not be construed as excluding other embodiments. It can be used in various other combinations, modifications, and environments, and can be altered within the scope of the inventive concept described herein through the foregoing teachings or techniques or knowledge in related fields. Any modifications and variations made by those skilled in the art that do not depart from the spirit and scope of the present invention should be within the protection scope of the appended claims.

Claims

1. An integrated wind and solar power cogeneration device, characterized in that, include: A foldable lifting and storage solar energy conversion structure (1) is fixedly installed in a container body (2). The foldable lifting and storage solar energy conversion structure (1) can be folded and lifted before and after solar energy conversion operations. The liftable wind energy conversion structure (4) is fixedly installed in the container body (2) and symmetrically located at both ends of the foldable liftable solar energy conversion structure (1). The liftable wind energy conversion structure (4) can be lifted before and after the wind energy conversion operation. Energy storage control structure (3) is installed in the container body (2). The energy storage control structure (3) is used to store the converted electrical energy and control the operation of the foldable liftable solar energy conversion structure (1) and the liftable wind energy conversion structure (4).

2. The integrated wind and solar cogeneration device according to claim 1, characterized in that: The foldable, liftable, and retractable solar energy conversion structure (1) includes a first support mounting base (5) installed in the container body (2), a first telescopic rod (6) symmetrically arranged on the first support mounting base (5), and telescopic foldable photovoltaic modules (7) arranged at the top of the two first telescopic rods (6).

3. The integrated wind and solar power cogeneration device according to claim 2, characterized in that: The telescopic folding photovoltaic module (7) includes a support sleeve (8), a dual-axis telescopic rod (9) embedded in the support sleeve (8), a solar photovoltaic main board (10) disposed above the dual-axis telescopic rod (9), a solar photovoltaic primary secondary board (11) symmetrically slidably mounted at both ends of the solar photovoltaic main board (10), a solar photovoltaic secondary secondary board (12) slidably mounted at one end of the outer side of the solar photovoltaic primary secondary board (11), and a solar photovoltaic tertiary secondary board (13) slidably mounted at one end of the outer side of the solar photovoltaic secondary secondary board (12).

4. The integrated wind and solar power cogeneration device according to claim 3, characterized in that: The solar photovoltaic main board (10) and the support sleeve (8) are connected together by a support bar (14), and the telescopic end of the dual-axis telescopic rod (9) is connected to the end of the solar photovoltaic third-level plate (13) by a support connecting frame (15).

5. The integrated wind and solar power cogeneration device according to claim 3, characterized in that: The third-level solar photovoltaic plate (13) is provided with a first slider (16) on both sides. The second-level solar photovoltaic plate (12) is provided with a first groove (17) on both sides that matches the first slider (16). The second-level solar photovoltaic plate (12) is provided with a second slider (18) on both sides. The first-level solar photovoltaic plate (11) is provided with a second groove (19) on both sides that matches the second slider (18). The first-level solar photovoltaic plate (11) is provided with a third slider (20) on both sides. The main solar photovoltaic plate (10) is provided with a third groove (21) on both sides that matches the third slider (20).

6. The integrated wind and solar power cogeneration device according to claim 2, characterized in that: The liftable wind energy conversion structure (4) includes a second support mounting base (22) installed in the container body (2), a second telescopic rod (23) symmetrically arranged on the second support mounting base (22), a support plate (24) arranged at the telescopic ends of the two second telescopic rods (23), and a wind power generation component (25) installed on the support plate (24) by bolts.

7. The integrated wind and solar power cogeneration device according to claim 6, characterized in that: The container body (2) includes a bottom plate (26), a top plate (27) above the bottom plate (26), and a number of side plates (28) installed around the bottom plate (26) and the top plate (27). The second support mounting base (22) is bolted to the bottom plate (26), and the first support mounting base (5) is bolted to the bottom plate (26).

8. The integrated wind and solar power cogeneration device according to claim 7, characterized in that: The energy storage control structure (3) includes an energy storage component (33) disposed on the base plate (26) and a control module (34) disposed on the first support mounting base (5). Wind energy structure inlets and outlets (29) are provided at both ends of the upper surface of the top plate (27). A first sealing cover plate (30) is slidably embedded in the wind energy structure inlets and outlets (29). A solar energy structure inlet and outlet (31) is provided on the upper surface of the top plate (27) and located between the two wind energy structure inlets and outlets (29). A second sealing cover plate (32) is symmetrically slidably embedded in the solar energy structure inlet and outlet (31).