Off-line light storage and charging integrated system
By designing a supporting base plate, a bottom heat dissipation box, and a flip block, the problems of inconvenient equipment maintenance and heat dissipation obstruction in photovoltaic energy storage systems have been solved, enabling convenient installation and real-time monitoring, and improving the ease of use and stability of the system.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- GUANGXI AN YUPU POWER TECH CO LTD
- Filing Date
- 2025-05-07
- Publication Date
- 2026-05-22
AI Technical Summary
Existing photovoltaic energy storage systems, when operating under integrated control, suffer from inconvenient equipment maintenance and heat dissipation due to their sealed structure. Furthermore, they require additional equipment for monitoring when offline, making them inconvenient to use.
An offline integrated photovoltaic, energy storage, and charging system was designed, which adopts a supporting base plate, a bottom heat dissipation box, a flip block, and a snap-fit structure to achieve convenient installation and heat dissipation of internal equipment. Combined with a touch panel for real-time monitoring, no external connection equipment is required.
It enables convenient installation and efficient heat dissipation of the equipment, supports real-time monitoring in offline mode, and improves ease of use and system stability.
Smart Images

Figure CN224267067U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of photovoltaic energy storage technology, specifically an offline integrated photovoltaic energy storage and charging system. Background Technology
[0002] Energy storage is an energy solution that combines photovoltaic power generation and energy storage technologies. It uses photovoltaic panels to convert solar energy into electricity and stores excess energy through an energy storage system, allowing it to be released during periods of insufficient sunlight or peak demand. This technology can improve energy efficiency and enhance grid stability. Especially with the increasing proportion of renewable energy, photovoltaic energy storage is of great significance for balancing supply and demand and ensuring energy security.
[0003] Current photovoltaic energy storage systems employ a sealed integrated control structure for integrated operation, which makes it difficult to perform maintenance and repairs on the internal equipment. Furthermore, the close-fitting installation of the main body creates obstructions, hindering heat dissipation and affecting its effectiveness. In offline mode, additional connection equipment is required for monitoring and processing, resulting in inconvenience in use. Utility Model Content
[0004] The purpose of this utility model is to provide an offline integrated photovoltaic energy storage and charging system to solve the problems mentioned in the background art. Currently, when performing integrated control operations on photovoltaic energy storage, a sealed integrated control structure is used, which makes it inconvenient to perform maintenance and repair operations on the internal equipment. At the same time, the main body is installed in close contact, which creates obstruction and hinders heat dissipation, affecting the heat dissipation effect. Furthermore, in the offline state, an additional connection device is required for monitoring and processing, resulting in inconvenience in use.
[0005] To achieve the above objectives, this utility model provides the following technical solution:
[0006] An offline integrated photovoltaic, energy storage, and charging system includes a supporting base plate. A bottom heat dissipation box is fixedly connected to the bottom surface of the supporting base plate. Side mounting strips are symmetrically fixed to both sides of the supporting base plate. A fixed top plate is symmetrically fixed to the top surface of the supporting base plate. A sealing cover is snapped onto the top surface of the supporting base plate. A top storage groove is horizontally formed on the top surface of the sealing cover. A flip block is vertically engaged with the inner side of the top storage groove. A support plate is horizontally positioned at the top of the flip block. A touch panel is fixedly mounted on one side of the support plate. A snap-fit groove is symmetrically formed on the top surface of the supporting base plate. A main connecting plate is fixedly installed on the side of one of the fixed top plates, a branch main plate is fixedly installed on the side of another fixed top plate, a mounting base plate is horizontally fixedly connected to the top surface of the supporting base plate, a main optical storage body is horizontally fixedly connected to the top surface of the mounting base plate, a through channel is horizontally opened on the top surface of the supporting base plate, a snap-fit block is symmetrically fixedly installed on the top surface of the bottom heat dissipation box, inner sleeve holes are symmetrically opened on the inner side of the top storage slot, a flipping shaft is inserted into the side of the flipping block, a bottom locking hole is opened on the bottom surface of the supporting plate, and a top locking block is fixedly installed on the top of the flipping block.
[0007] In a preferred embodiment of this utility model: the top opening of the bottom heat sink box is connected to the edge of the bottom opening of the through channel, the bottom heat sink box is equipped with a heat sink body, the top surface of the side strip is uniformly provided with through hole structure, and there are two fixed top plates, which are parallel and symmetrically fixed to each other on both sides of the top surface of the supporting bottom plate.
[0008] In a preferred embodiment of this utility model: the sealing cover is snapped onto the top surface of the fixed top plate, the top storage groove is horizontally opened at the center line of the top surface of the sealing cover, the bottom end of the flipping block is snapped onto the inner side of the top storage groove near one end, and the top end of the flipping block is connected to the bottom opening end of the bottom card hole.
[0009] In a preferred embodiment of this utility model, the snap-fit slots are symmetrically opened at the opening edge near the through channel, and the snap-fit slots are all through-type. The main connecting plate and the branch main plate are electrically connected to the main optical storage body.
[0010] As a preferred embodiment of this utility model: the mounting base plate is fixedly connected to the top opening edge near the through channel by the four corner connecting posts on the bottom surface. The through channel is horizontally through the center of the top surface of the supporting base plate. The buckle blocks are symmetrically fixed on the top surface of the bottom heat sink box and the bottom surface of the sealing cover plate near the edge, and one end of each buckle block is correspondingly snapped into the inner side of the snap-fit groove.
[0011] In a preferred embodiment of this utility model: the two ends of the inner sleeve hole are horizontally inserted into the inner side of the flipping shaft, the bottom locking hole is opened at the center of the bottom surface of the support plate, and the top of the top locking block is locked into the inner side of the bottom locking hole.
[0012] Compared with the prior art, the beneficial effects of this utility model are:
[0013] This invention secures the support base plate horizontally in a designated position by installing side strips for fixation. The bottom heat sink is then horizontally snapped onto the bottom surface of the support base plate. The external main cable is fixedly connected to one end of the main connecting plate, while the energy storage cables are fixedly connected to multiple connectors on the side of the branch mainboard. A sealing cover is then snapped onto the top surface of the support base plate to create a seal. The suspended structure of the mounting base plate allows for efficient heat dissipation at the bottom of the main energy storage unit. The internal structure of the bottom heat sink... The operation allows for heat dissipation of the main optical storage unit. After the support plate on the top surface flips upward from the inside of the top storage slot, the flipping block rotates to a specified angle under the rotation of the flipping shaft. The flipping block supports the support plate and can be used at the specified angle. The transmitted data can be observed and processed in real time on the side touch panel. No external connection is required for monitoring operations. The rotation of the support plate can be achieved by rotating the top of the flipping block to a specified angle for viewing and recording. The snap-fit connection structure makes installation more convenient. At the same time, the combination with the local monitoring structure allows for offline monitoring. Attached Figure Description
[0014] Other features, objects, and advantages of this invention will become more apparent from the following detailed description of non-limiting embodiments with reference to the accompanying drawings:
[0015] Figure 1 A three-dimensional structural diagram of an offline integrated photovoltaic, energy storage, and charging system;
[0016] Figure 2 A structural schematic diagram showing the detailed three-dimensional connection of the support base plate for an offline integrated photovoltaic, energy storage, and charging system;
[0017] Figure 3 A structural schematic diagram showing the detailed connection of the bottom heat dissipation box of an offline integrated photovoltaic energy storage and charging system;
[0018] Figure 4 A structural schematic diagram showing the three-dimensional connection details of the sealing cover plate for an offline integrated photovoltaic, energy storage, and charging system;
[0019] Figure 5 A structural schematic diagram showing the connection details of the three-dimensional cross-section of the support plate for an offline integrated photovoltaic, energy storage, and charging system.
[0020] In the diagram: 1. Support base plate; 2. Bottom heat sink box; 3. Mounting side strip; 4. Fixed top plate; 5. Sealing cover plate; 6. Top storage slot; 7. Flip block; 8. Support plate; 9. Touch panel; 10. Snap-fit slot; 11. Main connecting plate; 12. Branch main board; 13. Mounting base plate; 14. Main optical storage unit; 15. Through channel; 16. Snap-fit block; 17. Inner sleeve hole; 18. Flip shaft; 19. Bottom snap hole; 20. Top snap block. Detailed Implementation
[0021] Please see Figure 1 In this embodiment of the present invention, the offline integrated photovoltaic energy storage and charging system includes a supporting base plate 1. A bottom heat dissipation box 2 is fixedly connected to the bottom surface of the supporting base plate 1. Mounting side strips 3 are symmetrically fixedly connected to both sides of the supporting base plate 1. A fixed top plate 4 is symmetrically fixedly installed on the top surface of the supporting base plate 1. The top opening of the bottom heat dissipation box 2 is aligned with the edge of the bottom opening of the through channel 15. A heat dissipation unit is installed inside the bottom heat dissipation box 2. The top surface of the mounting side strips 3 is uniformly provided with through holes. There are two fixed top plates 4, which are parallel and symmetrically fixedly installed on the supporting base plate 1. On both sides of the top surface, a sealing cover plate 5 is fastened to the top surface of the supporting base plate 1. A top storage groove 6 is horizontally opened on the top surface of the sealing cover plate 5. A flip block 7 is vertically fastened to the inner side of the top storage groove 6. The sealing cover plate 5 is fastened to the top surface of the fixed top plate 4. The top storage groove 6 is horizontally opened at the center line of the top surface of the sealing cover plate 5. The bottom end of the flip block 7 is fastened to the inner side of the top storage groove 6 near one end. The top end of the flip block 7 is connected to the bottom opening end of the bottom card hole 19. A support plate 8 is horizontally set at the top end of the flip block 7. A touch panel 9 is fixedly set on one side of the support plate 8.
[0022] Please see Figure 2-5In this embodiment of the utility model, the offline integrated optical storage and charging system includes a supporting base plate 1 with symmetrically arranged snap-fit grooves 10 on its top surface. A main connecting plate 11 is fixedly arranged on the side of a fixed top plate 4, and a branch main plate 12 is fixedly arranged on the side of another fixed top plate 4. The snap-fit grooves 10 are symmetrically arranged near the opening edge of the through channel 15, and all snap-fit grooves 10 are through-hole arranged. The main connecting plate 11 and the branch main plate 12 are electrically connected to the main optical storage body 14. A mounting base plate 13 is horizontally fixedly connected to the top surface of the supporting base plate 1, and the main optical storage body 14 is horizontally fixedly connected to the top surface of the mounting base plate 13. A through channel 15 is horizontally arranged on the top surface of the supporting base plate 1. A snap-fit block 16 is symmetrically fixedly arranged on the top surface of the bottom heat sink box 2. The mounting base plate 13 is connected to the four corner posts on its bottom surface. The fixed connection is located near the top opening edge of the through channel 15. The through channel 15 is horizontally through and located at the center of the top surface of the support base plate 1. The snap-fit blocks 16 are symmetrically fixed on the top surface of the bottom heat sink box 2 and the bottom surface of the sealing cover plate 5 near the edge. One end of each snap-fit block 16 is correspondingly snapped into the inner side of the snap-fit groove 10. The inner side of the top storage groove 6 is symmetrically provided with inner sleeve holes 17. The side of the flip block 7 is inserted with a flip shaft 18. The bottom surface of the support plate 8 is provided with a bottom locking hole 19. The top of the flip block 7 is fixedly provided with a top locking block 20 and an inner sleeve hole 17. The two ends of the flip shaft 18 are horizontally inserted into the inner side of the inner sleeve hole 17. The bottom locking hole 19 is located at the center of the bottom surface of the support plate 8. The top of the top locking block 20 is snapped into the inner side of the bottom locking hole 19.
[0023] The working principle of this utility model is as follows:
[0024] After horizontally setting the support base plate 1 in the designated position, the support base plate 1 is fixedly installed by installing the side strips 3. Then, the bottom heat sink box 2 is horizontally snapped onto the bottom surface of the support base plate 1. The external main line end is fixedly connected to one end of the main connection plate 11, while the energy storage connection ends are fixedly connected to the side multi-connector positions of the branch main board 12. The sealing cover plate 5 is snapped onto the top surface of the support base plate 1 to form a sealing effect. Under the suspended structure of the mounting base plate 13, the bottom of the main optical storage unit 14 can be... With efficient heat dissipation, the main optical storage unit 14 is cooled by the operation of the internal body of the bottom heat dissipation box 2. After the support plate 8 on the top surface flips upward from the inside of the top storage slot 6, the flip block 7 is rotated to a specified angle by the rotation of the flip shaft 18. The flip block 7 supports the support plate 8 and can be used at a specified angle. The transmitted data can be observed and processed in real time on the side touch panel 9 without the need for external connection to form a monitoring operation. The rotation of the support plate 8 can be rotated to a specified angle at the top of the flip block 7 to meet the viewing and recording needs.
[0025] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.
Claims
1. An offline integrated photovoltaic, energy storage, and charging system, comprising a supporting base plate (1), characterized in that, A bottom heat sink box (2) is fixedly connected to the bottom surface of the support base plate (1). Side mounting strips (3) are symmetrically fixedly connected to both sides of the support base plate (1). A fixed top plate (4) is symmetrically fixedly installed on the top surface of the support base plate (1). A sealing cover plate (5) is snapped onto the top surface of the support base plate (1). A top storage groove (6) is horizontally opened on the top surface of the sealing cover plate (5). A flip block (7) is vertically snapped onto the inner side of the top storage groove (6). A support plate (8) is horizontally installed at the top of the flip block (7). A touch panel (9) is fixedly installed on one side of the support plate (8). A snap-fit groove (10) is symmetrically opened on the top surface of the support base plate (1). A side of one of the fixed top plates (4) is fixedly equipped with... A main connecting plate (11) is provided, a branch main plate (12) is fixedly provided on the side of a fixed top plate (4), a mounting base plate (13) is horizontally fixedly connected to the top surface of the supporting base plate (1), a main light storage body (14) is horizontally fixedly connected to the top surface of the mounting base plate (13), a through channel (15) is horizontally opened on the top surface of the supporting base plate (1), a buckle block (16) is symmetrically fixedly provided on the top surface of the bottom heat dissipation box (2), an inner sleeve hole (17) is symmetrically opened on the inner side of the top storage groove (6), a flipping shaft rod (18) is inserted into the side of the flipping block (7), a bottom card hole (19) is opened on the bottom surface of the supporting plate (8), and a top card block (20) is fixedly provided on the top of the flipping block (7).
2. The offline photovoltaic-storage-charging integrated system according to claim 1, characterized in that, The top opening of the bottom heat sink box (2) is connected to the bottom opening edge of the through channel (15). The bottom heat sink box (2) is equipped with a heat sink body. The top surface of the mounting side strip (3) is uniformly provided with through holes. There are two fixed top plates (4), and the two fixed top plates (4) are fixedly and symmetrically fixed to the top sides of the supporting bottom plate (1).
3. The offline integrated photovoltaic storage and charging system according to claim 1, characterized in that, The sealing cover (5) is snapped onto the top surface of the fixed top plate (4), the top storage groove (6) is horizontally opened at the center line of the top surface of the sealing cover (5), the bottom end of the flipping block (7) is snapped onto the inner side of the top storage groove (6) near one end, and the top end of the flipping block (7) is connected to the bottom opening end of the bottom card hole (19).
4. The offline integrated photovoltaic storage and charging system according to claim 1, characterized in that, The snap-fit slots (10) are symmetrically opened at the opening edge near the through channel (15), and the snap-fit slots (10) are all through. The main connecting plate (11) and the branch main plate (12) are electrically connected to the main optical storage body (14).
5. The offline integrated photovoltaic storage and charging system according to claim 1, characterized in that, The mounting base plate (13) is fixedly connected to the top opening edge near the through channel (15) by the four corner connecting posts on the bottom surface. The through channel (15) is horizontally opened in the center of the top surface of the supporting base plate (1). The snap blocks (16) are symmetrically fixed on the top surface of the bottom heat sink box (2) and the bottom surface of the sealing cover plate (5) near the edge. One end of each snap block (16) is correspondingly snapped into the inner side of the snap groove (10).
6. The offline integrated photovoltaic storage and charging system according to claim 1, characterized in that, The inner sleeve hole (17) is horizontally inserted at both ends of the flipping shaft (18) on the inner side of the inner sleeve hole (17). The bottom locking hole (19) is opened at the center of the bottom surface of the support plate (8). The top of the top locking block (20) is locked on the inner side of the bottom locking hole (19).