Light storage and charging integrated charging pile capable of adjusting angle of solar panel
By introducing a servo motor and gear mechanism into the integrated photovoltaic storage and charging pile, the photovoltaic panel angle adjustment and shield protection are achieved, solving the problems of snow accumulation, space occupation and cleaning, and improving the power generation efficiency and protection effect.
Patent Information
- Application Number
- CN202511022066.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-24
- Publication Date
- 2025-09-23
AI Technical Summary
Existing integrated photovoltaic, storage and charging charging piles have problems such as the inability to drain accumulated snow or hail in a timely manner, the large space occupied by photovoltaic panels, and the difficulty in angle adjustment and cleaning, resulting in low power generation efficiency.
The photovoltaic panel angle can be adjusted by using an integrated photovoltaic storage and charging pile. The angle of the photovoltaic panel can be adjusted by a servo motor and gear mechanism. Combined with the protection and cleaning mechanism of the shield structure, automatic control is performed using a magnetic proximity switch and a photosensor to achieve angle optimization and protection of the photovoltaic panel.
It improves the power generation efficiency of photovoltaic panels, reduces the risk of damage from snow and hail, improves space utilization and cleaning effects, and ensures long-term and efficient power generation of photovoltaic panels.
Smart Images

Figure CN120680968A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to a charging pile, and in particular to a photovoltaic storage and charging integrated charging pile with adjustable solar panel angles. Background Art
[0002] With the development of new energy technologies, charging piles have become widely used in daily life. Depending on the charging object, they can be mainly divided into three types: electric vehicle charging piles, electric bicycle charging piles, and other charging piles. Chinese invention patent application number 202421046793.6 provides a new energy charging pile with integrated photovoltaic storage and charging. This charging pile "blocks the photovoltaic panels when they move, preventing damage to the panels from severe weather such as snow and hail, thereby extending the service life of the panels. Furthermore, it can also drive multiple photovoltaic panels to move toward the outside of the cover, allowing multiple photovoltaic panels to extend beyond the cover." However, there are three technical problems: First, the protective cover cannot promptly remove accumulated snow or hail, posing a risk of damage from accumulated damage. Second, when the photovoltaic panels extend beyond the cover, they occupy more surface area, resulting in low space utilization. Third, the charging pile lacks an angle adjustment mechanism and a cleaning mechanism, making it difficult to clean the angle and surface of the photovoltaic panels, resulting in low power generation efficiency. These issues highlight the shortcomings of the existing technology. Summary of the Invention
[0003] The purpose of the present invention is to provide a photovoltaic storage and charging integrated charging pile with adjustable solar panel angle to solve the above-mentioned technical problems.
[0004] To achieve the above-mentioned purpose, the present invention adopts the following technical solutions: A photovoltaic storage and charging integrated charging pile with adjustable solar panel angles, comprising a pile body, a battery pack, a control system, a rain shield tile, a human-computer interaction device, and an output part. The pile body is equipped with a battery pack and a control system for controlling the circuit, and a rain shield tile is fixed to the upper part of the outer wall. The control system is electrically connected to the external power grid. A human-computer interaction device is fixed to the front of the pile body. The pile body is also equipped with an output part for external charging. A vertical support cylinder is fixed to the top of the pile body, a vertical No. 1 servo motor is fixed in the support cylinder, and the support cylinder is coaxially connected to a vertical rotating cylinder, the rotating cylinder is coaxially fixed with the rotating shaft of the No. 1 servo motor, a vertical main support frame is fixed outside the rotating cylinder, a No. 2 servo motor is fixed to the left part of the main support frame, and the left and right parts are each rotatably connected to a hollow shaft in the left and right horizontal directions, and the two hollow shafts are coaxially connected. The shaft is set and a protective cover is fixed together. The bottom of the protective cover is hemispherical and the upper part is cylindrical. The rotating shaft of the No. 2 servo motor is set horizontally left and right. A support plate is fixed in the middle of the rotating shaft of the No. 2 servo motor. The rotating shaft of the No. 2 servo motor is rotatably connected to the hollow shaft through a bearing. A flush photovoltaic panel is embedded and fixed on the top of the support plate, and the gap is inserted in the protective cover. The right part of the main support frame is fixed with the No. 3 servo motor along the left and right directions. The rotating shaft of the No. 3 servo motor is coaxially fixed with a gear, and the hollow shaft on the right side of the protective cover is coaxially fixed with a gear ring, and the gear is meshed with the gear ring. The No. 1 servo motor, the No. 2 servo motor and the No. 3 servo motor have braking function and waterproof function respectively. The battery pack, human-computer interaction device, output part, No. 1 servo motor, No. 2 servo motor, photovoltaic panel and No. 3 servo motor are electrically connected to the control system.
[0005] On the basis of the above technical solution, a magnetic proximity switch is fixed on the front and rear parts of the support plate, and a magnetic block is fixed on the front and rear parts of the shield. The magnetic proximity switch is electrically connected to the control system. The two magnetic proximity switches correspond to the two magnetic blocks front and back respectively. The two magnetic proximity switches can respectively sense the corresponding magnetic blocks front and back and operate. When the No. 3 servo motor rotates, the hollow shaft and the shield are driven to rotate half a circle through the engagement of the gear and the ring gear, so that the magnetic proximity switch can correspond to the magnetic block front and back again.
[0006] Based on the above technical solution, the outer surface of the shield is smooth, and drainage holes are passed through the bottom and top of the shield, and a water-permeable filter is sealed and fixed in the drainage hole.
[0007] Based on the above technical solution, a flush photosensitive sensor No. 1 is embedded and fixed on the left and right parts of the top of the support plate, and a flush photosensitive sensor No. 2 is embedded and fixed on the front and back parts of the top of the support plate. The photosensitive sensor No. 1 and the photosensitive sensor No. 2 are electrically connected to the control system respectively.
[0008] On the basis of the above technical solution, a vertical gear reducer and a sub-support frame are fixed to the bottom end of the support plate, and a vertical speed-regulating motor is fixed to the bottom of the sub-support frame. The rotating shaft of the speed-regulating motor is vertically arranged, and the output shaft and input shaft of the gear reducer are both vertically arranged. The rotating shaft of the speed-regulating motor is coaxially fixed with the input shaft of the gear reducer, and the output shaft of the gear reducer is coaxially fixed with a flower shaft, and the flower shaft is connected to the support plate coaxially, and a limiting plate is fixed on the top of the flower shaft, and a support rod is axially slidably connected, and a row of bristles is fixed to the bottom end of the support rod, and the speed-regulating motor is electrically connected to the control system. When the speed-regulating motor rotates, it can drive the flower shaft to rotate slowly through the gear reducer, and when the flower shaft rotates slowly, it can drive the support rod and the bristles to move circumferentially, and the bristles always have a tendency to fit with the top of the support plate under the gravity pressure of the support rod.
[0009] Based on the above technical solution, the speed regulating motor is a dual-axis speed regulating motor, the upper part of the rotating shaft of the speed regulating motor is fixed coaxially with the input shaft of the gear reducer, and a turbofan is coaxially fixed to the bottom of the rotating shaft of the speed regulating motor. The bottom of the support plate is provided with multiple heat dissipation grooves extending to the bottom end of the photovoltaic panel, and there is a gap between the outer circumferential edge of the support plate and the inner wall of the shield.
[0010] Based on the above technical solution, the output part includes a placement seat, a charging gun, and a charging cable. A placement seat is fixed to the left end of the pile body, and the placement seat is connected to a detachable charging gun. The charging gun and the control system are electrically connected through the charging cable.
[0011] Based on the above technical solution, the output part includes a socket, a charging socket, a rain cover, and a rain shield tube. A socket is fixed at the right end of the pile body. The socket is provided with multiple charging sockets and is electrically connected to the control system. A rain cover is hinged on the left and right upper part of the socket. The right end of the rain cover is fixed with multiple rain shield tubes tilted to the lower right, and the rain shield tubes correspond to the charging socket on the left and right.
[0012] Compared with the existing technology, the present invention has the following advantages: when the No. 1 servo motor rotates forward and reverse, the rotating cylinder and the main support frame can drive the hollow shaft and the support plate to swing left and right; when the No. 2 servo motor rotates forward and reverse, the support plate can be driven to swing back and forth, thereby adjusting the angle of the photovoltaic panel and changing its angle relative to sunlight, so that the photovoltaic panel can receive sunlight well and improve power generation efficiency. The angle adjustment of the photovoltaic panel does not involve expansion and contraction, does not occupy too much space and cause waste, and improves space utilization. When the No. 3 servo motor rotates, the gear and ring gear can cause the shield to swing back and forth, thereby changing its position relative to the support plate. When it is located above the photovoltaic panel to block rain, snow and hail, it can protect the photovoltaic panel. Due to its hemispherical structure, rain, snow and hail can be discharged as quickly as possible to reduce backlog. When the shield opening is upward, the covered snow can be discharged even more quickly, further reducing the risk of damage. The speed regulating motor, gear reducer and flower shaft can drive the support rod and bristles to move circumferentially, and can also drive the turbofan to rotate, which can not only dissipate heat for the photovoltaic panels to improve the power generation efficiency, but also clean the photovoltaic panels, No. 1 photosensor and No. 2 photosensor, so that dust can be better removed and discharged, thereby improving the cleaning effect and indirectly improving the power generation efficiency of the photovoltaic panels. BRIEF DESCRIPTION OF THE DRAWINGS
[0013] Figure 1 It is a schematic diagram of the axonometric structure of the present invention.
[0014] Figure 2 This is a schematic diagram of the matching of the socket and the rain cover of the present invention.
[0015] Figure 3 This is a schematic diagram of the coordination between the charging gun and the placement base of the present invention.
[0016] Figure 4 It is a schematic diagram of the cooperation between the support rod and the flower axis of the present invention.
[0017] Figure 5 It is a schematic diagram of the bottom structure of the support plate of the present invention.
[0018] Figure 6 It is a top view schematic diagram of the protective cover of the present invention.
[0019] , 32. Turbofan, 33. Heat dissipation slot, 34. Placement seat, 35. Charging gun, 36. Charging line, 37. Socket, 38. Charging jack, 39. Rain cover, 40. Rain cover. DETAILED DESCRIPTION
[0020] The present invention will be further described in detail below with reference to the accompanying drawings and specific embodiments.
[0021] like Figures 1-6 As shown, a photovoltaic storage and charging integrated charging pile with adjustable solar panel angle includes a pile body 1, a battery pack, a control system, a rain shield tile 4, a human-computer interaction device 5, and an output part. The pile body 1 has a built-in battery pack and a control system for controlling the circuit, and a rain shield tile 4 is fixed on the upper part of the outer wall. The control system is electrically connected to the external power grid. The front part of the pile body 1 is fixed with a human-computer interaction device 5. The pile body 1 is also equipped with an output part for external output for charging. The top of the pile body 1 is fixed with a vertical A straight support cylinder 7 is fixed inside the support cylinder 7. A vertical servo motor 8 is fixed inside the support cylinder 7. The support cylinder 7 is coaxially connected to a vertical rotating cylinder 9. The rotating cylinder 9 is coaxially fixed with the rotating shaft of the servo motor 8. A vertical main support frame 10 is fixed outside the rotating cylinder 9. A servo motor 11 is fixed to the left of the main support frame 10, and the left and right parts are respectively connected to a hollow shaft 12 for rotation along the left and right horizontal directions. The two hollow shafts 12 are coaxially arranged and are jointly fixed with a shield 13. The bottom of the shield 13 It is hemispherical and cylindrical at the top. The shaft of the second servo motor 11 is horizontally arranged left and right. A support plate 14 is fixed to the middle of the shaft of the second servo motor 11. The shaft of the second servo motor 11 is rotatably connected to the hollow shaft 12 through a bearing. A flush photovoltaic panel 15 is fixed to the top of the support plate 14, and the gap is inserted into the shield 13. The right part of the main support frame 10 is fixed with a third servo motor 16 in the left and right directions. The shaft of the third servo motor 16 is coaxially fixed with a gear. Wheel 17, the hollow shaft 12 on the right side of the shield 13 is coaxially fixed with a ring gear 18, the gear 17 is engaged with the ring gear 18, the No. 1 servo motor 8, the No. 2 servo motor 11 and the No. 3 servo motor 16 have braking function and waterproof function respectively, the battery pack, the human-computer interaction device 5, the output part, the No. 1 servo motor 8, the No. 2 servo motor 11, the photovoltaic panel 15 and the No. 3 servo motor 16 are electrically connected to the control system, and the control system is a known prior art, such as a single-chip microcomputer and an industrial computer.
[0022] When in use, the bottom end of the pile body 1 is fixed to the ground, and the rainproof tile 4 is used to protect against rain. The control system is controlled by the human-computer interaction device 5, and then the control system is used to further control the No. 1 servo motor 8, the No. 2 servo motor 11 and the No. 3 servo motor 16 to rotate or brake. When the No. 1 servo motor 8 rotates forward and backward, the rotating cylinder 9 and the main support frame 10 can drive the hollow shaft 12 and the support plate 14 to swing left and right. When the No. 2 servo motor 11 rotates forward and backward, it can drive the support plate 14 to swing back and forth, thereby adjusting the angle of the photovoltaic panel 15 and changing its angle relative to the sunlight, so that the photovoltaic panel 15 can receive the sunlight well, thereby improving the power generation efficiency, and the photovoltaic panel The electric energy generated by 15 is processed by the control system and stored in the battery pack for charging the output part. The electric energy of the power grid can also be output through the output part after being processed by the control system. When the No. 3 servo motor 16 rotates, the gear 17 and the ring gear 18 can make the shield 13 swing back and forth, thereby changing its position relative to the support plate 14. When it is located above the photovoltaic panel 15 to block it, it can block rain, snow and hail, thereby protecting the photovoltaic panel 15. Due to its hemispherical structural characteristics, rain, snow and hail can be discharged as soon as possible to reduce backlog. When the shield 13 opens upward, the covered snow can be discharged more quickly, further reducing the risk of damage.
[0023] A magnetic proximity switch 19 is fixed to the front and rear parts of the support plate 14, and a magnetic block 20 is fixed to the front and rear parts of the shield 13. The magnetic proximity switch 19 is electrically connected to the control system. The two magnetic proximity switches 19 correspond to the two magnetic blocks 20 in front and back, respectively. The two magnetic proximity switches 19 can respectively sense the corresponding magnetic blocks 20 in the front and back and operate. When the No. 3 servo motor 16 rotates, the hollow shaft 12 and the shield 13 are driven to rotate half a circle through the engagement of the gear 17 and the ring gear 18, so that the magnetic proximity switch 19 can correspond to the magnetic block 20 in the front and back again.
[0024] Furthermore, by setting a magnetic proximity switch 19 and a magnetic block 20, it is convenient to automatically judge the status of the support plate 14 and the shield 13, that is, by controlling the No. 3 servo motor 16 to rotate, the shield 13 swings back and forth; when there is no need to protect the photovoltaic panel 15, the shield 13 is mainly located below the photovoltaic panel 15, and the magnetic proximity switch 19 and the magnetic block 20 correspond to each other front to back. At this time, the magnetic proximity switch 19 can sense the magnetic block 20, that is, feedback is sent to the control system to brake the No. 3 servo motor 16. When it is necessary to protect the photovoltaic panel 15, the shield 13 is controlled to flip half a circle, so that the magnetic proximity switch 19 and the magnetic block 20 can correspond to each other front to back again. At this time, the magnetic proximity switch 19 can sense the magnetic block 20, that is, feedback is sent to the control system to brake the No. 3 servo motor 16.
[0025] The outer surface of the protective cover 13 is smooth, and drainage holes 21 are passed through the bottom and top of the bottom end. A water-permeable filter screen 22 is sealed and fixed in the drainage hole 21.
[0026] Furthermore, when it rains, since the damage to the photovoltaic panel 15 is very small, the shield 13 does not need to be controlled to protect the photovoltaic panel 15. At this time, when rainwater enters the shield 13, it can be discharged through the drainage hole 21. When the shield 13 protects the photovoltaic panel 15, the filter 22 can also effectively prevent the damage to the photovoltaic panel 15 caused by accumulated snow and hail. The smooth outer surface of the shield 13 accelerates the discharge of accumulated snow and hail.
[0027] A flush No. 1 photosensitive sensor 23 is fixedly embedded in the left and right parts of the top of the support plate 14, and a flush No. 2 photosensitive sensor 24 is fixedly embedded in the front and back parts of the top of the support plate 14. The No. 1 photosensitive sensor 23 and the No. 2 photosensitive sensor 24 are electrically connected to the control system respectively.
[0028] Two No. 1 photosensors 23 are used to sense sunlight, so as to determine whether the left and right angles of the photovoltaic panel 15 match the sunlight. If they do not match, the feedback is sent to the control system to automatically control the No. 1 servo motor 8 to rotate until the sensing results of the two No. 1 photosensors 23 are close to the same, that is, the left and right positions of the photovoltaic panel 15 face the direction of sunlight. Similarly, two No. 2 photosensors 24 are used to sense sunlight, so as to determine whether the upper and lower angles of the photovoltaic panel 15 match the sunlight. If they do not match, the feedback is sent to the control system to automatically control the No. 2 servo motor 11 to rotate until the sensing results of the two No. 2 photosensors 24 are close to the same, that is, the upper and lower positions of the photovoltaic panel 15 face the direction of sunlight; thereby realizing automatic control of the angle of the photovoltaic panel 15, improving convenience and power generation efficiency.
[0029] A vertical gear reducer 25 and a sub-support frame 26 are fixed to the bottom of the support plate 14. A vertical speed regulating motor 27 is fixed to the bottom of the sub-support frame 26. The rotating shaft of the speed regulating motor 27 is vertically arranged. The output shaft and input shaft of the gear reducer 25 are both vertically arranged. The rotating shaft of the speed regulating motor 27 is coaxially fixed with the input shaft of the gear reducer 25. The output shaft of the gear reducer 25 is coaxially fixed with a flower shaft 28. The flower shaft 28 is coaxially connected to the support plate 14. A limiting plate 29 is fixed to the top of the flower shaft 28, and a support rod 30 is axially slidably connected thereto. A row of bristles 31 are fixed to the bottom of the support rod 30. The speed regulating motor 27 is electrically connected to the control system. When the speed regulating motor 27 rotates, it can drive the flower shaft 28 to rotate slowly through the gear reducer 25. When the flower shaft 28 rotates slowly, it can drive the support rod 30 and the bristles 31 to move circumferentially. Under the pressure of gravity of the support rod 30, the bristles 31 always have a tendency to fit into the top of the support plate 14.
[0030] Furthermore, the speed regulating motor 27 can be controlled by the control system. When the speed regulating motor 27 rotates, the gear reducer 25 and the flower shaft 28 can drive the support rod 30 and the bristles 31 to move circumferentially, thereby cleaning the top of the photovoltaic panel 15, the No. 1 photosensitive sensor 23 and the No. 2 photosensitive sensor 24, ensuring that they are not covered by dust accumulation and unable to work after long-term use, thereby ensuring the power generation efficiency of the photovoltaic panel 15.
[0031] The speed regulating motor 27 is a dual-axis speed regulating motor 27. The upper part of the rotating shaft of the speed regulating motor 27 is fixed coaxially with the input shaft of the gear reducer 25. The bottom of the rotating shaft of the speed regulating motor 27 is coaxially fixed with a turbofan 32. The bottom of the support plate 14 is provided with multiple heat dissipation grooves 33 extending to the bottom end of the photovoltaic panel 15. There is a gap between the outer circumferential edge of the support plate 14 and the inner wall of the shield 13.
[0032] Furthermore, when the shield 13 is mainly located below the support plate 14, the air flow can be transported upward by timely controlling the speed regulating motor 27 to rotate. The air flow enters through the drainage hole 21 and then blows the bottom of the photovoltaic panel 15 through the heat dissipation groove 33, and is finally discharged to the outside through the gap between the support plate 14 and the shield 13, thereby realizing air cooling and heat dissipation of the photovoltaic panel 15, and then ensuring the power generation efficiency of the photovoltaic panel 15 under high temperature environment. When the shield 13 protects the photovoltaic panel 15, the turbofan 32 is used to transport air flow to the top of the photovoltaic panel 15, and the bristles 31 are used to clean the photovoltaic panel 15, the No. 1 photosensor 23 and the No. 2 photosensor 24, so that dust can be better removed and discharged, thereby improving the cleaning effect and indirectly improving the power generation efficiency of the photovoltaic panel 15.
[0033] The output part includes a placement seat 34, a charging gun 35, and a charging line 36. The placement seat 34 is fixed to the left end of the pile body 1. The placement seat 34 is plugged into a detachable charging gun 35. The charging gun 35 is electrically connected to the control system through the charging line 36.
[0034] The electric vehicle is charged via the charging gun 35 .
[0035] The output part includes a socket 37, a charging socket 38, a rain cover 39, and a rain shield tube 40. The socket 37 is fixed at the right end of the pile body 1. The socket 37 is provided with multiple charging sockets 38 and is electrically connected to the control system. The upper right part of the socket 37 is hinged with a rain cover 39. The right end of the rain cover 39 is fixedly connected to multiple rain shield tubes 40 tilted to the lower right. The rain shield tubes 40 correspond to the charging sockets 38 on the left and right.
[0036] After the plug of the electric bicycle charger is passed through the rain shield 40, the rain shield cover 39 is opened to connect the plug with the charging socket 38 on the socket 37, thereby realizing charging. The rain shield cover 39 and the rain shield cover 40 can play a role in shielding from rain. After charging is completed, the rain shield cover 39 is opened again to separate the plug from the charging socket 38 on the socket 37, and then the plug is pulled out of the rain shield cover 40.
[0037] The above is a preferred embodiment of the present invention. For ordinary technicians in this field, based on the teachings of the present invention, without departing from the principles and spirit of the present invention, changes, modifications, substitutions and variations made to the implementation methods are still within the scope of protection of the present invention.
Claims
1. A solar-storage-charging integrated charging pile with adjustable solar panel angle, comprising a pile body (1), a battery pack, a control system, rain shielding tiles (4), a human-computer interaction device (5), and an output part, characterized in that: The pile body (1) is equipped with a battery pack and a control system for controlling the circuit, and a rain shield tile (4) is fixed on the upper part of the outer wall. The control system is electrically connected to the external power grid. A human-machine interaction device (5) is fixed on the front part of the pile body (1). The pile body (1) is also equipped with an output part for external output and charging. A vertical support cylinder (7) is fixed on the top of the pile body (1). A vertical servo motor (8) is fixed in the support cylinder (7). The support cylinder (7) is coaxially connected to a A vertical rotating cylinder (9) is fixed coaxially with the rotating shaft of the first servo motor (8). A vertical main support frame (10) is fixed outside the rotating cylinder (9). A second servo motor (11) is fixed on the left of the main support frame (10). The left and right parts are connected to a hollow shaft (12) for rotation in the left and right horizontal directions. The two hollow shafts (12) are coaxially arranged and are fixed with a shield (13) on the same axis. The bottom of the shield (13) is hemispherical and the upper part is cylindrical. The second servo motor The rotating shaft of the second servo motor (11) is arranged horizontally from left to right. A support plate (14) is fixed to the middle of the rotating shaft of the second servo motor (11). The rotating shaft of the second servo motor (11) is rotatably connected to the hollow shaft (12) through a bearing. A flush photovoltaic panel (15) is fixed to the top of the support plate (14), and the gap is inserted into the shield (13). The right part of the main support frame (10) is fixed with a third servo motor (16) in the left and right directions. The rotating shaft of the third servo motor (16) is coaxially fixed with a gear ( 17), a gear ring (18) is coaxially fixed to the hollow shaft (12) on the right side of the shield (13), and the gear (17) is meshed with the gear ring (18). The No. 1 servo motor (8), the No. 2 servo motor (11), and the No. 3 servo motor (16) respectively have a braking function and a waterproof function. The battery pack, the human-machine interaction device (5), the output part, the No. 1 servo motor (8), the No. 2 servo motor (11), the photovoltaic panel (15), and the No. 3 servo motor (16) are electrically connected to the control system.
2. The integrated solar-storage-charging charging pile with adjustable solar panel angle according to claim 1, characterized in that: A magnetic proximity switch (19) is fixed to the front and rear parts of the support plate (14), and a magnetic block (20) is fixed to the front and rear parts of the shield (13). The magnetic proximity switch (19) is electrically connected to the control system. The two magnetic proximity switches (19) correspond to the two magnetic blocks (20) in front and back, respectively. The two magnetic proximity switches (19) can respectively sense the corresponding magnetic blocks (20) in front and back and act. When the third servo motor (16) rotates, the gear (17) and the ring gear (18) are engaged to drive the hollow shaft (12) and the shield (13) to rotate half a circle, and then the magnetic proximity switch (19) can again correspond to the magnetic block (20) in front and back.
3. The integrated solar-storage-charging charging pile with adjustable solar panel angle according to claim 1, characterized in that: The outer surface of the shield (13) is smooth, and drainage holes (21) are passed through the bottom end. A water-permeable filter (22) is sealed and fixed in the drainage hole (21).
4. A solar-storage-charging integrated charging pile with adjustable solar panel angle according to any one of claims 1-3, characterized in that: A flush No. 1 photosensitive sensor (23) is fixedly embedded in the left and right parts of the top of the support plate (14), and a flush No. 2 photosensitive sensor (24) is fixedly embedded in the front and back parts of the top of the support plate (14). The No. 1 photosensitive sensor (23) and the No. 2 photosensitive sensor (24) are electrically connected to the control system respectively.
5. The integrated solar-storage-charging charging pile with adjustable solar panel angle according to claim 4, characterized in that: A vertical gear reducer (25) and a sub-support frame (26) are fixed to the bottom of the support plate (14); a vertical speed regulating motor (27) is fixed to the bottom of the sub-support frame (26); the rotating shaft of the speed regulating motor (27) is vertically arranged; the output shaft and the input shaft of the gear reducer (25) are both vertically arranged; the rotating shaft of the speed regulating motor (27) is coaxially fixed to the input shaft of the gear reducer (25); a flower shaft (28) is coaxially fixed to the output shaft of the gear reducer (25); the flower shaft (28) is coaxially connected to the support plate (14); the flower shaft A limiting plate (29) is fixed at the top of (28), and a support rod (30) is axially slidably connected thereto. A row of bristles (31) is fixed at the bottom of the support rod (30). The speed regulating motor (27) is electrically connected to the control system. When the speed regulating motor (27) rotates, it can drive the flower shaft (28) to rotate slowly through the gear reducer (25). When the flower shaft (28) rotates slowly, it can drive the support rod (30) and the bristles (31) to move circumferentially. Under the pressure of gravity of the support rod (30), the bristles (31) always have a tendency to fit with the top of the support disk (14).
6. The integrated solar-storage-charging charging pile with adjustable solar panel angle according to claim 5, characterized in that: The speed regulating motor (27) is a dual-axis speed regulating motor (27), the upper portion of the rotating shaft of the speed regulating motor (27) is fixed coaxially with the input shaft of the gear reducer (25), and a turbofan (32) is coaxially fixed to the bottom of the rotating shaft of the speed regulating motor (27), a plurality of heat dissipation grooves (33) extending to the bottom end of the photovoltaic panel (15) are opened at the bottom of the support plate (14), and a gap exists between the outer circumferential edge of the support plate (14) and the inner wall of the shield (13).
7. The integrated solar-storage-charging charging pile with adjustable solar panel angle according to claim 5, characterized in that: The output part includes a placement seat (34), a charging gun (35), and a charging line (36). The placement seat (34) is fixed to the left end of the pile body (1). The placement seat (34) is plugged into a detachable charging gun (35). The charging gun (35) is electrically connected to the control system via the charging line (36).
8. The integrated solar-storage-charging charging pile with adjustable solar panel angle according to claim 5, characterized in that: The output part includes a socket (37), a charging socket (38), a rain cover (39), and a rain shield cylinder (40). The right end of the pile body (1) is fixed with a socket (37). The socket (37) is provided with a plurality of charging sockets (38) and is electrically connected to the control system. The upper right part of the socket (37) is hinged with a rain cover (39) on the left and right sides. The right end of the rain cover (39) is fixedly connected with a plurality of rain shield cylinders (40) tilted toward the lower right. The rain shield cylinders (40) correspond to the charging sockets (38) on the left and right sides.
Citation Information
Patent Citations
Light storage and charging integrated new energy charging pile
CN222360871U