Intelligent charging station with photovoltaic shed
By designing photovoltaic vehicle canopies and sealing mechanisms in charging stations, the problems of low photovoltaic power generation efficiency and easy damage to charging piles are solved, achieving efficient power generation and protection of charging piles.
Patent Information
- Application Number
- CN202511305965.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-12
- Publication Date
- 2026-01-16
AI Technical Summary
Existing photovoltaic charging stations have low photovoltaic power generation efficiency, fail to make full use of carport space, and the charging piles are susceptible to damage from the external environment.
Design an intelligent charging station with a photovoltaic carport. The station uses an installation frame and photovoltaic solar panels to collect solar energy, and combines a storage mechanism and a sealing mechanism to achieve automatic storage and protection of the charging pile.
It improves the efficiency of photovoltaic power generation, makes full use of space for power generation, protects charging piles from external environmental influences, and extends their service life.
Smart Images

Figure CN121340971A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of charging station technology, and in particular to an intelligent charging station with a photovoltaic carport. Background Technology
[0002] With the widespread adoption of electric vehicles, the demand for charging has increased dramatically. Traditional charging stations rely on the power grid, resulting in high energy consumption and significant carbon emissions. While photovoltaic power generation technology is mature, the application of combining standalone photovoltaic power generation systems with charging stations is still in the exploratory stage.
[0003] In the existing technology, photovoltaic charging stations are mainly realized in the following ways: (1) Independent photovoltaic power generation system and charging pile are simply connected in parallel, and photovoltaic power generation is directly supplied to charging pile or connected to the power grid; (2) Photovoltaic panels with fixed tilt angle are used to build carports; (3) Energy storage batteries are equipped to balance the time difference between power generation and power consumption.
[0004] The main drawback of existing photovoltaic charging stations is that photovoltaic power generation efficiency is low and they fail to make full use of the carport space.
[0005] Therefore, this application provides an intelligent charging station with a photovoltaic carport. Summary of the Invention
[0006] The purpose of this application is to solve at least one technical problem raised in the background art.
[0007] This application provides a smart charging station with a photovoltaic carport, including charging piles installed on the ground and a photovoltaic carport structure; The photovoltaic carport structure includes an installation frame and photovoltaic solar panels. The installation frame includes an inner frame and an outer frame. The surface of the outer frame is welded and fixed with two horizontal beams and two vertical beams in a rectangular array. Two symmetrical first support beams are welded and fixed in the middle of the two horizontal beams, and two symmetrical second support beams are welded and fixed in the middle of the two vertical beams. The two first support beams and the two second support beams are arranged in a grid pattern, and the surfaces of the two first support beams and the two second support beams are welded and fixed to the surface of the inner frame. The photovoltaic solar panels are fixed in the annular area formed by the inner frame and the outer frame. The number of charging piles is several, and the charging piles are divided into two groups. The two groups of charging piles are symmetrically arranged on both sides of the photovoltaic carport structure. The ground surface is sprayed with parking spaces corresponding to the charging piles, and the surface of the parking spaces is provided with limit strips for limiting the movement of cars.
[0008] By adopting the above technical solution, solar energy can be collected over a large area and converted into electrical energy through photovoltaic solar panels on the installation frame, thereby achieving the purpose of powering the charging pile.
[0009] Preferably, three third support beams are fixed at equal intervals on the surfaces of the crossbeam and the second support beam.
[0010] By adopting the above technical solution, the structural strength between the crossbeam and the second support beam can be effectively improved under the action of the third support beam, thereby improving the overall stability of the installation frame.
[0011] Preferably, a fourth support beam is fixed to the surface of the longitudinal beam and the first support beam.
[0012] By adopting the above technical solution, the structural strength between the longitudinal beam and the first support beam can be effectively improved under the action of the fourth support beam, thereby further improving the overall structural strength of the installation frame.
[0013] Preferably, two symmetrical mounting vertical beams are fixed on the lower surface of the third support beam, and a first mounting angle plate is welded and fixed to the bottom end of the mounting vertical beam. Two symmetrical support columns are fixed on the lower surface of both the cross beam and the longitudinal beam, and a second mounting angle plate is welded and fixed to the bottom end of the support column.
[0014] By adopting the above technical solution, the installation frame can be effectively fixed to the ground under the action of the installation beams and support columns, thereby ensuring the stability of the installation frame.
[0015] Preferably, when not in use, the charging pile is installed below ground level, with a storage pit pre-dug on the upper surface of the ground, and a storage mechanism for storing the charging pile is provided inside the storage pit.
[0016] By adopting the above technical solution, the charging pile can be effectively stored and protected after use by the storage mechanism, avoiding damage to the charging pile caused by external environment such as rain, snow, sand and dust and strong sunlight, thereby effectively ensuring the service life of the charging pile.
[0017] Preferably, the storage mechanism includes a storage box fixed inside the storage pit, a lifting plate slidably disposed on the inner wall of the storage box, and a mounting base fixed on the upper surface of the lifting plate. The charging pile is fixed on the upper surface of the mounting base, and a rectangular opening is formed on the upper surface of the storage box. The mounting base is slidably connected to the inner wall of the rectangular opening.
[0018] By adopting the above technical solution, the lifting plate can drive the mounting base to automatically lift and lower, thereby enabling the charging pile to automatically enter and exit the storage box.
[0019] Preferably, the storage mechanism further includes two rectangular boxes symmetrically fixed to the bottom wall of the storage box, and two synchronous motors respectively fixed to the bottom wall of the two rectangular boxes. The output ends of the two synchronous motors are each fixed with a vertical threaded column, and the top of the vertical threaded column extends to the upper surface of the rectangular box and is rotatably connected to the inner top wall of the storage box. The upper surface of the rectangular box is provided with a rotating hole, and the inner wall of the rotating hole is fixed with a bearing, and the inner ring surface of the bearing is fixedly connected to the outer surface of the vertical threaded column.
[0020] By adopting the above technical solution, the rotation of the synchronous motor can drive the vertical threaded column to rotate. Simultaneously, the synchronous rotation of two vertical threaded columns can be achieved under the action of two synchronous motors.
[0021] Preferably, the surface of the lifting plate has two symmetrical mounting holes, and the inner walls of the two mounting holes are fixed with internal threaded sleeves, and the inner walls of the two internal threaded sleeves are respectively threaded to the outer surfaces of the two vertical threaded columns.
[0022] By adopting the above technical solution, the lifting plate can be automatically raised and lowered during the rotation of the vertical threaded column and under the action of the internal threaded sleeve.
[0023] Preferably, the upper surface of the storage box is provided with a sealing mechanism, which is used to effectively seal the top of the storage box after the charging pile is stored inside the storage box. The sealing mechanism includes an annular mounting groove opened on the upper surface of the storage box and an annular expansion airbag fixed to the inner wall of the annular mounting groove. The top of the charging pile is provided with a sealing pressure plate that is adapted to the top of the storage box.
[0024] By adopting the above technical solution, when the charging pile moves downward and is completely stored inside the storage box, the top of the storage box can be automatically sealed by the sealing pressure plate. At the same time, the gap between the sealing pressure plate and the top of the storage box can be effectively sealed by the action of the annular expansion airbag.
[0025] Preferably, the sealing mechanism further includes a telescopic airbag column fixed to the bottom wall of the storage box. A return spring is fixed to the inner top wall of the telescopic airbag column, and the bottom end of the return spring is fixedly connected to the inner bottom wall of the telescopic airbag column. A connecting pipe is provided on the outer surface of the bottom end of the telescopic airbag column. One end of the connecting pipe extends into the interior of the telescopic airbag column, and the end of the connecting pipe away from the telescopic airbag column extends into the interior of the annular inflatable airbag.
[0026] By adopting the above technical solution, during the downward movement of the lifting plate, when it reaches a suitable position, the lower surface of the lifting plate can contact the top of the telescopic airbag column. When it continues to move downward, it can press the telescopic airbag column, thereby allowing the air inside the telescopic airbag column to enter the interior of the annular expansion airbag through the connecting pipe, causing the annular expansion airbag to expand.
[0027] In summary, this application includes at least one of the following beneficial technical effects: 1. The intelligent charging station with a photovoltaic carport described in this application enables the intelligent charging station to collect solar energy over a large area and convert it into electrical energy through photovoltaic solar panels on the frame during actual use, thereby achieving the purpose of powering the charging piles and enabling the intelligent charging station to make full use of space to generate electricity.
[0028] 2. The intelligent charging station with a photovoltaic carport described in this application, through the setting of a storage mechanism, enables the charging piles in the intelligent charging station to be activated by two synchronous motors via controllers corresponding to the parking spaces within the carport during actual use. The rotation of the synchronous motors drives two vertical threaded columns to rotate simultaneously. The rotation of the vertical threaded columns causes the internal threaded sleeve to move automatically upward, thereby causing the lifting plate to move automatically upward, and then causing the charging pile on the mounting base to automatically move out of the storage box, facilitating the use of the charging pile by personnel. At the same time, after the charging pile is used up, the two synchronous motors can be activated to reverse. The reverse rotation of the synchronous motors drives the internal threaded sleeve to move downward, thereby causing the lifting plate and the charging pile to move downward, allowing the charging pile to enter the storage box for safekeeping, and then to be buried underground, effectively reducing the impact of the external environment on the charging pile and ensuring the service life of the charging pile.
[0029] 3. The intelligent charging station with a photovoltaic carport described in this application, through the setting of a sealing mechanism, allows the charging pile to move downwards and enter the storage box via the rotation of a synchronous motor. When the lifting plate moves downwards to a suitable position, its lower surface contacts the top of the telescopic airbag column. As it continues to move downwards, it presses down on the telescopic airbag column, causing air inside the column to enter the annular expansion airbag through a connecting pipe, thus inflating the annular expansion airbag. When the charging pile is fully inside the storage box, the sealing plate presses firmly against the top of the storage box. Under the action of the inflated annular expansion airbag, the gap between the sealing plate and the top of the storage box is effectively sealed, effectively preventing insects, debris, and rainwater from entering the storage box, thereby achieving the purpose of effectively protecting the charging pile. Attached Figure Description
[0030] Figure 1This is a schematic diagram of the overall structure of Embodiment 1 of this application; Figure 2 This is a side view of the structure of Embodiment 1 of this application; Figure 3 This is a bottom view of the mounting frame in Embodiment 1 of this application; Figure 4 This is a schematic diagram of the overall structure of Embodiment 2 of this application; Figure 5 This is a three-dimensional structural diagram of the storage box in Embodiment 2 of this application.
[0031] Figure 6 This is a cross-sectional structural diagram of the storage box in Embodiment 2 of this application.
[0032] Figure 7 This application Figure 6 Enlarged structural diagram at point A in the middle.
[0033] Explanation of reference numerals in the attached figures: 100. Ground surface; 101. Parking space; 102. Parking limit strip; 200. Charging piles; 300. Photovoltaic carport structure; 301. Installation frame; 3011. Inner frame; 3012. Outer frame; 3013. Crossbeam; 3014. Longitudinal beam; 3015. First support beam; 3016. Second support beam; 3017. Third support beam; 3018. Fourth support beam; 3019. Installation vertical beam; 3020. Support column; 302. Photovoltaic solar panel; 400. Storage mechanism; 401. Storage box; 402. Lifting plate; 403. Mounting base; 404. Rectangular box; 405. Synchronous motor; 406. Vertical threaded column; 407. Internal threaded sleeve; 500, Sealing mechanism; 501, Annular mounting groove; 502, Annular inflatable airbag; 503, Sealing pressure plate; 504, Telescopic airbag column. Detailed Implementation
[0034] The following combination Figures 1 to 7 This application will be described in further detail below.
[0035] Example 1 Please refer to the following carefully. Figure 1 , Figure 2 , Figure 3A smart charging station with a photovoltaic carport includes a charging pile 200 installed on the ground 100 and a photovoltaic carport mechanism 300. The photovoltaic carport mechanism 300 includes a mounting frame 301 and photovoltaic solar panels 302. The mounting frame 301 includes an inner frame 3011 and an outer frame 3012. The surface of the outer frame 3012 is welded and fixed with two horizontal beams 3013 and two vertical beams 3014 in a rectangular array. Two symmetrical first support beams 3015 are welded and fixed in the middle of the two horizontal beams 3013, and two symmetrical second support beams 3016 are welded and fixed in the middle of the two vertical beams 3014. The first support beam 3015 and the second support beam 3016 are arranged in a grid pattern, and the surfaces of the two first support beams 3015 and the two second support beams 3016 are welded and fixed to the surface of the inner frame 3011. The photovoltaic solar panel 302 is fixed in the annular area formed by the inner frame 3011 and the outer frame 3012. There are several charging piles 200, and the several charging piles 200 are divided into two groups. The two groups of charging piles 200 are symmetrically arranged on both sides of the photovoltaic carport mechanism 300. The surface of the ground 100 is sprayed with parking spaces 101 corresponding to the charging piles 200, and the surface of the parking spaces 101 is provided with limiting strips 102 for limiting the cars.
[0036] Specifically, the photovoltaic solar panels 302 on the mounting frame 301 can collect solar energy over a large area and convert it into electrical energy, thereby providing power to the charging pile 200.
[0037] Please refer to this carefully. Figure 2 , Figure 3 Three third support beams 3017 are fixed at equal intervals on the surfaces of the crossbeam 3013 and the second support beam 3016.
[0038] Specifically, the third support beam 3017 effectively improves the structural strength between the crossbeam 3013 and the second support beam 3016, thereby enhancing the overall stability of the mounting frame 301.
[0039] Please refer to this carefully. Figure 2 , Figure 3 A fourth support beam 3018 is fixed on the surface of the longitudinal beam 3014 and the first support beam 3015.
[0040] Specifically, under the action of the fourth support beam 3018, the structural strength between the longitudinal beam 3014 and the first support beam 3015 is effectively improved, thereby further improving the overall structural strength of the mounting frame 301.
[0041] Please refer to this carefully. Figure 2 , Figure 3Two symmetrical mounting vertical beams 3019 are fixed on the lower surface of the third support beam 3017. The bottom end of the mounting vertical beam 3019 is welded and fixed with a first mounting angle plate. The lower surfaces of the cross beam 3013 and the longitudinal beam 3014 are both fixed with two symmetrical support columns 3020, and the bottom end of the support column 3020 is welded and fixed with a second mounting angle plate.
[0042] Specifically, the installation frame 301 can be effectively fixed to the ground 100 by the installation beam 3019 and the support column 3020, thereby ensuring the stability of the installation frame 301.
[0043] In this embodiment, by setting up a photovoltaic carport mechanism 300, the smart charging station can collect solar energy over a large area and convert it into electrical energy through the photovoltaic solar panels 302 on the mounting frame 301 during actual use, thereby achieving the purpose of powering the charging pile 200, and thus enabling the smart charging station to make full use of space to generate electricity.
[0044] Example 2 Based on Example 1, referring to Figures 4 to 7 And unlike Example 1, the following is true: Please refer to this carefully. Figure 4 , Figure 5 When not in use, the charging pile 200 is installed below ground level 100. A storage pit is pre-dug on the upper surface of ground level 100, and a storage mechanism 400 for storing the charging pile 200 is installed inside the storage pit.
[0045] Specifically, the storage mechanism 400 can effectively store and protect the charging pile 200 after use, preventing damage from external environments such as rain, snow, sand, and strong sunlight, thus effectively ensuring the service life of the charging pile 200. At the same time, the low underground temperature can effectively dissipate heat from the charging pile 200 after use.
[0046] Please refer to this carefully. Figure 5 , Figure 6 The storage mechanism 400 includes a storage box 401 fixed inside the storage pit. A lifting plate 402 is slidably provided on the inner wall of the storage box 401, and a mounting base 403 is fixed on the upper surface of the lifting plate 402. The charging pile 200 is fixed on the upper surface of the mounting base 403. A rectangular opening is provided on the upper surface of the storage box 401, and the mounting base 403 is slidably connected to the inner wall of the rectangular opening.
[0047] Specifically, the lifting plate 402 can drive the mounting base 403 to automatically lift and lower, thereby enabling the charging pile 200 to automatically enter and exit the storage box 401 through the automatic lifting and lowering of the mounting base 403.
[0048] Please refer to this carefully. Figure 6 , Figure 7 The storage mechanism 400 also includes two rectangular boxes 404 symmetrically fixed to the bottom wall of the storage box 401, and two synchronous motors 405 respectively fixed to the bottom wall of the two rectangular boxes 404. The output ends of the two synchronous motors 405 are each fixed with a vertical threaded post 406, and the top of the vertical threaded post 406 extends to the upper surface of the rectangular box 404 and is rotatably connected to the inner top wall of the storage box 401. A rotating hole is opened on the upper surface of the rectangular box 404, and a bearing is fixed to the inner wall of the rotating hole. The inner ring surface of the bearing is fixedly connected to the outer surface of the vertical threaded post 406.
[0049] Specifically, the rotation of the synchronous motor 405 can drive the vertical threaded column 406 to rotate. At the same time, the two vertical threaded columns 406 can be rotated synchronously under the action of two synchronous motors 405.
[0050] Please refer to this carefully. Figure 6 , Figure 7 The surface of the lifting plate 402 has two symmetrical mounting holes, and the inner walls of the two mounting holes are fixed with internal threaded sleeves 407. The inner walls of the two internal threaded sleeves 407 are respectively threaded to the outer surfaces of the two vertical threaded columns 406.
[0051] Specifically, during the rotation of the vertical threaded column 406, the lifting plate 402 can be automatically raised and lowered under the action of the internal threaded sleeve 407.
[0052] In this embodiment, by setting up a storage mechanism 400, the charging pile 200 in the smart charging station can, during actual use, activate two synchronous motors 405 via a controller corresponding to the parking space 101 in the carport. The rotation of the synchronous motors 405 drives two vertical threaded columns 406 to rotate simultaneously. The rotation of the vertical threaded columns 406 causes the internal threaded sleeve 407 to move automatically upward, thereby causing the lifting plate 402 to move automatically upward, and then causing the charging pile 200 on the mounting base 403 to automatically move out of the storage box 401, making it convenient for personnel to use the charging pile 200. At the same time, after the charging pile 200 is used up, the two synchronous motors 405 can be activated to reverse. The reverse rotation of the synchronous motors 405 causes the internal threaded sleeve 407 to move downward, thereby causing the lifting plate 402 and the charging pile 200 to move downward, so that the charging pile 200 enters the storage box 401 for storage and protection, and then the charging pile 200 is buried underground, effectively reducing the impact of the external environment on the charging pile 200 and ensuring the service life of the charging pile 200.
[0053] Please refer to this carefully. Figure 6 , Figure 7The upper surface of the storage box 401 is provided with a sealing mechanism 500, which is used to effectively seal the top of the storage box 401 after the charging pile 200 is stored inside the storage box 401. The sealing mechanism 500 includes an annular mounting groove 501 opened on the upper surface of the storage box 401, and an annular expansion airbag 502 fixed to the inner wall of the annular mounting groove 501. The top of the charging pile 200 is provided with a sealing pressure plate 503 that is adapted to the top of the storage box 401.
[0054] Specifically, when the charging pile 200 moves downward and is completely stored inside the storage box 401, the top of the storage box 401 can be automatically sealed by the sealing pressure plate 503. At the same time, the gap between the sealing pressure plate 503 and the top of the storage box 401 can be effectively sealed by the annular expansion airbag 502.
[0055] Please refer to this carefully. Figure 6 , Figure 7 The sealing mechanism 500 also includes a telescopic airbag column 504 fixed to the inner bottom wall of the storage box 401. A return spring is fixed to the inner top wall of the telescopic airbag column 504, and the bottom end of the return spring is fixedly connected to the inner bottom wall of the telescopic airbag column 504. A connecting pipe is provided on the outer surface of the bottom end of the telescopic airbag column 504. One end of the connecting pipe extends into the interior of the telescopic airbag column 504, and the end of the connecting pipe away from the telescopic airbag column 504 extends into the interior of the annular inflatable airbag 502.
[0056] Specifically, during the downward movement of the lifting plate 402, when it reaches a suitable position, the lower surface of the lifting plate 402 can contact the top of the telescopic airbag column 504. As it continues to move downward, it can press the telescopic airbag column 504, thereby allowing the air inside the telescopic airbag column 504 to enter the interior of the annular expansion airbag 502 through the connecting pipe, causing the annular expansion airbag 502 to expand.
[0057] In this embodiment, by setting a sealing mechanism 500, during the process of the charging pile 200 moving downward and entering the storage box 401 driven by the rotation of the synchronous motor 405, the lifting plate 402, when moving downward, can contact the top of the telescopic airbag column 504 after moving to a suitable position. When it continues to move downward, it can press the telescopic airbag column 504, so that the air inside the telescopic airbag column 504 enters the interior of the annular expansion airbag 502 through the connecting pipe, causing the annular expansion airbag 502 to expand. When the charging pile 200 is completely inside the storage box 401, the sealing plate 503 can press against the top of the storage box 401. Under the action of the expanded annular expansion airbag 502, the gap between the sealing plate 503 and the top of the storage box 401 is effectively sealed, thereby effectively preventing mosquitoes, debris and rainwater from entering the interior of the storage box 401, and further achieving the purpose of effectively protecting the charging pile 200.
[0058] Working principle: In actual use, this intelligent charging station can collect solar energy over a large area through photovoltaic solar panels 302 on the mounting frame 301 and convert it into electrical energy, thereby powering the charging piles 200. This allows the intelligent charging station to fully utilize space for power generation. Furthermore, during actual use, the charging piles 200 within the intelligent charging station can activate two synchronous motors 405 via controllers corresponding to parking spaces 101 within the carport. The rotation of the synchronous motors 405 drives two vertical threaded columns 406 to rotate synchronously. When the vertical threaded column 406 rotates, it drives the internal threaded sleeve 407 to move automatically upward, thereby driving the lifting plate 402 to move automatically upward. This, in turn, causes the charging pile 200 on the mounting base 403 to automatically move out of the storage box 401, making it easier for personnel to use the charging pile 200. After the charging pile 200 is used, the two synchronous motors 405 can be activated to reverse. The reverse rotation of the synchronous motors 405 drives the internal threaded sleeve 407 to move downward, thereby driving the lifting plate 402 and the charging pile 200 downward, allowing the charging pile 200 to enter the storage box. The charging pile 200 is stored and protected inside the housing 401, allowing it to be placed underground. This effectively reduces the impact of the external environment on the charging pile 200 and ensures its service life. Simultaneously, as the charging pile 200 is moved downwards and into the housing 401 by the rotation of the synchronous motor 405, the lower surface of the lifting plate 402 contacts the top of the telescopic airbag column 504 after moving to a suitable position. Further downward movement presses down on the telescopic airbag column 504, thus extending its reach. Air from the inflatable column 504 enters the annular inflatable airbag 502 through the connecting pipe, causing the annular inflatable airbag 502 to inflate. When the charging pile 200 is fully inside the storage box 401, the sealing plate 503 can press against the top of the storage box 401. Under the action of the inflated annular inflatable airbag 502, the gap between the sealing plate 503 and the top of the storage box 401 is effectively sealed, thereby effectively preventing mosquitoes, debris and rainwater from entering the interior of the storage box 401, and further achieving the purpose of effectively protecting the charging pile 200.
[0059] The embodiments described in this specific implementation are preferred embodiments of this application and are not intended to limit the scope of protection of this application. Identical components are represented by the same reference numerals. Therefore, all equivalent changes made to the structure, shape, and principle of this application should be covered within the scope of protection of this application.
Claims
1. An intelligent charging station with a photovoltaic canopy, characterized in that, Including the charging pile (200) arranged on the ground (100) and the photovoltaic carport mechanism (300); The photovoltaic carport mechanism (300) comprises a mounting frame (301) and photovoltaic solar panels (302), the mounting frame (301) comprises an inner frame (3011) and an outer frame (3012), and the surface of the outer frame (3012) is welded and fixed with two cross beams (3013) and two longitudinal beams (3014) in a rectangular array, two symmetric first support beams (3015) are welded and fixed in the middle of the two cross beams (3013), and two symmetric second support beams (3016) are welded and fixedly connected in the middle of the two longitudinal beams (3014), the two first support beams (3015) and the two second support beams (3016) are in the shape of a cross, and the surfaces of the two first support beams (3015) and the two second support beams (3016) are welded and fixed with the surface of the inner frame (3011), and the photovoltaic solar panels (302) are fixed in the annular area formed by the inner frame (3011) and the outer frame (3012). The number of the charging piles (200) is several, and the several charging piles (200) are divided into two groups, and the two groups of charging piles (200) are symmetrically arranged on the two sides of the photovoltaic carport mechanism (300), and the surface of the ground (100) is sprayed with parking spaces (101) corresponding to the charging piles (200), and the surface of the parking space (101) is provided with a limiting strip (102) for limiting the automobile.
2. The intelligent charging station with photovoltaic canopy as claimed in claim 1, wherein, The surfaces of the cross beams (3013) and the second support beams (3016) are equidistantly fixed with three third support beams (3017).
3. The intelligent charging station with photovoltaic canopy as claimed in claim 1 wherein, The surfaces of the longitudinal beams (3014) and the first support beams (3015) are fixed with fourth support beams (3018).
4. The intelligent charging station with photovoltaic canopy as claimed in claim 2, wherein, The lower surfaces of the third support beams (3017) are fixed with two symmetric mounting vertical beams (3019), the bottom ends of the mounting vertical beams (3019) are welded and fixed with first mounting angle plates, the lower surfaces of the cross beams (3013) and the longitudinal beams (3014) are fixed with two symmetric support columns (3020), and the bottom ends of the support columns (3020) are welded and fixed with second mounting angle plates.
5. The intelligent charging station with photovoltaic canopy as claimed in claim 1 wherein, The charging pile (200) is arranged below the ground (100) when not in use, the upper surface of the ground (100) is pre-excavated with a storage pit, and the inside of the storage pit is provided with a storage mechanism (400) for storing the charging pile (200).
6. The intelligent charging station with photovoltaic canopy as claimed in claim 5, wherein, The storage mechanism (400) comprises a storage box (401) fixed in the storage pit, a lifting plate (402) slidably arranged on the inner wall of the storage box (401), and a mounting seat (403) fixed on the upper surface of the lifting plate (402), the charging pile (200) is fixed on the upper surface of the mounting seat (403), a rectangular opening is formed in the upper surface of the storage box (401), and the mounting seat (403) is slidably connected with the inner wall of the rectangular opening.
7. The intelligent charging station with photovoltaic canopy as claimed in claim 6, wherein, The storage mechanism (400) further comprises two rectangular boxes (404) symmetrically fixed to the inner bottom wall of the storage box (401), and two synchronous motors (405) respectively fixed to the inner bottom wall of the two rectangular boxes (404), the output ends of the two synchronous motors (405) are both fixed with vertical threaded columns (406), the top ends of the vertical threaded columns (406) extend to the upper surface of the rectangular box (404) and are rotationally connected with the inner top wall of the storage box (401), the upper surface of the rectangular box (404) is provided with a rotating hole, the inner wall of the rotating hole is fixed with a bearing, and the inner ring surface of the bearing is fixedly connected with the outer surface of the vertical threaded column (406).
8. The intelligent charging station with photovoltaic canopy as claimed in claim 7, wherein, The surface of the lifting plate (402) is provided with two symmetric mounting holes, and the inner wall of each mounting hole is fixedly provided with an internal threaded sleeve (407), and the inner wall of each internal threaded sleeve (407) is threadedly connected with the outer surface of the vertical threaded column (406).
9. The intelligent charging station with photovoltaic canopy as claimed in claim 8, wherein, The upper surface of the storage box (401) is provided with a sealing mechanism (500) for effectively sealing the top of the storage box (401) after the charging pile (200) is stored in the inside of the storage box (401), the sealing mechanism (500) comprises an annular mounting groove (501) formed in the upper surface of the storage box (401), and an annular inflatable air bag (502) fixed to the inner wall of the annular mounting groove (501), the top of the charging pile (200) is provided with a sealing pressing plate (503) matched with the top of the storage box (401).
10. The intelligent charging station with photovoltaic canopy as claimed in claim 9, wherein, The sealing mechanism (500) further comprises a telescopic air bag column (504) fixed to the inner bottom wall of the storage box (401), the inner top wall of the telescopic air bag column (504) is fixedly provided with a return spring, the bottom end of the return spring is fixedly connected with the inner bottom wall of the telescopic air bag column (504), the bottom end outer surface of the telescopic air bag column (504) is provided with a communication pipe, one end of the communication pipe extends to the inside of the telescopic air bag column (504), and the end of the communication pipe away from the telescopic air bag column (504) extends to the inside of the annular inflatable air bag (502).