Storage type light storage all-in-one machine convenient to erect
By designing a retractable photovoltaic-storage integrated unit, and utilizing the storage support bracket and tilting bracket combined with telescopic rods, rollers and other structures, the problems of large footprint and poor flexibility of photovoltaic energy storage devices are solved. This enables flexible deployment and storage of photovoltaic panels, increases the light-receiving area, simplifies disassembly and maintenance, and adapts to the power generation needs of home and outdoor scenarios.
Patent Information
- Application Number
- CN202511455154.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-13
- Publication Date
- 2026-02-06
AI Technical Summary
Existing photovoltaic energy storage devices occupy a large area, have limited flexibility, are difficult to move, and are complex to disassemble and maintain. In addition, the area of the photovoltaic panels is limited, making it difficult to use them flexibly in home temporary power generation or outdoor entertainment scenarios.
A retractable photovoltaic-storage integrated unit was designed for easy installation. Through the cooperation of the storage support and the tilting support, the photovoltaic panels can be flexibly unfolded and retracted using structures such as telescopic rods, rollers and synchronization frames. Combined with the automatic adjustment of the photosensitive sensor to the sun and the servo motor to control the rotation, a large area of light reception and stable support are achieved.
It enables flexible deployment and storage of photovoltaic panels, increases the light-receiving area, improves the mobility and portability of the device, simplifies the disassembly and maintenance process, and can quickly adapt to the power generation needs of different scenarios.
Smart Images

Figure CN121485571A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of photovoltaic power generation technology, specifically to a retractable, easy-to-install integrated photovoltaic and energy storage unit. Background Technology
[0002] As is well known, photovoltaic power generation is a clean and renewable technology that uses the photovoltaic effect of semiconductor materials to directly convert solar radiation energy into electrical energy. Its core principle is that the semiconductor in the photovoltaic cell absorbs photons to generate electrons. A complete system usually includes photovoltaic modules, inverters, and support systems. Grid-connected systems can be connected to the public power grid, while off-grid systems need to be equipped with energy storage batteries, and also require combiner boxes and distribution cabinets to ensure circuit safety and monitoring systems for real-time operation and maintenance.
[0003] Existing photovoltaic energy storage devices generally occupy a large area and have limited flexibility. They are also not easy to move, their disassembly and maintenance are complicated, they rely on professional tools for installation, and they take up a lot of space when stored. They are difficult to use in a timely and flexible manner in scenarios such as temporary power generation at home or outdoor entertainment.
[0004] Based on the problems mentioned above, we found that existing photovoltaic and energy storage devices have difficulty avoiding these problems at the same time. Even though there are some portable photovoltaic and energy storage integrated devices, the area of the photovoltaic panel is relatively limited due to the need for flexible handling and movement. Therefore, we propose a retractable photovoltaic and energy storage integrated machine that can be flexibly folded and slid to increase the coverage area of the photovoltaic panel and can be easily stored for movement or installation. Summary of the Invention
[0005] (a) Technical problems to be solved
[0006] To address the shortcomings of existing technologies, this invention provides a retractable and easy-to-install integrated photovoltaic and energy storage unit. It has the advantages of being able to flexibly fold and slide to increase the coverage area of photovoltaic panels, and being easy to store for relocation or installation.
[0007] (II) Technical Solution
[0008] The above-mentioned technical objective of the present invention is achieved through the following technical solution: a retractable and easy-to-install integrated photovoltaic and energy storage unit, including an energy storage bracket, an inclined bracket welded to the top of the energy storage bracket, a photovoltaic panel assembly bolted to the top of the inclined bracket, a hollow frame bolted to the inner side of the inclined bracket, a telescopic rod slidably connected to the inner side of the hollow frame, a side frame fixedly connected to the right side of the telescopic end of the telescopic rod, a load-bearing frame rotatably connected to the outer side of the side frame, a housing provided inside the energy storage bracket, a base sleeve installed on the side of the load-bearing frame away from the side frame, two feet rotatably connected to the inner side of the base sleeve, rollers installed on the inner side of the feet, a chassis fixedly connected to the bottom of the energy storage bracket, a turntable rotatably connected to the bottom of the chassis, and a placement seat fixedly connected to the bottom of the turntable;
[0009] The photovoltaic panel assembly includes four panels, with connecting rails fixedly connected to the front and rear sides of each panel. Sliders are slidably connected to the outer side of the connecting rails, and a synchronization frame is fixedly connected between two adjacent sliders by bolts.
[0010] By adopting the above technical solution, a storage support and an inclined support are set up in combination. The storage support and the chassis are used to store internal electrical components, while the inclined support is used to install photovoltaic panels at an angle. When erecting the photovoltaic power generation device, the structure can be placed on relatively stable terrain. The telescopic rod is pulled out along the hollow frame and rotated along the side frame. The load-bearing frame contacts the ground through the bottom feet and rollers. Then, the remaining panels slide along the plates fixed to the inclined support in sequence to unfold them and form a larger light-receiving area. While sliding, the slider connected by the synchronous frame moves along the connecting slide rail to limit the sliding path. Since the panels are set at an angle, a good light-receiving surface can be maintained. At the same time, the bottom of each of the four panels can contact the top of the telescopic rod for auxiliary support. The set base and turntable can make the top structure rotate along the placement seat so that the photovoltaic panels face the direction of stronger sunlight. While rotating, the extended part of the panels, as well as the bottom telescopic rod and the side frame, can rotate smoothly due to the rotation of the rollers at the bottom of the load-bearing frame.
[0011] The invention is further configured such that: a rotating shaft is fixedly connected to the outer side of the side frame, and the outer side of the rotating shaft is rotatably connected to the force-bearing frame; the force-bearing frame is made of two metal frames, and a pivot pin is rotatably connected between the two metal frames.
[0012] By adopting the above technical solution, the load-bearing frame can be rotated along the side frame by setting a pivot. When it is not in use and is stored away, the load-bearing frame can also be rotated to a horizontal position and moved back to the inside of the inclined support along with the side frame.
[0013] The present invention is further configured such that: the outer side of the pivot pin is rotatably connected to the bottom sleeve, the inner side of the bottom sleeve is provided with a torsion spring, the two ends of the torsion spring are respectively fixedly connected to the bottom sleeve and the bottom foot, and the roller is rotatably connected to the inner side of the bottom foot away from the bottom sleeve.
[0014] By adopting the above technical solution, a torsion spring is set up so that when the two feet are together in the storage state, the torsion spring stores force, and the rollers and the bottom feet are restricted between the two metal frames of the load-bearing frame. When it is needed for erection and use, the entire bottom sleeve can be rotated to the bottom along the pivot pin. The torsion spring rebounds and the two bottom feet unfold, making it more stable when in contact with the ground through the rollers. At the same time, it makes the load-bearing frame less likely to rotate without external force.
[0015] The present invention is further configured such that: an inverter, a combiner, and an energy storage device are installed inside the chassis; a hollow frame is fixedly connected to the bottom of the inner side of the energy storage bracket; and the top of the hollow frame is connected to the chassis by bolts.
[0016] By adopting the above technical solution, the inverter, combiner and energy storage devices installed inside the chassis can effectively protect these components. Since the bottom of the chassis is installed with the hollow frame, the exterior of the chassis maintains a large gap with other structures to facilitate heat dissipation of the auxiliary structure.
[0017] The present invention is further configured such that: a servo motor is fixedly connected to the top of the left side of the storage bracket, a drive gear is fixedly connected to the output end of the servo motor, and a driven gear is fixedly connected to the bottom of the turntable, with the drive gear and the driven gear meshing together.
[0018] By adopting the above technical solution, and by setting a servo motor in conjunction with a drive gear and a driven gear, when it is necessary to control the rotation of the entire device, the drive gear can be driven to rotate by driving the servo motor. At this time, the storage bracket fixed to it will rotate along the driven gear and the turntable meshing with it.
[0019] The present invention is further configured such that: a protective shell is provided on the outside of the storage support, the protective shell is located on the outside of the inclined support and the photovoltaic panel assembly, and buckles are fixedly connected to the front and rear sides of the storage support, and hooks are fixedly connected to the front and rear sides of the protective shell, and the buckles and hooks are engaged.
[0020] By adopting the above technical solution, a protective shell is set up to protect the structure when stored, and disassembly can be achieved through quick snap-fitting of buckles and hooks.
[0021] The present invention is further configured such that: photosensitive sensors are installed on both sides, front and rear sides of the storage support and on the front and rear sides of the inclined support, and the photosensitive sensors on the front and rear sides of the inclined support face the top and bottom respectively.
[0022] Using the above technical solution, by setting up multiple photosensitive sensors, as the sun moves, the light intensity of the photosensitive sensor closer to the sun gradually increases compared to the photosensitive sensor farther away from the sun, creating a light difference. The photosensitive sensors facing the top and bottom detect the light intensity in real time. The higher the sun's altitude angle, the stronger the light intensity of the photosensitive sensor facing the top, while the difference is larger for the photosensitive sensor facing the bottom due to weak ground reflection. The lower the sun's altitude angle, the weaker the light intensity of the top photosensitive sensor, while the relatively stronger the reflected light from the bottom photosensitive sensor, resulting in a smaller difference. This light direction can be used to determine the rotation direction of the basic control servo motor control device.
[0023] The invention is further configured such that: a contact block is fixedly connected to the top plate, a contact piece is fixedly connected to the top of the side frame, a magnetic block is provided on the inner side of the contact block, and the magnetic block and the contact piece are bonded together.
[0024] By adopting the above technical solution, and by setting contact blocks and contact pieces, after the top plate slides out along the bottom plate, it can be quickly spliced and positioned by the magnetic attraction of the magnetic blocks and contact pieces.
[0025] The present invention is further configured such that: both sides of the connecting guide rail are fixedly connected to limit blocks, and the limit blocks and the slider are used in conjunction.
[0026] By adopting the above technical solution, a limit block is set to restrict the sliding position of the slider and avoid the loosening of the structure due to excessive sliding.
[0027] The present invention is further configured such that the photovoltaic panel assembly is inclined, and the bottom of the panel is in contact with the telescopic rod.
[0028] By adopting the above technical solution, the photovoltaic panel components can be set to better contact the direction of sunlight, and at the same time, the bottom of the panels can be aligned in a straight line when unfolded, and contact and support the telescopic rod.
[0029] (III) Beneficial Effects
[0030] Compared with the prior art, the present invention provides a retractable and easy-to-install integrated optical storage unit, which has the following advantages:
[0031] This retractable, easy-to-install photovoltaic-storage integrated unit utilizes a storage unit bracket and a tilting bracket. The storage unit bracket and chassis store internal electrical components, while the tilting bracket is used to install the photovoltaic panels at an angle. During installation and power generation, the structure can be placed on relatively stable terrain. The telescopic rod is extended along the hollow frame, and the load-bearing frame rotates along the side frame, contacting the ground through the feet and rollers. Then, the remaining panels slide sequentially along the panels fixed to the tilting bracket, unfolding them to form a larger light-receiving area. During sliding, the slider connected to the synchronous frame moves along the connecting rail to limit the sliding path. Because the panels are tilted, a good light-receiving surface is maintained, and the bottoms of all four panels can contact the top of the telescopic rod for auxiliary support. The base and turntable allow the top structure to rotate along the placement seat, facilitating the orientation of the photovoltaic panels towards stronger sunlight. During rotation, the extended panels, the bottom telescopic rod, and the side frame can rotate smoothly due to the rotation of the rollers at the bottom of the load-bearing frame. Attached Figure Description
[0032] Figure 1 This is a schematic diagram of the external structure in this invention;
[0033] Figure 2 This is a schematic diagram of the main structure of the present invention;
[0034] Figure 3 This is a schematic diagram of the structure of the photovoltaic panel module in this invention;
[0035] Figure 4 This is a schematic diagram of the structure of the bottom sleeve in this invention;
[0036] Figure 5 This is a schematic diagram of the plate structure in this invention;
[0037] Figure 6 This is a schematic diagram of the right side of the main structure in this invention.
[0038] In the diagram: 1. Storage support bracket; 2. Inclined support bracket; 3. Photovoltaic panel assembly; 31. Panel body; 32. Connecting guide rail; 33. Slider; 34. Synchronization frame; 4. Hollow frame; 5. Telescopic rod; 6. Side frame; 7. Load-bearing frame; 8. Chassis; 9. Foot; 10. Roller; 11. Chassis; 12. Turntable; 13. Placement seat; 14. Turning pin; 15. Base sleeve; 16. Torsion spring; 17. Hollow frame; 18. Servo motor; 19. Protective shell; 20. Photosensitive sensor; 21. Contact block; 22. Contact piece; 23. Limiting block. Detailed Implementation
[0039] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0040] Example
[0041] Please see Figure 1-6 A retractable and easy-to-install photovoltaic-storage integrated unit includes a storage unit support 1, an inclined support 2 welded to the top of the storage unit support 1, a photovoltaic panel assembly 3 bolted to the top of the inclined support 2, a hollow frame 4 bolted to the inner side of the inclined support 2, a telescopic rod 5 slidably connected to the inner side of the hollow frame 4, a side frame 6 fixedly connected to the right side of the telescopic end of the telescopic rod 5, a load-bearing frame 7 rotatably connected to the outer side of the side frame 6, a housing 8 provided inside the storage unit support 1, a base sleeve 15 installed on the side of the load-bearing frame 7 away from the side frame 6, two feet 9 rotatably connected to the inner side of the base sleeve 15, rollers 10 installed on the inner side of the feet 9, a chassis 11 fixedly connected to the bottom of the storage unit support 1, a turntable 12 rotatably connected to the bottom of the chassis 11, and a placement seat 13 fixedly connected to the bottom of the turntable 12.
[0042] The photovoltaic panel module 3 includes four panels 31. Connecting rails 32 are fixedly connected to the front and rear sides of each panel 31. Slider 33 is slidably connected to the outer side of the connecting rails 32. A synchronization frame 34 is fixedly connected between two adjacent sliders 33 by bolts.
[0043] By setting up a storage support 1 and an inclined support 2, the storage support 1 and the chassis 8 are used to store internal electrical components, while the inclined support 2 is used to install the photovoltaic panel assembly 3 at an angle. During the erection and power generation operation, the structure can be placed on relatively stable terrain. The telescopic rod 5 is pulled out along the hollow frame 4, and the load-bearing frame 7 is rotated along the side frame 6. It contacts the ground through the base 9 and rollers 10. Then, the remaining plates 31 are slid sequentially along the plate 31 fixed to the inclined support 2 to unfold it and form a larger light-receiving area. During the sliding, it is also connected by the synchronization frame 34. The slider 33 moves along the connecting slide rail to limit the sliding path. Since the plate 31 is inclined, it can maintain a better light-receiving surface. At the same time, the bottom of the four plates 31 can contact the top of the telescopic rod 5 for auxiliary support. The set base 11, together with the turntable 12, can make the top structure rotate along the placement seat 13 so that the photovoltaic panel module 3 faces the direction of stronger sunlight. While rotating, the extended part of the plate 31, the bottom telescopic rod 5 and the side frame 6 can rotate smoothly because of the rotation of the bottom roller 10 of the force frame 7.
[0044] The outer side of the side frame 6 is fixedly connected to a pivot, which is rotatably connected to the outer side of the support frame 7. The support frame 7 is made of two metal frames, and a pivot pin 14 is rotatably connected between the two metal frames. By setting the pivot, the support frame 7 can rotate along the side frame 6. When not in use and stored, the support frame 7 can be rotated to a horizontal position and moved back to the inside of the inclined support 2 along with the side frame 6. The outer side of the pivot pin 14 is rotatably connected to the bottom sleeve 15. A torsion spring 16 is provided on the inner side of the bottom sleeve 15. The two ends of the torsion spring 16 are fixedly connected to the bottom sleeve 15 and the bottom foot 9, respectively. The roller 10 is rotatably connected to the inner side of the bottom foot 9 away from the bottom sleeve 15. By setting the torsion spring 16, when the two feet are together in the storage position, the torsion spring 16 stores force, and the roller 10 and the bottom foot 9 are restricted. The base 15 is mounted between two metal frames of the load-bearing frame 7. When needed, the entire base 15 can be rotated to the bottom along the pivot pin 14. The torsion spring 16 rebounds, causing the two base feet 9 to unfold, making it more stable when in contact with the ground via the rollers 10. This also prevents the load-bearing frame 7 from rotating without external force. The inverter, combiner, and energy storage device are installed inside the chassis 8. A hollow frame 17 is fixedly connected to the bottom of the inner side of the storage bracket 1. The top of the hollow frame 17 is bolted to the chassis 8. By installing the inverter, combiner, and energy storage device inside the chassis 8, these components can be effectively protected. Since the bottom of the chassis 8 is mounted to the hollow frame 17, the exterior of the chassis 8 maintains a large gap with other structures to facilitate auxiliary... For structural heat dissipation, a servo motor 18 is fixedly connected to the top left side of the storage support 1. A drive gear is fixedly connected to the output end of the servo motor 18, and a driven gear is fixedly connected to the bottom of the turntable 12. The drive gear and driven gear mesh with each other. By setting the servo motor 18 to work with the drive gear and driven gear, when it is necessary to control the rotation of the entire device, the drive gear can be driven to rotate by driving the servo motor 18. At this time, the storage support 1, which is fixed to it, will rotate along the meshing driven gear and the turntable 12. A protective shell 19 is provided on the outside of the storage support 1. The protective shell 19 is located outside the inclined support 2 and the photovoltaic panel assembly 3. Buckles are fixedly connected to the front and rear sides of the storage support 1, and buckles are fixedly connected to the front and rear sides of the protective shell 19. The storage unit features a snap-fit mechanism with hooks, clips, and latches. A protective shell 19 is included to protect the structure during storage and allows for quick disassembly via the snap-fit mechanism. Photosensitive sensors 20 are installed on both sides, front, and rear of the storage bracket 1 and on the front and rear of the tilt bracket 2. The photosensitive sensors 20 on the front and rear of the tilt bracket 2 face the top and bottom, respectively. By using multiple photosensitive sensors 20, as the sun moves, the light intensity of the photosensitive sensor 20 closer to the sunlight gradually increases compared to the photosensitive sensor 20 farther from the sunlight, creating a light difference. The photosensitive sensors 20 facing the top and bottom detect the light intensity in real time; the higher the solar altitude angle, the stronger the light intensity of the photosensitive sensor 20 facing the top.The bottom-facing photosensitive sensor 20 has a large difference in light intensity due to weak ground reflection. As the solar altitude angle decreases, the light intensity of the top photosensitive sensor 20 weakens, while the reflected light from the bottom photosensitive sensor 20 relatively strengthens, resulting in a smaller difference. This light direction can be used to determine the rotation direction of the basic control servo motor 18. A contact block 21 is fixedly connected to the top of the top plate 31, and a contact piece 22 is fixedly connected to the top of the side frame 6. A magnetic block is provided inside the contact block 21, and the magnetic block and contact piece 22 are bonded together. By setting the contact block 21 to cooperate with the contact piece 22, the top plate 31 moves along the bottom plate 31... After sliding out, the magnetic block and contact piece 22 can be used for quick splicing and positioning. Limiting blocks 23 are fixedly connected to both sides of the connecting rail 32. The limiting blocks 23 and the slider 33 work together. By setting the limiting blocks 23, the sliding position of the slider 33 is restricted, preventing excessive sliding and loosening of the structure. The photovoltaic panel assembly 3 is tilted, with the bottom of the panel 31 contacting the telescopic rod 5. This tilted arrangement of the photovoltaic panel assembly 3 facilitates better contact with the direction of sunlight, and ensures that the bottoms of the panels are aligned when unfolded, contacting and supporting the telescopic rod 5.
[0045] The working principle of this embodiment is as follows: The storage bracket 1 is an integral structure base. The chassis 8 is installed on the inner side through the hollow frame 17. The chassis 8 houses the inverter, combiner, and energy storage device to realize the conversion, collection, and storage of electrical energy. The hollow frame 17 has reserved gaps to assist in heat dissipation. The chassis 11, turntable 12, and placement seat 13 form a rotating base. The top structure can be turned by the servo motor 18 and the driven gear of the turntable 12. In the photovoltaic power generation module, the tilt bracket 2 provides an tilted installation base for the photovoltaic panel assembly 3 to ensure the angle of light reception. The photovoltaic panel assembly 3 is composed of a panel 31. The connecting guide rail 32 on the front and rear sides of the panel 31 cooperates with the slider 33. The synchronization frame 34 connects the adjacent sliders 33 to limit the sliding path of the panel 31 and ensure synchronous unfolding. The limit block 23 is fixed on both sides of the connecting guide rail 32 to prevent the slider 33 from sliding excessively and causing the structure to loosen.In the auxiliary erection and storage module, the hollow frame 4 and the telescopic rod 5 are slidably connected. The telescopic end of the telescopic rod 5 is connected to the side frame 6. The side frame 6 is rotatably connected to the load-bearing frame 7 via a rotating shaft. The pivot pin 14 between the load-bearing frames 7 is rotatably connected to the bottom sleeve 15. The bottom sleeve 15 is equipped with a torsion spring 16, and both ends are connected to the bottom sleeve 15 and the bottom foot 9. The bottom foot 9 is equipped with a roller 10 to achieve support and movement. The protective shell 19 is engaged with its own hook through the buckle of the storage bracket 1. When stored, it protects the tilt bracket 2 and the photovoltaic panel assembly 3. When the control structure rotates, photosensitive sensors 20 are installed on both sides, front and back sides of the storage bracket 1, and front and back sides of the tilt bracket 2. The direction of the sun is determined by detecting the difference in light intensity. 18 provides a turning signal. In the retracted state, the individual panels 31 of the photovoltaic panel assembly 3 retract and overlap. The slider 33 approaches one end of the connecting guide rail 32, and the synchronization frame 34 retracts with the slider 33. The telescopic rod 5 of the auxiliary support is completely retracted into the hollow frame 4. The force-bearing frame 7 rotates along the pivot of the side frame 6 to a horizontal position and is retracted into the inside of the inclined support 2 together with the side frame 6. The base 9 closes under the force of the torsion spring 16. The roller 10 and the base 9 are both restricted between the bimetallic frame of the force-bearing frame 7. The protective shell 19 is fastened to the outside of the storage support 1 by buckles and hooks, covering the inclined support 2 and the photovoltaic panel assembly 3. When setting up, first remove the protective shell 19, and place the device on a stable terrain so that the placement seat 13 is in contact with the ground. Next, the telescopic rod 5 is pulled out along the hollow frame 4, and the load-bearing frame 7 is rotated along the pivot of the side frame 6 until it is perpendicular to the ground. The bottom sleeve 15 is rotated to the bottom along the pivot pin 14. The torsion spring 16 rebounds and drives the two bottom feet 9 to unfold, so that the rollers 10 contact the ground to form stable support. Then, the top plate 31 slides along the connecting guide rail 32. The adjacent plates 31 unfold synchronously with the slider 33. When the contact block 21 of the top plate 31 is attracted to the contact piece 22 on the top of the side frame 6, the splicing limit is completed. Finally, the bottom of each plate 31 is in contact with the top of the telescopic rod 5, and the tilted bracket 2 maintains the best light-receiving surface. When generating electricity, the photovoltaic panel module 3 absorbs solar energy and converts it into electrical energy. After being collected by the combiner device, it is converted into alternating current by the inverter device. The energy storage device stores excess electrical energy, and the hollow mounting structure of the chassis 8 assists in heat dissipation. Intelligent light tracking uses a photosensitive sensor 20 to detect light intensity in real time, directing the photovoltaic panel assembly 3 towards the direction of stronger sunlight. During rotation, the unfolded panel 31, telescopic rod 5, and side frame 6 slide smoothly with the aid of rollers 10 at the bottom of the support frame 7. For retraction and storage, the panel 31 is first slid to an overlapping state to separate the contact block 21 from the contact piece 22. The synchronous frame 34 drives the slider 33 to reset. Then, the bottom foot 9 is pressed to overcome the tension of the torsion spring 16 and bring them together. The bottom sleeve 15 is rotated back between the support frames 7 along the pivot pin 14. The support frame 7 is then rotated to a horizontal position along the axis of the side frame 6, and the telescopic rod 5 is retracted into the hollow frame 4.
[0046] This specific embodiment is merely an explanation of the present invention and is not intended to limit the invention. Those skilled in the art can make modifications to this embodiment without contributing any inventive step after reading this specification. Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A storage and light integrated machine, comprising a storage support (1), characterized in that: The top of the storage support (1) is welded with an inclined support (2), the top of the inclined support (2) is bolted with a photovoltaic panel assembly (3), the inner side of the inclined support (2) is fixedly connected with a hollow frame (4) through bolts, the inner side of the hollow frame (4) is slidingly connected with a telescopic rod (5), the right side of the telescopic rod (5) is fixedly connected with a side frame (6), the outer side of the side frame (6) is rotatably connected with a stress frame (7), the inner side of the storage support (1) is provided with a machine box (8), the side away from the side frame (6) of the stress frame (7) is provided with a bottom sleeve (15), the inner side of the bottom sleeve (15) is rotatably connected with two bottom feet (9), the inner side of the bottom feet (9) is provided with a roller (10), the bottom of the storage support (1) is fixedly connected with a bottom disc (11), the bottom of the bottom disc (11) is rotatably connected with a rotating disc (12), the bottom of the rotating disc (12) is fixedly connected with a placing seat (13). The photovoltaic panel assembly (3) comprises four plate bodies (31), the front side and the rear side of the plate body (31) are fixedly connected with a connecting guide rail (32), the outer side of the connecting guide rail (32) is slidingly connected with a sliding block (33), and the adjacent two sliding blocks (33) are fixedly connected with a synchronous frame (34) through bolts.
2. The storage and installation convenient all-in-one machine according to claim 1, characterized in that: The outer side of the side frame (6) is fixedly connected with a rotating shaft, the outer side of the rotating shaft is rotatably connected with the stress frame (7), and the stress frame (7) is made of two metal frames and rotatably connected with a rotating pin (14) between the two metal frames.
3. The storage and installation integrated photovoltaic power station according to claim 2, characterized in that: The outer side of the rotating pin (14) is rotatably connected with the bottom sleeve (15), the inner side of the bottom sleeve (15) is provided with a torsional spring (16), the two ends of the torsional spring (16) are fixedly connected with the bottom sleeve (15) and the bottom feet (9) respectively, and the roller (10) is rotatably connected to the inner side of the bottom feet (9) away from the bottom sleeve (15).
4. The storage and charging integrated machine according to claim 1, wherein: The inner side of the machine box (8) is provided with an inverter device, a current collecting device and an electricity storage device, the bottom of the inner side of the storage support (1) is fixedly connected with a hollow frame (17), and the top of the hollow frame (17) is connected with the machine box (8) through bolts.
5. The storage and installation convenient all-in-one machine according to claim 1, characterized in that: The top of the left side of the storage support (1) is fixedly connected with a servo motor (18), the output end of the servo motor (18) is fixedly connected with a driving gear, the bottom of the rotating disc (12) is fixedly connected with a driven gear, and the driving gear and the driven gear are meshedly connected.
6. The storage and charging integrated machine according to claim 1, wherein: The outer side of the storage support (1) is provided with a protective shell (19), the protective shell (19) is located on the outer side of the inclined support (2) and the photovoltaic panel assembly (3), the front side and the rear side of the storage support (1) are fixedly connected with buckles, the front side and the rear side of the protective shell (19) are fixedly connected with clamping hooks, and the buckles and the clamping hooks are clamped.
7. The storage and charging integrated machine according to claim 1, wherein: The two sides, the front side and the rear side of the storage support (1) and the front side and the rear side of the inclined support (2) are provided with photosensitive sensors (20), and the photosensitive sensors (20) on the front side and the rear side of the inclined support (2) are respectively directed to the top and the bottom.
8. The storage and charging integrated machine according to claim 1, wherein: The top plate body (31) is fixedly connected with a contact block (21), the top of the side frame (6) is fixedly connected with a contact sheet (22), the inner side of the contact block (21) is provided with a magnetic attraction block, and the magnetic attraction block and the contact sheet (22) are bonded.
9. The storage and charging integrated machine according to claim 1, wherein: The connecting guide rail (32) is fixedly connected with a limiting block (23) on both sides, and the limiting block (23) is used in cooperation with the sliding block (33).
10. The storage and charging integrated machine according to claim 1, wherein: The photovoltaic panel assembly (3) is arranged obliquely, and the bottom of the plate body (31) is in contact with the telescopic rod (5).