Portable wind-solar storage mobile power supply
Through the integrated design of portable wind, solar and energy storage mobile power supplies, the problems of storage and damage when using wind, solar and energy storage mobile power supplies outdoors have been solved, achieving portability and efficient power generation, and meeting the needs of long-term outdoor power consumption.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- POWERCHINA HUADONG ENG CORP LTD
- Filing Date
- 2025-07-18
- Publication Date
- 2026-07-28
AI Technical Summary
Existing wind, solar, and energy storage mobile power supplies cannot be effectively stored when not in use, take up a lot of space, are easily damaged, and cannot meet the long-term, high-power power demand.
A portable wind-solar-storage mobile power supply was designed, including a storage box, a wind power generation device, a photovoltaic panel, and an energy storage device. The storage and rapid deployment of each component are achieved through positioning and installation clamping components. The energy storage device is used as a support base to switch the power acquisition method. The integrated design reduces the risk of collision.
It achieves portable storage, reduces the risk of component damage, improves the applicability and power generation efficiency of the equipment, and meets the needs of long-term outdoor power use.
Smart Images

Figure CN224570882U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of mobile power technology, and in particular to a portable wind, solar and energy storage mobile power supply. Background Technology
[0002] With the development of technology and the diversification of people's lifestyles, the demand for convenient and reliable power sources is increasing in scenarios such as outdoor travel, fieldwork, and emergency rescue. Traditional portable power banks usually rely on pre-charged batteries with limited capacity, and when timely charging is not possible, they cannot meet the needs of long-term, high-power power consumption, which greatly limits their application in outdoor scenarios.
[0003] Currently, mobile power supplies that integrate wind, solar, and energy storage are mainly used for outdoor travel. These power supplies integrate renewable energy generation technologies such as solar and wind power, and are equipped with energy storage devices to achieve autonomous power generation and energy storage in outdoor environments, providing users with more durable power support.
[0004] However, current wind, solar and energy storage mobile power supplies cannot effectively store their various power generation components and energy storage devices when not in use, occupying a large space and making them unsuitable for outdoor carrying and transportation. In addition, during the storage process, the components lack reasonable storage layout and protection measures, making them prone to damage due to mutual collisions, which affects the service life and safety of the equipment.
[0005] Therefore, there is an urgent need for a portable wind, solar and energy storage mobile power source with a lightweight, integrated, and modular design that can provide stable power in various natural environments. Summary of the Invention
[0006] The technical problem to be solved by this utility model is to provide a portable wind, solar and energy storage mobile power source to address the above-mentioned problems.
[0007] The technical solution adopted by this utility model is: a portable wind, solar and energy storage mobile power supply, comprising:
[0008] The storage box has multiple storage compartments inside;
[0009] The wind power generation device is capable of generating electricity from wind power when in operation and storing it in a storage cavity when in storage mode.
[0010] Photovoltaic panels are embedded in the outer wall of the storage box. They can generate electricity from solar energy when in operation and store it in the storage cavity when stored.
[0011] The energy storage device is electrically connected to both the wind power generation device and the photovoltaic panel. It can store the electrical energy generated by the wind power generation device or the photovoltaic panel when it is in operation, and store it in the storage cavity when it is in storage mode.
[0012] The positioning and clamping component can lock the rotation angle of the storage box to unfold the photovoltaic panel when in operation, and store it in the storage cavity when in storage mode.
[0013] The mounting clamping assembly is installed on the energy storage device. The mounting end of the mounting clamping assembly is independently hinged to the wind power generation device and the positioning clamping assembly, so that the wind power generation device or the positioning clamping assembly at the mounting end can be replaced to switch the power acquisition mode of the energy storage device. It can provide support for the wind power generation device or the storage box when in operation and store it in the storage cavity when in storage.
[0014] Through the aforementioned technical means, the storage box can store the wind power generation device, energy storage device, positioning clamping component, and installation clamping component in the storage state. In the working state, the energy storage device and installation clamping component can be taken out and assembled. Depending on the environment, the wind power generation device or the storage box with embedded photovoltaic panels can be installed at the installation end of the installation clamping component to achieve switching of power acquisition mode and improve the applicability of the equipment.
[0015] In some embodiments, the storage box includes a half-box body with a storage cavity inside. A photovoltaic panel is embedded on the outer wall of the half-box body. The two half-box bodies are arranged symmetrically and hinged together. When the two half-box bodies are closed, they can be locked by fasteners.
[0016] In some embodiments, the mounting clamping assembly includes a sliding plate, a support rod, and a first positioning device. The top of the energy storage device has a guide groove along its own axial direction, and the sliding plate is slidably installed in the guide groove. The top of the sliding plate has a receiving groove, and the support rod is rotatably connected in the receiving groove. A locking member is provided inside the receiving groove, and the support rod can be rotatably received into the receiving groove. The locking member can fix the rotation angle of the support rod. The wind power generation device or the positioning clamping assembly can be independently hinged to the end of the support rod away from the sliding plate. The sliding plate is provided with a first positioning device, and a fastener is provided between the sliding plate and the energy storage device. The first positioning device is used to clamp and install the sliding plate on the mounting protrusion that can be clamped and fixed, and the fastener is used to lock the sliding position of the sliding plate relative to the guide groove.
[0017] In some embodiments, the first positioning device includes a threaded rod, a threaded sleeve, and a clamping plate. The sliding plate has an L-shaped structure. The threaded sleeve is embedded in the protrusion of the side wall of the energy storage device. The threaded rod is threaded through the threaded sleeve. The end of the threaded rod is rotatably connected to the clamping plate. The side wall of the energy storage device and the clamping plate cooperate to clamp both sides of the mounting protrusion.
[0018] In some embodiments, the locking member includes a screw and a friction block. Rotating members are rotatably embedded on both sides of the inner recess of the sliding plate. The rotating members are connected to the support rod. At least one side wall of the sliding plate is drilled with a threaded screw. The end of the screw is connected to a friction block that can abut against the side wall of the rotating member. The screw can be screwed inward and drive the friction block to press the rotating member to fix the rotation angle of the support rod.
[0019] In some embodiments, the positioning and clamping assembly includes a clamping frame and a second positioning device. The clamping frame has a U-shaped structure. The back side of the clamping frame is hinged to the end of the support rod away from the sliding plate via a first threaded hinge rod and a nut. The clamping frame can clamp the two half-boxes together. The clamping frame is provided with a second positioning device, which can fix the clamping frame and the half-boxes.
[0020] In some embodiments, the second positioning device includes a threaded rod, a threaded sleeve, and a clamping plate. Threaded sleeves are embedded in the two side walls of the clamping frame, and threaded rods are hinged to the threaded sleeves. The end of the threaded rod located inside the clamping frame is rotatably connected to the clamping plate, so that the clamping plates at the ends of the threaded rods on both sides can cooperate to clamp the side walls of the two half-boxes.
[0021] In some embodiments, the fastener includes a bolt, the guide groove is provided with a plurality of bolt holes spaced apart inside, and the sliding plate is provided with a through bolt hole. The bolt holes on the guide groove and the bolt holes on the sliding plate can be threadedly connected to the bolt, so that the bolt can pass through the sliding plate and be screwed into the bolt hole of the guide groove to lock the relative position of the sliding plate and the guide groove.
[0022] In some embodiments, the wind power generation device includes a wind turbine and wind turbine blades. The end of the support rod away from the sliding plate is hinged to the wind turbine via a second threaded hinge rod and a nut. Multiple wind turbine blades are rotatably mounted on the output end of the wind turbine.
[0023] In some embodiments, a protective sleeve is bonded to the periphery of the photovoltaic panel.
[0024] The beneficial effects of this utility model are:
[0025] 1. Using an energy storage device as a supporting base, a wind power generation device or a storage box with embedded photovoltaic panels is connected and supported by mounting and clamping components. Users can choose between wind power or photovoltaic mode according to their actual needs. By allowing the replacement of the wind power generation device or storage box, the power acquisition method can be switched. The photovoltaic panels can be used normally in the sun during the day, while the wind power generation device can provide power output in the wind in conjunction with the energy storage system, thereby expanding the applicability of the equipment. At the same time, the wind power generation device, energy storage device, positioning and clamping components, and mounting and clamping components can all be stored in the storage compartments of the storage box. Centralized storage facilitates carrying, reduces the risk of damage caused by collisions between components, ensures the service life of each component, and reduces the inconvenience of carrying multiple independent devices outdoors. It also supports quick deployment and storage, making it suitable for emergency situations or frequent relocation scenarios. Attached Figure Description
[0026] Figure 1 This is a structural diagram of the storage box in its closed state in this application.
[0027] Figure 2 This is a structural diagram of the application in its stored state.
[0028] Figure 3 This is a first-view assembly structure diagram of the photovoltaic mode of this application.
[0029] Figure 4 This is a schematic diagram of the second-view assembly structure in photovoltaic mode of this application.
[0030] Figure 5 This is a schematic diagram of the structure of this application in wind power mode.
[0031] Figure 6 This is a schematic diagram of the structure for installing the clamping assembly in this application.
[0032] Figure 7 This is a schematic diagram of the positioning and clamping component in this application.
[0033] Figure 8 This is a schematic diagram of the structure of the first positioning device in this application.
[0034] Figure 9 This is a cross-sectional structural diagram of the sliding plate in this application.
[0035] Explanation of reference numerals in the attached figures:
[0036] 100. Storage box; 200. Storage cavity; 300. Photovoltaic panel; 310. Protective cover; 400. Positioning and clamping assembly; 410. Clamping frame; 420. Second positioning device; 421. Threaded sleeve; 422. Threaded rod; 423. Clamping plate; 430. First threaded hinge rod; 500. Wind power generation device; 510. Wind turbine; 520. Wind turbine blade; 530. Second threaded hinge rod; 600. Energy storage device; 610. Guide groove; 700. Mounting and clamping assembly; 710. Sliding plate; 720. Storage groove; 730. First positioning device; 740. Screw; 750. Friction block; 760. Rotating component; 770. Bolt hole; 800. Support rod; 900. Mounting protrusion.
[0037] This specification includes references to "one embodiment" or "implementation". The use of the phrase "in one embodiment" or "in an embodiment" does not necessarily refer to the same embodiment. Specific features, structures, or characteristics may be combined in any suitable manner consistent with this disclosure.
[0038] The term "comprising" is open-ended. As used in the appended claims, it does not exclude additional structures or steps.
[0039] "First," "second," etc. As used in this article, these terms serve as labels for the nouns preceding them and do not imply any type of ordering (e.g., spatial, temporal, logical, etc.). Detailed Implementation
[0040] To enable those skilled in the art to better understand the present invention, the technical solution of the present invention will be further described below with reference to specific embodiments.
[0041] Combination Figures 1 to 7As shown, this embodiment is a portable wind-solar-storage mobile power supply, including a storage box 100, a wind power generation device 500, a photovoltaic panel 300, an energy storage device 600, a positioning clamping assembly 400, and an installation clamping assembly 700. The storage box 100 has multiple storage cavities 200 inside. When in the storage state, the multiple storage cavities 200 can correspondingly store the wind power generation device 500, the energy storage device 600, the positioning clamping assembly 400, and the installation clamping assembly 700. When in the working state, the wind power generation device 500, the energy storage device 600, the positioning clamping assembly 400, and the installation clamping assembly 700 are taken out and assembled accordingly. The photovoltaic panel 300 is embedded in the outer wall of the storage box 100. The photovoltaic panel 300 can generate electricity through solar energy when in the working state, and the wind power generation device 500 can generate wind power when in the working state. Using the energy storage device 600 as a supporting base, the energy storage device 600 is equipped with a mounting clamping assembly 700. The mounting end of the mounting clamping assembly 700 can be independently hinged to the wind power generation device 500 or the positioning clamping assembly 400. The mounting clamping assembly 700 can provide support for the wind power generation device 500 or the positioning clamping assembly 400. The positioning clamping assembly 400 is used to lock the rotation angle of the storage box 100 to unfold the photovoltaic panel 300. The photovoltaic panel 300 or the wind power generation device 500 is electrically connected to the energy storage device 600. The energy storage device 600 can store the electrical energy generated by the wind power generation device 500 or the photovoltaic panel 300 when it is in operation. Thus, the power acquisition mode of the energy storage device 600 can be switched by changing the mounting end of the wind power generation device 500 or the positioning clamping assembly 400.
[0042] By installing photovoltaic panels 300 and wind power generation devices 500, the system can generate electricity during the day using solar or wind power, and at night it can generate electricity using wind energy, effectively improving the power generation efficiency. This allows the device to be used during the day when the photovoltaic modules generate electricity and store energy, and at night when there is wind, it can also generate electricity and store energy, meeting the needs of travel and emergency power supply at night. Through the cooperation between the positioning clamping component 400 and the installation clamping component 700, the photovoltaic panels 300, wind power generation devices 500, and energy storage devices 600 can be quickly installed in suitable positions, and the angles can be adjusted according to the actual environment to improve power generation efficiency.
[0043] In some implementations, the storage box 100 includes a half-box body with a storage cavity 200 inside. A photovoltaic panel 300 is embedded on the outer wall of the half-box body. The two half-box bodies are arranged symmetrically and hinged together. When the two half-box bodies are closed, they can be locked by fasteners.
[0044] By hinged together with two semi-boxes, the design is compact and portable when folded. All components can be stored within the storage cavity 200, reducing overall space requirements. The storage cavity 200 also categorizes and organizes components, preventing collisions and damage. It is easily portable for various scenarios, including outdoor travel, fieldwork, and emergency rescue. When unfolded, the symmetrical semi-boxes can rotate and unfold to 180°, ensuring a larger tilt angle for the photovoltaic panels 300 and improving power generation efficiency.
[0045] Furthermore, a protective sleeve 310 is bonded to the periphery of the photovoltaic panel 300.
[0046] The protective cover 310 can effectively reduce the risk of damage to the photovoltaic panel 300 during transportation and storage, such as collisions and scratches, and extend the service life of the photovoltaic panel 300.
[0047] In some implementation schemes, such as Figure 3 , Figure 4 and Figure 6 As shown, the mounting clamping assembly 700 includes a sliding plate 710, a support rod 800, and a first positioning device 730. The top of the energy storage device 600 has a guide groove 610 along its own axial direction. The sliding plate 710 is slidably installed in the guide groove 610. The top of the sliding plate 710 has a storage groove 720. The support rod 800 is rotatably connected in the storage groove 720. A locking member is provided inside the storage groove 720. The support rod 800 can be rotatably stored in the storage groove 720. The locking member can fix the rotation angle of the support rod 800. The wind power generation device 500 or the positioning and clamping assembly 400 can be independently hinged to the end of the support rod 800 away from the sliding plate 710. The sliding plate 710 is provided with a first positioning device 730. Fasteners are provided between the sliding plate 710 and the energy storage device 600. The first positioning device 730 is used to clamp and install the sliding plate 710 on the mounting protrusion that can be clamped and fixed. The fasteners are used to lock the sliding position of the sliding plate 710 relative to the guide groove 610.
[0048] Furthermore, such as Figure 8 As shown, the first positioning device 730 includes a threaded rod 422, a threaded sleeve 421, and a clamping plate 423. The sliding plate 710 has an L-shaped structure. The threaded sleeve 421 is embedded in the protrusion of the side wall of the energy storage device 600. The threaded rod 422 is threaded through the threaded sleeve 421. The end of the threaded rod 422 is rotatably connected to the clamping plate 423. The side wall of the energy storage device 600 and the clamping plate 423 cooperate to clamp both sides of the mounting protrusion 900. Specifically, in this embodiment, the mounting protrusion 900 includes some protruding mounting structures of buildings, such as balcony glass, walls, and slabs.
[0049] By positioning the protruding mounting structure between the clamping plate 423 and the energy storage device 600, and tightening the threaded rod 422, the rotation of the threaded rod 422 drives the clamping plate 423 to move and abut against the protruding mounting structure, so that the clamping plate 423 and the energy storage device 600 can cooperate to securely clamp the protruding mounting structure, thereby enabling the device to be installed in a designated position.
[0050] Furthermore, such as Figure 9 As shown, the locking component includes a screw 740 and a friction block 750. A rotating component 760 is rotatably embedded on both sides of the receiving groove 720 of the sliding plate 710. The rotating component 760 is connected to a support rod 800. At least one side wall of the sliding plate 710 is drilled with a threaded screw 740. The end of the screw 740 is connected to a friction block 750 that can abut against the side wall of the rotating component 760. In this embodiment, the friction block 750 has a polygonal structure. The screw 740 can be screwed inward and drive the friction block 750 to press the rotating component 760, thereby increasing the friction force to fix the rotation angle of the support rod 800.
[0051] Furthermore, such as Figure 6 As shown, the fastener includes a bolt (not shown in the figure). The guide groove 610 has multiple bolt holes 770 spaced apart, the specific spacing of which is determined according to design requirements and adjustment accuracy. The sliding plate 710 has through bolt holes 770. Both the bolt holes 770 in the guide groove and the bolt holes 770 in the sliding plate 710 can be threaded onto the bolts, allowing the bolts to pass through the sliding plate and screw into the bolt holes 770 in the guide groove 610, thereby locking the relative position of the sliding plate 710 and the guide groove 610. Specifically, in this embodiment, the fastener can also employ a pin or similar structure.
[0052] When the sliding plate 710 slides within the guide groove 610 of the energy storage device 600, the sliding position of the sliding plate 710 relative to the guide groove 610 is adjusted to ensure that the bolt holes on the sliding plate 710 correspond to the bolt holes in the guide groove. Then, bolts are used to pass through the sliding plate 710 and the energy storage device 600 to fix the relative position of the sliding plate 710 and the energy storage device 600, thereby restricting the sliding of the sliding plate 710.
[0053] In some implementation schemes, such as Figure 3 and Figure 7As shown, the positioning and clamping assembly 400 includes a clamping frame 410 and a second positioning device 420. The clamping frame 410 has a U-shaped structure. The back side of the clamping frame 410 and the end of the support rod 800 away from the sliding plate 710 are hinged by a first threaded hinge rod 430 and a nut. The clamping frame 410 can clamp two rotating and unfolded half-boxes. The clamping frame 410 is provided with a second positioning device 420, which can fix the clamping frame 410 and the half-boxes to provide additional stability and prevent accidental slippage.
[0054] The first threaded hinge rod 430 allows the support rod 800 to rotate flexibly within a certain range, making it easy to adjust the angle of the storage box 100. Furthermore, the engagement of the first threaded hinge rod 430 with the nut enables it to withstand a weight of tens of kilograms during use, thus meeting the requirements for supporting the storage box 100 and the photovoltaic panel 300.
[0055] Furthermore, such as Figure 7 As shown, the second positioning device 420 includes a threaded rod 422, a threaded sleeve 421, and a clamping plate 423. Threaded sleeves 421 are embedded in the side walls of the clamping frame 410. Each threaded sleeve 421 is correspondingly hinged to a threaded rod 422. The end of the threaded rod 422 located inside the clamping frame 410 is rotatably connected to the clamping plate 423. The clamping plate 423 can slide relative to each other inside the clamping frame 410, so that the clamping plates 423 at the ends of the threaded rods 422 on both sides can cooperate to clamp the side walls of the two half-boxes.
[0056] The position of the clamping plate 423 can be adjusted by rotating the threaded rod 422. The clamping frame 410 is fixed by the relative rotation of the threaded sleeve 421 and the threaded rod 422. Specifically, due to the rotation of the threaded rod 422, the threaded rod 422 drives the clamping plate 423 to gradually move closer to the storage box 100. As the clamping plate 423 gradually approaches the storage box 100, the friction between the two increases continuously. The clamping plate 423 can provide a stable contact surface during clamping, and finally the U-shaped clamping frame 410 is firmly fixed on the storage box 100.
[0057] In some implementation schemes, such as Figure 5 As shown, the wind power generation device 500 includes a wind turbine 510 and wind turbine blades 520. The end of the support rod 800 away from the sliding plate 710 is hinged to the wind turbine 510 via a second threaded hinge rod 530 and a nut. Multiple wind turbine blades 520 are rotatably mounted on the output end of the wind turbine 510.
[0058] In windy conditions, the flowing air drives the wind turbine blades 520 to rotate at high speed, which in turn drives the rotor inside the wind turbine generator 510 to cut magnetic field lines through mechanical transmission, thereby generating electricity. The second threaded hinge rod 530 allows the wind power generation device 500 to rotate within a certain angle range, thus better generating electricity in the wind and significantly improving the utilization efficiency of wind energy.
[0059] The implementation principle of a portable wind, solar, and energy storage mobile power supply is as follows:
[0060] The two storage boxes 100 are hinged together, resulting in a compact and portable design when folded. All components can be stored within the storage compartments 200, minimizing overall space occupation. This makes it easy to carry during outdoor travel, fieldwork, or emergency rescue scenarios. The multiple storage compartments 200 also prevent damage from collisions between components, ensuring their lifespan. By incorporating photovoltaic panels 300 and a wind power generation device 500, it can generate electricity during the day using solar or wind power, ensuring normal operation even under windy conditions and guaranteeing power efficiency to meet the needs of travel and emergency power supply.
[0061] In use, open the storage box 100, take out the mounting clamping assembly 700 and the energy storage device 600, and rotate the threaded rod 422 of the first positioning device 730 to make the clamping plate 423 drive the L-shaped sliding plate 710 to slide in the guide groove 610 of the energy storage device 600 to a suitable position. Secure the sliding plate 710 and the energy storage device 600 with fasteners, and then rotate the support rod 800 to unfold it to a suitable angle. Use the locking device to fix the rotation angle of the support rod 800.
[0062] During photovoltaic power generation, the photovoltaic panel 300 is unfolded, and the U-shaped clamping frame 410 is fastened onto the unfolded storage box 100. By rotating the threaded rod 422 in the second positioning device 420, the clamping plates 423 at both ends clamp the storage box 100. The mounting end of the support rod 800 is connected to the back side of the clamping frame 410 through the first threaded hinge rod 430 and the corresponding thread of the nut. The angle is adjusted to support the storage box 100, so that the photovoltaic panel 300 can receive solar energy at a suitable angle.
[0063] When generating wind power, the wind turbine blades 520 and the wind turbine generator 510 of the wind power generation device 500 are taken out from the storage cavity 200. The wind turbine blades 520 are installed at the output end of the wind turbine generator 510. The mounting end of the support rod 800 is connected to the wind turbine generator 510 by the second threaded hinge rod 530 and the nut thread. The angle is adjusted and the wind power generation device 500 is installed in a suitable position so that it can better receive wind energy.
[0064] The photovoltaic panel 300 or wind power generation device 500 starts working, storing the generated electrical energy in the energy storage device 600, which can then provide power. This portable wind-solar-storage mobile power supply can be customized in different capacities according to user needs. For ease of carrying, the size of the energy storage device 600 can be gradually increased from the capacity of a standard portable power bank to meet customers' portability and power consumption requirements. The size of the portable device is customized based on the principles of capacity and portability.
[0065] The above are all preferred embodiments of this utility model, and are not intended to limit the scope of protection of this utility model. Therefore, all equivalent changes made to the structure, shape and principle of this utility model should be covered within the scope of protection of this utility model.
Claims
1. A portable wind, solar, and energy storage mobile power supply, characterized in that, include: The storage box has multiple storage compartments inside; The wind power generation device is capable of generating electricity from wind power when in operation and storing it in a storage cavity when in storage mode. Photovoltaic panels are embedded in the outer wall of the storage box. They can generate electricity from solar energy when in operation and store it in the storage cavity when stored. The energy storage device is electrically connected to both the wind power generation device and the photovoltaic panel. It can store the electrical energy generated by the wind power generation device or the photovoltaic panel when it is in operation, and store it in the storage cavity when it is in storage mode. The positioning and clamping component can lock the rotation angle of the storage box to unfold the photovoltaic panel when in operation, and store it in the storage cavity when in storage mode. The mounting clamping assembly is installed on the energy storage device. The mounting end of the mounting clamping assembly is independently hinged to the wind power generation device and the positioning clamping assembly, so that the wind power generation device or the positioning clamping assembly at the mounting end can be replaced to switch the power acquisition mode of the energy storage device. It can provide support for the wind power generation device or the storage box when in operation and store it in the storage cavity when in storage.
2. A portable wind, solar, and energy storage power source according to claim 1, characterized in that: The storage box includes a half-box body with a storage cavity inside. A photovoltaic panel is embedded on the outer wall of the half-box body. The two half-box bodies are arranged symmetrically and hinged together. When the two half-box bodies are closed, they can be locked by fasteners.
3. A portable wind, solar, and energy storage mobile power source according to claim 2, characterized in that: The mounting and clamping assembly includes a sliding plate, a support rod, and a first positioning device. The top of the energy storage device has a guide groove along its own axial direction. The sliding plate is slidably installed in the guide groove. The top of the sliding plate has a receiving groove. The support rod is rotatably connected in the receiving groove. A locking member is provided inside the receiving groove. The support rod can be rotatably received into the receiving groove. The locking member can fix the rotation angle of the support rod. The wind power generation device or the positioning and clamping assembly can be independently hinged to the end of the support rod away from the sliding plate. The sliding plate is provided with a first positioning device. A fastener is provided between the sliding plate and the energy storage device. The first positioning device is used to clamp and install the sliding plate on the mounting protrusion that can be clamped and fixed. The fastener is used to lock the sliding position of the sliding plate relative to the guide groove.
4. A portable wind, solar, and energy storage mobile power source according to claim 3, characterized in that: The first positioning device includes a threaded rod, a threaded sleeve, and a clamping plate. The sliding plate has an L-shaped structure. The threaded sleeve is embedded in the protrusion of the side wall of the energy storage device. The threaded rod is threaded through the threaded sleeve. The end of the threaded rod is rotatably connected to the clamping plate. The side wall of the energy storage device and the clamping plate cooperate to clamp both sides of the mounting protrusion.
5. A portable wind, solar, and energy storage mobile power source according to claim 3, characterized in that: The locking component includes a screw and a friction block. Rotating components are rotatably embedded on both sides of the inner recess of the sliding plate. The rotating components are connected to the support rod. At least one side wall of the sliding plate is drilled with a threaded screw. The end of the screw is connected to a friction block that can abut against the side wall of the rotating component. The screw can be screwed inward and drive the friction block to press the rotating component to fix the rotation angle of the support rod.
6. A portable wind, solar, and energy storage mobile power source according to claim 3, characterized in that: The positioning and clamping assembly includes a clamping frame and a second positioning device. The clamping frame has a U-shaped structure. The back side of the clamping frame is hinged to the end of the support rod away from the sliding plate via a first threaded hinge rod and a nut. The clamping frame can clamp the two half-boxes together. The clamping frame is provided with a second positioning device, which can fix the clamping frame and the half-boxes.
7. A portable wind, solar, and energy storage mobile power source according to claim 6, characterized in that: The second positioning device includes a threaded rod, a threaded sleeve, and a clamping plate. Threaded sleeves are embedded in the two side walls of the clamping frame, and threaded rods are hinged to the threaded sleeves. The end of the threaded rod located inside the clamping frame is rotatably connected to the clamping plate, so that the clamping plates at the ends of the threaded rods on both sides can cooperate to clamp the side walls of the two half-boxes.
8. A portable wind, solar, and energy storage mobile power source according to claim 3, characterized in that: The fastener includes a bolt, and the guide groove has multiple bolt holes spaced apart inside. The sliding plate has bolt holes that pass through it. The bolt holes on the guide groove and the bolt holes on the sliding plate can be threaded to the bolt, so that the bolt can pass through the sliding plate and be screwed into the bolt hole in the guide groove to lock the relative position of the sliding plate and the guide groove.
9. A portable wind, solar, and energy storage power source according to claim 3, characterized in that: The wind power generation device includes a wind turbine and wind turbine blades. The end of the support rod away from the sliding plate is hinged to the wind turbine via a second threaded hinge rod and a nut. Multiple wind turbine blades are rotatably mounted on the output end of the wind turbine.
10. A portable wind, solar, and energy storage mobile power source according to claim 2, characterized in that: The photovoltaic panel is fitted with a protective sleeve on its periphery.