New energy light storage, charging and detection integrated power station
By designing a new energy photovoltaic power station integrating photovoltaic, energy storage, charging, and testing modules and energy storage cabinets, the problems of high construction costs and high grid power supply pressure of new energy vehicle charging facilities have been solved, realizing low-cost distributed installation and efficient power supply, and timely monitoring of battery health.
Patent Information
- Application Number
- CN202422665547.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-31
- Publication Date
- 2025-11-11
- Estimated Expiration
- 2034-10-31
AI Technical Summary
The centralized construction of charging facilities for new energy vehicles leads to high construction costs, puts great pressure on the power grid, and makes it difficult for existing charging facilities to meet distributed demand.
Design a new energy photovoltaic storage charging and testing integrated power station, including horizontally sliding photovoltaic power generation modules, energy storage cabinets and charging piles. The modules can be folded for storage and transportation and unfolded for use. Combine photovoltaic power generation and energy storage for power supply, and the testing module analyzes the battery health status.
It enables low-cost distributed installation, reduces construction costs, improves power generation efficiency, alleviates grid supply pressure, and allows for timely monitoring of battery health.
Smart Images

Figure CN223533363U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of new energy technology, specifically to a new energy photovoltaic, energy storage, charging and inspection integrated power station. Background Technology
[0002] With the popularization of new energy vehicles and the rapid growth in the number of users, the demand for charging piles and charging stations is also increasing rapidly. Currently, new energy vehicles are mainly charged by installing charging piles in parking lots or building dedicated charging stations. Due to the high construction cost of charging stations, usually only one charging station is built in a concentrated manner within a certain area, which is difficult to meet the charging needs of vehicles. In addition, the charging demand of a large number of new energy vehicles has also increased the power supply pressure on the power grid. In order to alleviate the pressure on the power grid, the use of photovoltaic power generation to power new energy vehicles has become a new trend. Utility Model Content
[0003] The purpose of this utility model is to solve the above problems and provide an integrated power station for new energy photovoltaic storage charging and inspection, which is convenient to install, store and transport, has low construction cost, and can be distributed to meet the daily power replenishment needs of new energy vehicles.
[0004] To solve the above-mentioned technical problems, the technical solution provided by this utility model is as follows: a new energy photovoltaic storage charging and testing integrated power station, including a base plate, an energy storage cabinet, several charging piles and several photovoltaic power generation modules installed on the base plate, wherein the photovoltaic power generation modules are equipped with solar panels, and at least one photovoltaic power generation module has the freedom to slide horizontally along the width direction of the energy storage cabinet. The charging piles have built-in detection modules and control systems, and the charging piles are arranged along the length direction of the energy storage cabinet.
[0005] The aforementioned integrated photovoltaic, energy storage, charging, and testing power station combines photovoltaic modules together during storage and transportation, occupying no extra space and allowing for convenient distributed installation in areas with charging demand, thus shortening the distance between vehicles and the power station. During use, the photovoltaic modules are simply unfolded and secured, making installation convenient and construction costs low. During charging, the testing module acquires charging data from the new energy vehicle and performs battery health analysis, enabling vehicle owners to understand the battery's health status in a timely manner. Utilizing photovoltaic modules to convert solar energy into electrical energy and storing it in energy storage cabinets alleviates the power grid's supply pressure, resulting in energy conservation and environmental protection.
[0006] Furthermore, the photovoltaic power generation module includes a first photovoltaic power generation module fixed on a base plate, a second photovoltaic power generation module mounted on the first photovoltaic power generation module and having a horizontal sliding degree of freedom, and a third photovoltaic power generation module mounted on the second photovoltaic power generation module and having a horizontal sliding degree of freedom.
[0007] Furthermore, the first photovoltaic power generation module includes a first mounting frame for mounting solar panels and a plurality of first support columns supported between the base plate and the first mounting frame; the second photovoltaic power generation module includes a second mounting frame for mounting solar panels and a second support column installed at the bottom of the second mounting frame; the third photovoltaic power generation module includes a third mounting frame for mounting solar panels and a third support column installed at the bottom of the third mounting frame; the lower ends of the second support column and the third support column are provided with connecting parts for connecting and fixing to the base plate or an external positioning platform.
[0008] Furthermore, symmetrical sliding strips are installed on both the lower sides of the first and second mounting brackets, and grooves are formed on the inner side of the sliding strips. Protruding strips are provided on both sides of the second and third mounting brackets, and these protruding strips can slide within the grooves.
[0009] Furthermore, the sliding bar has a limiting block at its front end and a stop block at its rear end. When the convex bar slides to its front limit position, the stop block is blocked by the limiting block.
[0010] Furthermore, a roller mounting groove is provided at the lower end of the sliding bar, the roller mounting groove extends into the sliding groove, a plurality of shaft mounting grooves are evenly provided in the sliding groove, a shaft is installed in the shaft mounting groove, a roller is sleeved on the shaft, the roller is located in the roller mounting groove, the shaft and the shaft mounting groove are interference fit, and a part of the outer circumference of the roller is located in the sliding groove.
[0011] Furthermore, the roller is a nylon bushing.
[0012] In combination with the above technical solutions, compared with the prior art, this utility model has the following beneficial effects:
[0013] The new energy photovoltaic storage charging and inspection integrated power station provided by this utility model meets the photovoltaic power generation needs while taking into account storage, transportation and installation through multiple openable photovoltaic power generation modules. The energy storage cabinet, photovoltaic power generation modules and charging piles are centrally set on the base plate to form a whole, which can be conveniently distributed in the charging demand area, reducing the construction cost of the power station and can more fully meet the charging needs of the area. Attached Figure Description
[0014] Figure 1 This is a structural schematic diagram of a new energy photovoltaic storage charging and inspection integrated power station as described in this utility model.
[0015] Figure 2 yes Figure 1 A magnified view of a portion of position A in the diagram.
[0016] Figure 3This is a schematic diagram of the state of a new energy photovoltaic storage charging and inspection integrated power station as described in this utility model during use.
[0017] Figure 4 This is a schematic diagram of the sliding bar described in this utility model.
[0018] Figure 5 This is a schematic diagram showing the positions of the limiting block and the stop block described in this utility model.
[0019] The components are: 1-base plate, 2-energy storage cabinet, 3-charging pile, 31-control panel, 32-charging gun, 4-first photovoltaic power generation module, 41-first mounting frame, 42-first support column, 5-second photovoltaic power generation module, 51-second mounting frame, 52-second support column, 53-first protruding strip, 54-stop block, 6-third photovoltaic power generation module, 61-third mounting frame, 62-third support column, 63-second protruding strip, 7-sliding strip, 71-sliding groove, 72-limiting block, 73-roller mounting groove, 74-rotating shaft mounting groove, 75-rotating shaft, 76-roller, 8-solar panel, 9-positioning platform. Detailed Implementation
[0020] To illustrate the technical features, objectives, and effects of this utility model in detail, the following description, in conjunction with the accompanying drawings and embodiments, provides a further detailed explanation. It should be understood that the specific embodiments described herein are merely illustrative and not intended to limit the scope of this utility model.
[0021] Please see the appendix Figure 1-5 A new energy photovoltaic-storage-charging-integrated power station includes a base plate 1, an energy storage cabinet 2, several charging piles 3, and several photovoltaic power generation modules mounted on the base plate 1. Each photovoltaic power generation module is equipped with a solar panel 8. At least one photovoltaic power generation module has the freedom to slide horizontally along the width direction of the energy storage cabinet 2. Each charging pile 3 has a built-in detection module and control system, and is arranged along the length direction of the energy storage cabinet. For ease of operation, each charging pile 3 is equipped with a control panel 31.
[0022] In the above embodiments, the photovoltaic power generation modules are folded together during storage and transportation, without occupying additional space. In addition, the photovoltaic power generation modules can also be folded up in severe weather such as typhoons to reduce the impact and damage caused by severe weather. During installation and use, the photovoltaic power generation modules are unfolded, allowing the solar panels 8 to fully receive sunlight to improve power generation efficiency. After the solar panels convert light into electricity, it is stored through the energy storage cabinet 2. After the photovoltaic power generation modules are unfolded, a space is formed below them for parking and charging new energy vehicles. During the charging process, after the charging gun 32 is connected to the charging interface of the new energy vehicle, the detection module obtains the charging data of the new energy vehicle and performs a health analysis of the battery accordingly, so that the car owner can understand the health status of the vehicle battery in a timely manner.
[0023] Based on the above embodiments, the photovoltaic power generation module includes a first photovoltaic power generation module 4 fixed on a base plate 1, a second photovoltaic power generation module 5 mounted on the first photovoltaic power generation module 4 and having a horizontal sliding degree of freedom, and a third photovoltaic power generation module 6 mounted on the second photovoltaic module 5 and having a horizontal sliding degree of freedom. The foldable and unfoldable second photovoltaic power generation module 5 and third photovoltaic module 6 increase the illuminated area during operation, thereby increasing the power generation of the photovoltaic power generation module to meet power supply demands.
[0024] Based on the above embodiments, the first photovoltaic power generation module 4 includes a first mounting frame 41 for mounting solar panels 8 and a plurality of first support columns 42 supported between the base plate 1 and the first mounting frame 41. The second photovoltaic power generation module 5 includes a second mounting frame 51 for mounting solar panels 8 and a second support column 52 installed at the bottom of the second mounting frame 51. The third photovoltaic power generation module 6 includes a third mounting frame 61 for mounting solar panels 8 and a third support column 62 installed at the bottom of the third mounting frame 61. The lower ends of the second support column 52 and the third support column 62 are provided with connecting parts for connecting and fixing to the base plate 1 or the external positioning platform 9. Before installation and use, the lower ends of the second support column 52 and the third support column 62 are fixed to the base plate 1 with screws or pins to prevent the second photovoltaic power generation module 5 and the third photovoltaic power generation module 6 from sliding out. During installation and use, the connection between the second support column 52 and the third support column 62 and the base plate 1 is removed, the second photovoltaic power generation module 5 and the third photovoltaic power generation module 6 are pulled out to the limit position, and then the lower ends of the second support column 52 and the third support column 62 are fixed to the external positioning platform 9.
[0025] Based on the above embodiments, symmetrical sliding strips 7 are installed on both lower sides of the first mounting bracket 41 and the second mounting bracket 51. A sliding groove 71 is formed on the inner side of each sliding strip 7. First protrusions 53 are provided on both sides of the second mounting bracket 51, and second protrusions 63 are provided on both sides of the third mounting bracket 61. The first and second protrusions 53 and 63 can slide within the sliding groove 71. The sliding groove 71 serves to limit and guide the first and second protrusions 53 and 63.
[0026] Based on the above embodiments, the front end of the sliding bar 7 is provided with a limiting block 72, and the rear end of the first protrusion 53 and the second protrusion 63 is provided with a stop block 54. When the first protrusion 53 and the second protrusion 63 slide to the front limit position, the stop block 54 is blocked by the limiting block 72, thereby avoiding excessive stretching of the second photovoltaic power generation module 5 and the third photovoltaic power generation module 6 during the installation process and damage to the connection lines.
[0027] Based on the above embodiments, the lower end of the sliding bar 7 is provided with a roller mounting groove 73, which extends into the sliding groove 71. A plurality of rotating shaft mounting grooves 74 are evenly provided in the sliding groove 71. A rotating shaft 75 is installed in the rotating shaft mounting groove 74, and a roller 76 is sleeved on the rotating shaft 75. The roller 76 is located in the roller mounting groove 73. The rotating shaft 75 and the rotating shaft mounting groove 74 are interference-fitted to prevent the rotating shaft 75 from disengaging from the rotating shaft mounting groove 74. A portion of the outer circumference of the roller 76 is located in the sliding groove 71, so that the lower surfaces of the second mounting bracket 51 and the third mounting bracket 61 are supported by the outer circumference of the roller 76. When the second photovoltaic power generation module 5 and the third photovoltaic power generation module 6 are pushed or pulled outward, the second mounting bracket 51 and the third mounting bracket 61 and the roller 76 are subjected to rolling friction, thereby making the second mounting bracket 51 and the third mounting bracket 61 slide more smoothly.
[0028] Based on the above embodiments, the roller 76 is a nylon bushing, which is low in cost and wear-resistant.
[0029] The present invention and its embodiments have been described in detail above. This description is not restrictive, and the accompanying drawings only show some embodiments of the present invention. The actual structure is not limited thereto. Those skilled in the art, inspired by this description, can make various modifications, improvements, and substitutions without departing from the concept of the present invention, and all of these should fall within the protection scope of the present invention.
Claims
1. A new energy photovoltaic, energy storage, charging, and maintenance integrated power station, characterized in that: The device includes a base plate, an energy storage cabinet, several charging piles, and several photovoltaic power generation modules mounted on the base plate. Each photovoltaic power generation module is equipped with a solar panel. At least one photovoltaic power generation module has the freedom to slide horizontally along the width direction of the energy storage cabinet. Each charging pile has a built-in detection module and control system. The charging piles are arranged along the length direction of the energy storage cabinet.
2. The integrated photovoltaic, energy storage, charging, and maintenance power station according to claim 1, characterized in that: The photovoltaic power generation module includes a first photovoltaic power generation module fixed on a base plate, a second photovoltaic power generation module mounted on the first photovoltaic power generation module and having a horizontal sliding degree of freedom, and a third photovoltaic power generation module mounted on the second photovoltaic power generation module and having a horizontal sliding degree of freedom.
3. The integrated photovoltaic, energy storage, charging, and maintenance power station according to claim 2, characterized in that: The first photovoltaic power generation module includes a first mounting frame for mounting solar panels and a plurality of first support columns supported between the base plate and the first mounting frame. The second photovoltaic power generation module includes a second mounting frame for mounting solar panels and a second support column installed at the bottom of the second mounting frame. The third photovoltaic power generation module includes a third mounting frame for mounting solar panels and a third support column installed at the bottom of the third mounting frame. The lower ends of the second support column and the third support column are provided with connecting parts for connecting and fixing to the base plate or an external positioning platform.
4. The integrated photovoltaic, energy storage, charging, and maintenance power station according to claim 3, characterized in that: The first and second mounting brackets are equipped with symmetrical sliding bars on their lower sides. The inner side of each sliding bar has a groove. The second and third mounting brackets are equipped with protruding bars on both sides, which can slide within the grooves.
5. The integrated photovoltaic, energy storage, charging, and maintenance power station according to claim 4, characterized in that: The sliding bar has a limiting block at its front end and a stop block at its rear end. When the convex bar slides to its front limit position, the stop block is blocked by the limiting block.
6. The integrated photovoltaic, energy storage, charging, and maintenance power station according to claim 4, characterized in that: The lower end of the sliding bar is provided with a roller mounting groove, which extends into the sliding groove. Several shaft mounting grooves are evenly provided in the sliding groove. A shaft is installed in the shaft mounting groove, and a roller is sleeved on the shaft. The roller is located in the roller mounting groove. The shaft and the shaft mounting groove are interference-fitted. A portion of the outer circumference of the roller is located in the sliding groove.
7. A new energy photovoltaic-storage-charging-and-testing integrated power station according to claim 6, characterized in that: The roller is a nylon bushing.