Outdoor emergency light and power storage integrated power supply

By integrating photovoltaic power generation, wind power generation and hydropower generation into an emergency wind, solar, storage and charging integrated power supply, the problem of outdoor environment restrictions on photovoltaic power generation and wind power generation is solved, and the efficient utilization of multiple energy supply methods and the high integration of emergency power supply are achieved.

CN119652212BActive Publication Date: 2025-10-14NANJING GREEN NEW ENERGY RES INST CO LTD
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Patent Information

Application Number
CN202411661032.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-11-20
Publication Date
2025-10-14
Estimated Expiration
2044-11-20

AI Technical Summary

Technical Problem

Photovoltaic generators and wind turbines have specific requirements for the outdoor environment and require sunny or windy weather to be used effectively, resulting in insufficient outdoor emergency response capabilities.

Method used

An outdoor emergency wind-solar-storage-charging integrated power supply is designed, which integrates light energy supply mechanism, wind energy supply mechanism and water energy supply mechanism. It converts energy into energy storage device through photovoltaic panels, airfoil blade groups and turbine blades. It supports multiple energy supply modes, including mains electricity and electric vehicle reverse power supply, and can be remotely controlled.

Benefits of technology

It improves the emergency handling capability, realizes efficient energy supply in different environments, and enhances the adaptability and energy supply efficiency of the emergency power supply.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The application discloses an outdoor emergency wind light storage charging integrated power supply which comprises a main box body, the main box body is covered with a cover, and light energy supply mechanisms, energy storage devices, wind energy supply mechanisms and water energy supply mechanisms are sequentially arranged in the main box body from left to right, a partition plate is fixedly connected in the main box body, the water energy supply mechanisms are placed on the partition plate, and the light energy supply mechanisms, the wind energy supply mechanisms and the water energy supply mechanisms are linearly connected with the energy storage devices simultaneously; the light energy supply mechanisms comprise a plurality of first supporting plates, a photovoltaic panel is covered on the top end of each first supporting plate, adjacent two first supporting plates are connected through damping hinges, and opposite sides of two first supporting plates located in the middle are connected with a center supporting plate through damping hinges; the outdoor emergency wind light storage charging integrated power supply disclosed by the application has high integration, and different mechanisms can be independently or cooperatively used according to different environments, so that the energy supply efficiency is optimized, and the emergency processing capacity is improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of emergency power supplies, and in particular to an outdoor emergency wind-solar-storage-charging integrated power supply. Background Art

[0002] Because portable generators have limited storage capacity, some people often use photovoltaic or wind turbines during mid- to long-term outdoor activities. However, photovoltaic and wind turbines require a specific outdoor environment, requiring sufficient sunlight or windy weather to operate, which isn't always possible outdoors. This limits these power sources and their emergency response capabilities. Summary of the Invention

[0003] The present invention discloses an outdoor emergency wind-solar-storage-charging integrated power supply, which aims to solve the technical problem that photovoltaic generators and wind generators have certain requirements for the outdoor environment and can only be used in sunny or windy weather, which may not be met outdoors, thereby limiting this type of power supply and insufficient emergency response capabilities.

[0004] In order to achieve the above object, the present invention adopts the following technical solutions:

[0005] An outdoor emergency wind-solar-storage-charging integrated power supply comprises a main box covered with a cover, wherein a light energy supply mechanism, an energy storage device, a wind energy supply mechanism, and a water energy supply mechanism are sequentially arranged inside the main box from left to right. A partition is fixedly connected to the main box, and the water energy supply mechanism is placed on the partition. The light energy supply mechanism, the wind energy supply mechanism, and the water energy supply mechanism are linearly connected to the energy storage device at the same time.

[0006] The light energy supply mechanism includes a plurality of first support plates, and the top of each first support plate is covered with a photovoltaic panel, two adjacent first support plates are connected by a damping hinge, and the opposite sides of the two first support plates in the middle are connected to the central support plate by a damping hinge;

[0007] The wind energy supply mechanism includes a U-shaped stand fixedly connected to the inner wall of the main box, and the top of the U-shaped stand is connected to a first support block via a damping hinge, a second support block is provided on one side of the first support block, and one end of the second support block is connected to a circular support plate via a damping hinge, the top of the circular support plate is movably connected to a second support rod, and the second support rod is provided with an airfoil blade group, and one end of the airfoil blade group is connected to the energy storage device via the first generator;

[0008] The water energy supply mechanism includes an outer support frame, and a turbine blade is movably connected to the inner wall of one side of the outer support frame, one end of the turbine blade is connected to the energy storage device through the second generator, and side support plates are fixedly connected to the opposite sides of the outer support frame, and a plug-in frame is movably inserted into the side support plate;

[0009] The energy storage device includes an energy storage unit, an energy supply unit and a remote control unit. The energy storage unit can accept light energy supply mechanism, wind energy supply mechanism, water energy supply mechanism, mains power supply and electric vehicle reverse power supply. The remote control unit can be connected to a mobile phone APP and provide remote control of the power supply;

[0010] The energy storage unit can accept 220V and 380V mains power supply, and the energy supply unit can support 220V and 380V external discharge.

[0011] By providing a light energy supply mechanism, a wind energy supply mechanism, a water energy supply mechanism and an energy storage device, in this device, the light energy supply mechanism, the wind energy supply mechanism, the water energy supply mechanism and the energy storage device are folded and integrated inside an entire main box. In the light energy supply mechanism, by unfolding multiple photovoltaic panels, the photovoltaic panels can convert light energy to supply energy to the energy storage device, and the wind energy supply mechanism can be placed on one side for wind energy when the light energy supply mechanism is unfolded. In a lightless environment, the airfoil blade group is changed to the top of the main box to better utilize wind energy. In the water energy supply mechanism, the outer support frame can be placed in flowing water. When the flowing water passes through the outer support frame, it drives the turbine blades to rotate, and the kinetic potential energy is converted into power supply to the energy storage device through the second generator. The energy storage device can simultaneously receive mains power supply and electric vehicle reverse power supply, and realize remote control by mobile phone APP. Under the multiple structures, the integrated power supply has high integration, and different mechanisms can be selected according to different environments for independent or coordinated use to optimize energy supply efficiency and improve emergency handling capabilities.

[0012] In a preferred embodiment, the light energy supply mechanism further comprises a column, and the column is fixedly connected to the outer wall of the bottom end of the central support plate, the inner wall of the bottom end of the main box is fixedly connected to a sleeve frame, and the column is movably connected to the sleeve frame;

[0013] Slots are provided on both sides of the sleeve, and screw holes are provided on both sides of the sleeve, screws are engaged in the screw holes, and the ends of the screws are pressed against the outer wall of the column;

[0014] The two opposing sides of the column are respectively connected to a first support rod via a hinge, and one end of the first support rod is fixedly connected to a first elastic hook, wherein the bottom ends of the two first support plates are fixedly connected to a limit hanging rod, and the first elastic hook is hung on the limit hanging rod;

[0015] The outer walls on both sides facing each of the first support plates and the outer walls on both sides facing each other of the central support plate are respectively fixedly connected with square support blocks and limiting support rods, and the two adjacent square support blocks are simultaneously movably clamped with sliding sleeves, and the two ends of the sliding sleeves are respectively fixedly connected with second elastic hooks and third elastic hooks, and the second elastic hooks and the third elastic hooks are respectively correspondingly clamped on the limiting support rods.

[0016] By setting the light energy supply mechanism, in the light energy supply mechanism, the whole photovoltaic panel can change the unfolding height by moving up and down in the sleeve frame, avoiding the main box from blocking it, when unfolding multiple first support plates, multiple sliding sleeves can be directly translated to make them synchronously sleeve outside adjacent two square support blocks, which can be used as support between two first support plates, the stand can be used as the center support to complete the flat unfolding of multiple first support plates, and the oblique support of the first support rod can reduce the bearing capacity of multiple sliding sleeves, under this structure, the unfolding and storage of the whole light energy supply mechanism are more convenient, and after storage, adjacent photovoltaic panels are mutually attached and collected on the inside, based on the damping effect provided by the top damping hinge and the external cover attached and covered outside the light energy supply mechanism, the photovoltaic panels can be prevented from being damaged during movement.

[0017] In a preferred scheme, the wind energy supply mechanism further comprises a first special-shaped rod fixedly connected to one side of the first support block, and a second special-shaped rod attached to one end of the first special-shaped rod, one end of the second special-shaped rod is movably connected to the first special-shaped rod through a clamping frame, and the first special-shaped rod and the second special-shaped rod are movably sleeved with a special-shaped sleeve pipe outside at the same time;

[0018] One end of the second special-shaped rod is fixedly connected with a screw rod, and the screw rod is connected with the second support block, one end of the special-shaped sleeve pipe is movably connected with a screw pipe through a clamping ring, and the screw pipe is engaged with the screw rod outside;

[0019] The water energy supply mechanism further comprises a first synchronous wheel fixedly connected to one side of the turbine blade, and a second synchronous wheel connected with the first synchronous wheel through a synchronous belt, one side of the second synchronous wheel is fixedly connected with a spur gear;

[0020] The spur gear is engaged with a crown gear, and the bottom end of the crown gear is connected to the top end of the outer support frame through a bearing seat, the top end of the crown gear is fixedly connected with a third special-shaped rod, and a clamping sleeve is movably clamped on the third special-shaped rod, one end of the clamping sleeve is fixedly connected with a fan blade.

[0021] By setting the wind energy supply mechanism and the water energy supply mechanism, when the water energy supply mechanism is placed in flowing water, the rotating turbine blade can drive the fan blade at the top end of the outer support frame to rotate through the first synchronous wheel, the second synchronous wheel, the spur gear and the crown gear, based on this structure, when the wind energy supply mechanism is adjusted to the right extension state, the airfoil blade group can be closer to the fan blade after turning, when the turbine blade rotates rapidly under the action of water flow to supply energy, the wind generated by the fan blade acts on the airfoil blade group to drive it to rotate, so that the water energy supply mechanism and the wind energy supply mechanism can function to the energy storage device at the same time, effectively improving the energy storage efficiency.

[0022] As can be known from the above, the outdoor emergency wind and light storage and charging integrated power supply comprises a main box body, the main box body is covered with a cover, and a light power supply mechanism, an energy storage device, a wind power supply mechanism and a water power supply mechanism are sequentially arranged in the main box body from left to right, a partition plate is fixedly connected in the main box body, and the water power supply mechanism is placed on the partition plate, and the light power supply mechanism, the wind power supply mechanism and the water power supply mechanism are linearly connected with the energy storage device; the light power supply mechanism comprises a plurality of first supporting plates, a photovoltaic panel is arranged at the top of each first supporting plate, adjacent two first supporting plates are connected through a damping hinge, and the opposite sides of the two first supporting plates in the middle are connected with a center supporting plate through the damping hinge; the wind power supply mechanism comprises a U-shaped stand fixedly connected to the inner wall of the main box body, a first supporting block is connected to the top of the U-shaped stand through a damping hinge, a second supporting block is arranged on one side of the first supporting block, one end of the second supporting block is connected with a circular supporting plate through a damping hinge, a second supporting rod is movably connected to the top of the circular supporting plate, a wing-shaped blade group is arranged on the second supporting rod, and one end of the wing-shaped blade group is connected with the energy storage device through a first generator; the water power supply mechanism comprises an outer support frame, a turbine blade is movably connected to the inner wall of one side of the outer support frame, one end of the turbine blade is connected with the energy storage device through a second generator, and side supporting plates are fixedly connected to the opposite sides of the outer support frame, and the side supporting plates movably penetrate the insertion frames; the energy storage device comprises an energy storage unit, a power supply unit and a remote control unit, the energy storage unit can accept power supply from the light power supply mechanism, the wind power supply mechanism, the water power supply mechanism, commercial power supply and reverse power supply of an electric vehicle, the remote control unit can be connected with a mobile phone APP and provide remote control for the power supply. The outdoor emergency wind and light storage and charging integrated power supply provided by the application has high integration, and different mechanisms can be independently or cooperatively used according to different environments, so that the power supply efficiency is optimized and the emergency processing capacity is improved. BRIEF DESCRIPTION OF DRAWINGS

[0023] Figure 1 The overall structure diagram of the outdoor emergency wind and light storage and charging integrated power supply is provided.

[0024] Figure 2 The internal structure diagram of the outdoor emergency wind and light storage and charging integrated power supply is provided.

[0025] Figure 3 The bottom structure diagram of the light power supply mechanism of the outdoor emergency wind and light storage and charging integrated power supply is provided.

[0026] Figure 4 The side split diagram of the light power supply mechanism of the outdoor emergency wind and light storage and charging integrated power supply is provided.

[0027] Figure 5A wind power supply mechanism split schematic diagram of an outdoor emergency wind-solar storage and charging integrated power supply is provided for the present application.

[0028] Figure 6 A water power supply mechanism split schematic diagram of an outdoor emergency wind-solar storage and charging integrated power supply is provided for the present application.

[0029] Figure 7 An energy storage device structure schematic diagram of an outdoor emergency wind-solar storage and charging integrated power supply is provided for the present application.

[0030] In the figure: 1, main box; 2, cover; 3, light power supply mechanism; 4, energy storage device; 5, partition; 6, wind power supply mechanism; 7, water power supply mechanism; 301, sleeve; 302, screw hole; 303, screw; 304, first support plate; 305, first support rod; 306, limiting hanging rod; 307, first elastic hook; 308, stand; 309, notch; 310, center support plate; 311, limiting support rod; 312, square support block; 313, second elastic hook; 314, sliding sleeve; 315, third elastic hook; 316, photovoltaic panel; 601, U-shaped stand; 602, first support block; 603, first special-shaped rod; 604, special-shaped sleeve; 605, clamping ring; 606, screw pipe; 607, second support rod; 608, wing-shaped blade group; 609, circular support plate; 610, second support block; 611, screw rod; 612, second special-shaped rod; 613, clamping frame; 701, fan blade; 702, clamping sleeve; 703, third special-shaped rod; 704, crown gear; 705, spur gear; 706, synchronous belt; 707, first synchronous pulley; 708, turbine blade; 709, insertion frame; 710, side support plate; 711, second generator; 712, outer support frame; 713, second synchronous pulley; 714, bearing seat. DETAILED DESCRIPTION

[0031] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, not all.

[0032] The outdoor emergency wind-solar storage and charging integrated power supply disclosed in the present application is mainly applied to the scene of outdoor emergency power supply use.

[0033] REFERENCE Figures 1-7 An outdoor emergency wind-solar storage and charging integrated power supply, comprising a main box 1, the main box 1 is covered with a cover 2, and the main box 1 is sequentially provided with a light power supply mechanism 3, an energy storage device 4, a wind power supply mechanism 6 and a water power supply mechanism 7 from left to right in the main box 1, a partition 5 is fixedly connected in the main box 1, and the water power supply mechanism 7 is placed on the partition 5, and the light power supply mechanism 3, the wind power supply mechanism 6 and the water power supply mechanism 7 are linearly connected with the energy storage device 4.

[0034] The light energy supply mechanism 3 includes a plurality of first support plates 304, each of which is covered with a photovoltaic panel 316 on its top. Two adjacent first support plates 304 are connected by a damping hinge, and the opposite sides of the two first support plates 304 in the middle are connected to the central support plate 310 by a damping hinge.

[0035] The wind energy supply mechanism 6 includes a U-shaped stand 601 fixedly connected to the inner wall of the main box 1, and the top of the U-shaped stand 601 is connected to a first support block 602 via a damping hinge. A second support block 610 is provided on one side of the first support block 602, and one end of the second support block 610 is connected to a circular support plate 609 via a damping hinge. The top of the circular support plate 609 is movably connected to a second support rod 607, and the second support rod 607 is provided with an airfoil blade group 608. One end of the airfoil blade group 608 is connected to the energy storage device 4 via the first generator;

[0036] The water energy supply mechanism 7 includes an outer support frame 712, and a turbine blade 708 is movably connected to the inner wall of one side of the outer support frame 712. One end of the turbine blade 708 is connected to the energy storage device 4 through the second generator 711. Side support plates 710 are fixedly connected to the opposite sides of the outer support frame 712, and a bracket 709 is movably inserted into the side support plates 710.

[0037] The energy storage device 4 includes an energy storage unit, an energy supply unit and a remote control unit. The energy storage unit can accept light energy supply mechanism 3, wind energy supply mechanism 6, water energy supply mechanism 7, mains power supply and reverse power supply of electric vehicles. The remote control unit can be connected to a mobile phone APP and provide remote control of the power supply. In this device, the light energy supply mechanism 3, the wind energy supply mechanism 6, the water energy supply mechanism 7 and the energy storage device 4 are folded and integrated into an entire main box 1. In the light energy supply mechanism 3, by unfolding multiple photovoltaic panels 316, the photovoltaic panels 316 can convert light energy to supply energy to the energy storage device 4, and in the wind energy supply mechanism 6, by bending multiple damping hinges, the first support block 602 and the U-shaped stand 601 can be made perpendicular or collinear, and the angle between the second support block 610 and the circular support plate 609 can be changed by the structure of the first support block 602 and the U-shaped stand 601, thereby When the light energy supply mechanism 3 is unfolded, it is placed on one side for wind energy supply. In a dark environment, when the light energy supply mechanism 3 is combined, the airfoil blade group 608 is changed to the top of the main box 1 to better utilize wind energy. In the water energy supply mechanism 7, the outer support frame 712 can be placed in the flowing water, and the plug-in frames 709 on both sides are inserted into the mud to provide a limit for the outer support frame 712. When the flowing water passes through the outer support frame 712, it drives the turbine blades 708 to rotate, and the second generator 711 converts the kinetic potential energy to supply power to the energy storage device 4. The energy storage device 4 can simultaneously receive the mains power supply and the electric vehicle reverse power supply, and realize remote control by mobile phone APP. Under the multiple structures, the integrated power supply has high integration, and different mechanisms can be selected according to different environments for independent or coordinated use to optimize the energy supply efficiency and improve the emergency handling capability.

[0038] Reference Figure 2 In a preferred embodiment, the energy storage unit can accept 220V and 380V mains power supply, and the energy supply unit can support 220V and 380V external discharge.

[0039] Reference Figure 3 and Figure 4 In a preferred embodiment, the light power supply mechanism 3 also includes a column 308, and the column 308 is fixedly connected to the bottom outer wall of the central support plate 310, the bottom inner wall of the main box body 1 is fixedly connected to the sleeve 301, and the column 308 is movably connected to the sleeve 301.

[0040] Reference Figure 3 and Figure 4 In a preferred embodiment, slots 309 are provided on both sides of the sleeve 301 , and screw holes 302 are provided on both sides of the sleeve 301 , screws 303 are engaged in the screw holes 302 , and the ends of the screws 303 are squeezed on the outer wall of the column 308 .

[0041] Reference Figure 3 and Figure 4In a preferred embodiment, the opposite sides of the column 308 are respectively connected to the first support rod 305 by a hinge, and one end of the first support rod 305 is fixedly connected to the first elastic hook 307, wherein the bottom ends of the two first support plates 304 are fixedly connected to the limiting hanging rod 306, and the first elastic hook 307 is hung on the limiting hanging rod 306.

[0042] Reference Figure 3 and Figure 4 In a preferred embodiment, the outer walls on both sides of each first support plate 304 and the outer walls on both sides of the central support plate 310 are respectively fixedly connected with square support blocks 312 and limiting support rods 311, and the two adjacent square support blocks 312 are simultaneously movably connected with sliding sleeves 314, and the two ends of the sliding sleeves 314 are respectively fixedly connected with second elastic hooks 313 and third elastic hooks 315, and the second elastic hooks 313 and third elastic hooks 315 are respectively correspondingly connected to the limiting support rods 311. In the light energy supply mechanism 3, the column 308 moves up and down in the sleeve 301 to change the deployment height of the entire photovoltaic panel 316 to avoid it being blocked by the main box 1. When multiple first support plates 304 are deployed, multiple sliding sleeves 314 can be directly translated so that they are synchronously sleeved on two adjacent square The support block 312 can serve as a support between the two first support plates 304, and the column 308 can be used as a central support to complete the flattening of multiple first support plates 304. The oblique support of the first support rod 305 can reduce the load-bearing of multiple sliding sleeves 314, avoiding deformation of the sliding sleeves 314 under long-term use. The provision of multiple elastic hooks can facilitate the connection of one end of the first support rod 305 and the limitation of both ends of the moving path of the sliding sleeve 314 to avoid the sliding sleeve 314 from falling off. Under this structure, the deployment and storage of the entire light power supply mechanism 3 are more convenient. At the same time, after storage, the adjacent photovoltaic panels 316 are attached to each other and stored inside. Based on the shock absorption effect provided by the top damping hinge and the external cover 2 covering the outside of the light power supply mechanism 3, the photovoltaic panels 316 can be avoided from being damaged during movement.

[0043] Reference Figure 5 In a preferred embodiment, the wind energy supply mechanism 6 also includes a first special-shaped rod 603 fixedly connected to one side of the first support block 602, and a second special-shaped rod 612 is fitted on one end of the first special-shaped rod 603, and one end of the second special-shaped rod 612 is movably clamped in the first special-shaped rod 603 through a clamping frame 613, and a special-shaped sleeve 604 is movably sleeved on the outside of the first special-shaped rod 603 and the second special-shaped rod 612.

[0044] Reference Figure 5In a preferred embodiment, one end of the second special-shaped rod 612 is fixedly connected to a screw 611, and the screw 611 is connected to the second support block 610, and one end of the special-shaped sleeve 604 is movably connected to a screw 606 through a clamping ring 605, and the screw 606 is engaged with the outside of the screw 611.

[0045] Reference Figure 6 In a preferred embodiment, the water supply mechanism 7 also includes a first synchronous wheel 707 fixedly connected to one side of the turbine blade 708, and the first synchronous wheel 707 is linked to a second synchronous wheel 713 through a synchronous belt 706, and one side of the second synchronous wheel 713 is fixedly connected to a spur gear 705.

[0046] Reference Figure 6 In a preferred embodiment, the spur gear 705 is meshed with the crown gear 704, and the bottom end of the crown gear 705 is connected to the top of the outer support frame 712 through a bearing seat 714. The top of the crown gear 705 is fixedly connected to the third special-shaped rod 703, and the third special-shaped rod 703 is movably clamped with a clamping sleeve 702, and one end of the clamping sleeve 702 is fixedly connected to the fan blade 701. When the water energy supply mechanism 7 is placed in flowing water, the rotating turbine blade 708 can be rotated by the first synchronous wheel 707, and the second synchronous wheel 713 is driven to rotate by the synchronous belt 706. Thus, the meshing state of the spur gear 705 and the crown gear 704 can drive the fan blade 701 located at the top of the outer support frame 712 to rotate. Based on this structure, when water is supplied, When supplying energy, the entire device can be moved to one side of the energy supply position, the wind energy supply mechanism 6 can be adjusted to the right extension state, and the second special-shaped rod 612 can be rotated based on the clamping frame 613. After the circular support plate 609 is flipped 180°, the airfoil blade group 608 can be closer to the fan blade 701, and the special-shaped sleeve 604 is covered on the first special-shaped rod 603 and the second special-shaped rod 612 by the screw tube 606 engaging the screw 611 to maintain the stability of the airfoil blade group 608. Under this structure, when the turbine blades 708 rotate rapidly under the action of water flow to supply energy, the wind generated by the fan blades 701 acts on the airfoil blade group 608, driving it to rotate, so that the water energy supply mechanism 7 and the wind energy supply mechanism 6 can simultaneously supply energy to the energy storage device 4, effectively improving the energy storage efficiency.

[0047] Working principle: In this device, the light energy supply mechanism 3, the wind energy supply mechanism 6, the water energy supply mechanism 7 and the energy storage device 4 are folded and integrated into the entire main box 1. In the light energy supply mechanism 3, by unfolding multiple photovoltaic panels 316, the photovoltaic panels 316 can convert light energy to supply energy to the energy storage device 4, and in the wind energy supply mechanism 6, by bending multiple damping hinges, the first support block 602 and the U-shaped stand 601 can be made perpendicular or collinear, and the angle between the second support block 610 and the circular support plate 609 can be changed by the structure of the first support block 602 and the U-shaped stand 601, so that when the light energy supply mechanism 3 is unfolded, it can be placed on one side for wind energy supply. In a dark environment, the airfoil blade group 6 is changed when the light energy supply mechanism 3 is combined. 08 In order to better utilize wind energy at the top of the main box body 1, in the water energy supply mechanism 7, the outer support frame 712 can be placed in the flowing water, and the plug-in frames 709 on both sides are inserted into the mud to provide a limit for the outer support frame 712. When the flowing water passes through the outer support frame 712, it drives the turbine blades 708 to rotate, and the second generator 711 converts the kinetic potential energy to supply power to the energy storage device 4. The energy storage device 4 can simultaneously receive the mains power supply and the electric vehicle reverse power supply, and realize remote control by mobile phone APP. Under the multiple structures, the integrated power supply has high integration, and different mechanisms can be selected according to different environments to be used independently or in combination to optimize the energy supply efficiency and improve the emergency handling capability.

[0048] The above description is only a preferred specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any technician familiar with the technical field, within the technical scope disclosed by the present invention, who makes equivalent replacements or changes based on the technical solution and inventive concept of the present invention, should be covered by the scope of protection of the present invention.

Claims

1. An outdoor emergency wind-solar storage-charging integrated power supply, comprising a main box (1), characterized in that: The main box (1) is covered with a cover (2), and a light energy supply mechanism (3), an energy storage device (4), a wind energy supply mechanism (6), and a water energy supply mechanism (7) are sequentially arranged in the main box (1) from left to right. A partition (5) is fixedly connected to the main box (1), and the water energy supply mechanism (7) is placed on the partition (5). The light energy supply mechanism (3), the wind energy supply mechanism (6), and the water energy supply mechanism (7) are linearly connected to the energy storage device (4) at the same time. The light energy supply mechanism (3) comprises a plurality of first support plates (304), and the top of each first support plate (304) is respectively covered with a photovoltaic panel (316), two adjacent first support plates (304) are connected via a damping hinge, and the opposite sides of the two first support plates (304) located in the middle are connected to the central support plate (310) via a damping hinge; The wind energy supply mechanism (6) comprises a U-shaped stand (601) fixedly connected to the inner wall of the main box (1), and the top of the U-shaped stand (601) is connected to a first support block (602) via a damping hinge, a second support block (610) is provided on one side of the first support block (602), and one end of the second support block (610) is connected to a circular support plate (609) via a damping hinge, the top of the circular support plate (609) is movably connected to a second support rod (607), and an airfoil blade group (608) is provided on the second support rod (607), and one end of the airfoil blade group (608) is connected to the energy storage device (4) via a first generator; The water energy supply mechanism (7) includes an outer support frame (712), and a turbine blade (708) is movably connected to an inner wall of one side of the outer support frame (712), and one end of the turbine blade (708) is connected to the energy storage device (4) through a second generator (711). Side support plates (710) are fixedly connected to opposite sides of the outer support frame (712), and a plug-in frame (709) is movably inserted into the side support plate (710); The energy storage device (4) comprises an energy storage unit, an energy supply unit and a remote control unit. The energy storage unit can accept light energy supply mechanism (3), wind energy supply mechanism (6), water energy supply mechanism (7), mains power supply and reverse power supply of electric vehicle. The remote control unit can be connected to a mobile phone APP and provide remote control of the power supply.

2. The outdoor emergency wind-solar-storage-charging integrated power supply according to claim 1, characterized in that: The energy storage unit can accept 220V and 380V mains power supply, and the energy supply unit can support 220V and 380V external discharge.

3. The outdoor emergency wind-solar-storage-charging integrated power supply according to claim 1, characterized in that: The light energy supply mechanism (3) further comprises a column (308), and the column (308) is fixedly connected to the outer wall of the bottom end of the central support plate (310); the inner wall of the bottom end of the main box (1) is fixedly connected to a sleeve (301), and the column (308) is movably connected to the sleeve (301).

4. The outdoor emergency wind-solar-storage-charging integrated power supply according to claim 3, characterized in that: Slots (309) are provided on both sides of the sleeve (301), and screw holes (302) are provided on both sides of the sleeve (301). Screws (303) are engaged in the screw holes (302), and the ends of the screws (303) are pressed against the outer wall of the column (308).

5. The outdoor emergency wind-solar-storage-charging integrated power supply according to claim 4, characterized in that: The two opposing sides of the upright column (308) are respectively connected to a first support rod (305) via a hinge, and one end of the first support rod (305) is fixedly connected to a first elastic hook (307), wherein the bottom ends of the two first support plates (304) are fixedly connected to a limit hanging rod (306), and the first elastic hook (307) is hung on the limit hanging rod (306).

6. The outdoor emergency wind-solar-storage-charging integrated power supply according to claim 5, characterized in that: The outer walls on both sides facing each of the first support plates (304) and the outer walls on both sides facing each of the central support plates (310) are respectively fixedly connected with a square support block (312) and a limiting support rod (311), and the two adjacent square support blocks (312) are simultaneously and movably connected with a sliding sleeve (314), and the two ends of the sliding sleeve (314) are respectively fixedly connected with a second elastic hook (313) and a third elastic hook (315), and the second elastic hook (313) and the third elastic hook (315) are respectively and correspondingly connected to the limiting support rod (311).

7. The outdoor emergency wind-solar-storage-charging integrated power supply according to claim 1, characterized in that: The wind energy supply mechanism (6) further comprises a first special-shaped rod (603) fixedly connected to one side of the first support block (602), and a second special-shaped rod (612) is fitted on one end of the first special-shaped rod (603), one end of the second special-shaped rod (612) is movably clamped in the first special-shaped rod (603) via a clamping frame (613), and special-shaped sleeves (604) are movably sleeved on the outside of the first special-shaped rod (603) and the second special-shaped rod (612).

8. The outdoor emergency wind-solar-storage-charging integrated power supply according to claim 7, characterized in that: One end of the second special-shaped rod (612) is fixedly connected to a screw rod (611), and the screw rod (611) is connected to the second support block (610). One end of the special-shaped sleeve (604) is movably connected to a screw tube (606) through a clamping ring (605), and the screw tube (606) is engaged with the outside of the screw rod (611).

9. The outdoor emergency wind-solar-storage-charging integrated power supply according to claim 1, characterized in that: The water energy supply mechanism (7) further comprises a first synchronous wheel (707) fixedly connected to one side of the turbine blade (708), and the first synchronous wheel (707) is linked to a second synchronous wheel (713) via a synchronous belt (706), and one side of the second synchronous wheel (713) is fixedly connected to a spur gear (705).

10. The outdoor emergency wind-solar-storage-charging integrated power supply according to claim 9, characterized in that: The spur gear (705) is meshed with a crown gear (704), and the bottom end of the crown gear (704) is connected to the top end of the outer support frame (712) through a bearing seat (714). The top end of the crown gear (704) is fixedly connected to a third special-shaped rod (703), and a clamping sleeve (702) is movably clamped on the third special-shaped rod (703), and one end of the clamping sleeve (702) is fixedly connected to a fan blade (701).

Citation Information

Patent Citations

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