A wind storage and charging integrated charging pile

CN122607148APending Publication Date: 2026-08-21JIANGSU SMART GREEN CHARGING TECH CO LTD
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Patent Information

Application Number
CN202611103869.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-07-24
Publication Date
2026-08-21

AI Technical Summary

Technical Problem

[0005]为了克服叶片角度的固定设置,叶片无法根据实时风速进行动态调整角度,导致低风速时叶片捕风效率低,高风速时又无法及时调整角度以避免设备损耗或能量浪费,风能利用效率整体偏低的缺点,本发明提供一种能够根据风速及时的调整叶片角度,以提高风能捕获效率的风储充一体的充电桩

Benefits of technology

1、通过风驱动叶片转动,叶片转动带动空心轴转动,空心轴带动配重块转动,在离心力的作用下,配重块向外滑动通过拉线带动绕线轮转动,也就使得小锥齿轮通过大锥齿轮进行圆周运动,小锥齿轮通过转杆带动空心轴旋转,空心轴也就带动叶片旋转进行角度调节,如此,能够根据风速及时的调整叶片角度,从而提高风能捕获效率。

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Abstract

The application relates to the technical field of charging piles, in particular to a wind storage and charging integrated charging pile which comprises a charging cabinet, the top of the charging cabinet is connected with a circular shell, a generator connected with the storage battery circuit of the charging cabinet is arranged on the inner side of the circular shell, the end of the rotor shaft of the generator is connected with a rotating shaft, an annular plate is rotationally connected in the circular shell, hollow shafts are rotationally connected on the inner side of the annular plate at uniform intervals in the circumferential direction, the ends of the hollow shafts are rotationally connected with the rotating shaft, and the hollow shafts are fixedly sleeved with blades. The blades are driven to rotate by wind, the hollow shafts are driven to rotate by the rotation of the blades, the counterweight blocks are driven to rotate by the hollow shafts, the counterweight blocks slide outward under the action of centrifugal force, the winding wheel is driven to rotate by the pull wire, the small bevel gears are driven to perform circumferential movement by the large bevel gears, the hollow shafts are driven to rotate by the rotating rods, and the hollow shafts drive the blades to rotate to adjust the angles, so that the blade angles can be adjusted in time according to the wind speed, and the wind energy capturing efficiency is improved.
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Description

Technical Field

[0001] This invention relates to the field of charging pile technology, and in particular to a charging pile that integrates wind power, energy storage, and charging. Background Technology

[0002] Charging piles are suitable for scenarios such as public parking lots, highway service areas, communities and remote areas. They aim to solve the problems of renewable energy consumption, grid load fluctuations, high charging costs and off-grid power supply, and promote the development of electric vehicle charging facilities towards green, efficient and intelligent directions. Existing charging piles include power supply modes that use grid power and energy storage that uses wind. Among them, using wind energy storage charging technology to charge charging piles can achieve energy-saving effects.

[0003] Chinese patent CN113386606B discloses an integrated wind, solar, and energy storage charging pile for electric vehicles, including a base and a baffle. The base serves as the bottom support structure of the device, and a baffle is connected to the front of the base to block vehicles. The upper end of the base is connected to the charging pile body, the cross-sectional area of ​​which is smaller than that of the base. A wind power generation system and a solar power generation system are installed at the center of the upper end of the charging pile body. The charging pile body is internally connected to a line for transmitting electrical energy. Although the above patent can use wind to rotate the blades for wind power generation, the fixed blade angle prevents the blades from dynamically adjusting their angle according to the real-time wind speed. This results in low wind speeds, low wind capture efficiency, and insufficient power generation, while at high wind speeds, the blades cannot adjust their angles in time to avoid equipment damage or energy waste. Overall, the wind energy utilization efficiency is low, making it difficult to fully realize the energy-saving advantages of the integrated wind, energy storage, and charging system.

[0004] The present invention aims to solve the problems existing in the above-mentioned patents. To this end, it proposes a wind energy storage and charging integrated charging pile that can adjust the blade angle in a timely manner according to the wind speed to improve the wind energy capture efficiency. Summary of the Invention

[0005] To overcome the shortcomings of fixed blade angle settings, which prevent the blades from dynamically adjusting their angles according to real-time wind speed, resulting in low wind capture efficiency at low wind speeds and the inability to adjust the angles in time at high wind speeds to avoid equipment damage or energy waste, and overall low wind energy utilization efficiency, this invention provides a wind-storage-charging integrated charging pile that can adjust the blade angles in time according to wind speed to improve wind energy capture efficiency.

[0006] This invention is achieved through the following technical solution: A charging pile integrating wind, storage, and charging includes a charging cabinet, a circular shell connected to the top of the charging cabinet, a generator connected to the storage battery circuit of the charging cabinet installed inside the circular shell, a rotating shaft connected to the end of the generator's rotor shaft, an annular plate rotatably connected inside the circular shell, hollow shafts rotatably connected at even intervals along the circumference inside the annular plate, the ends of the hollow shafts rotatably connected to the rotating shaft, blades fixedly fitted on the hollow shafts, a torsion spring connected between the blades and the annular plate, a winding wheel rotatably connected inside the hollow shaft, guide wheels symmetrically arranged inside the hollow shaft near the winding wheel, a pull wire wound on the winding wheel, a counterweight block slidably connected to the end of the pull wire and the inner side of the hollow shaft, a transmission component installed inside the winding wheel, the transmission component being connected to the winding wheel and the hollow shaft respectively, for transmitting the rotation of the winding wheel to the hollow shaft, and a wind guide component installed between the charging cabinet and the circular shell.

[0007] Further explanation: The transmission assembly includes large bevel gears fixedly connected to the circumference of the rotating shaft at even intervals. The large bevel gears are located inside the hollow shaft. A rotating rod is rotatably connected to the inside of the hollow shaft. A small bevel gear is fixedly mounted on the rotating rod. The small bevel gear meshes with the large bevel gear. A large gear is also fixedly mounted on the rotating rod. A small gear that meshes with the large gear is fixedly mounted on the shaft of the winding wheel.

[0008] Further explanation: The air guide assembly includes an air guide shell fixed to the circular shell, with an open right side. A square shell is fixedly fitted onto the outer side of the air guide shell, and an air guide frame is fixedly attached to the bottom of the square shell. The tail end of the air guide frame is fixedly connected to the charging cabinet for exhausting air into the charging cabinet. A frame is fixedly inserted at even intervals on the top and bottom of the air guide shell. An air guide plate is rotatably connected between the two sides of the frame for controlling the air volume. An air guide pipe is fixedly attached to the frame, and the end of the air guide pipe is fixedly connected to the square shell for exhausting air into the square shell. A drive assembly is provided between the air guide plate and the inner side of the air guide shell for driving the air guide plate to swing.

[0009] Further explanation: The drive assembly includes a connecting rod fixedly mounted on the shaft of the air guide plate, and swing rods are rotatably connected between the upper connecting rod and the lower connecting rod. Electric push rods are symmetrically rotatably connected to the inner side of the air guide shell, and the telescopic rod end of the electric push rod is rotatably connected to the tail end of one of the connecting rods.

[0010] To further explain, the integrated wind, storage and charging pile also includes a mounting shell fixed to the circumference of the circular shell. The mounting shell is fixedly connected with mesh plates at even intervals. The mesh plates are located on the left side of the blades and are used to filter impurities in the wind. The mounting shell is equipped with a scraping component to scrape off the impurities attached to the mesh plates.

[0011] Further explanation: The scraping assembly includes a connecting shaft that rotates through the mounting housing. A brush plate that contacts the screen is fixedly fitted at the end of the connecting shaft for scraping off impurities attached to the screen. A stepper motor is installed inside the mounting housing, and the output shaft end of the stepper motor is connected to the end of the connecting shaft.

[0012] To further explain, the integrated wind-storage-charging station also includes an indicator light installed on the charging cabinet to indicate the generator's operating status. The indicator light is electrically connected to the generator.

[0013] To further explain, the integrated wind, storage, and charging station also includes an embedded filter plate that snaps onto the air guide frame to filter impurities in the air.

[0014] The beneficial effects of this invention are as follows: 1. The blades are driven to rotate by the wind. The rotation of the blades drives the hollow shaft to rotate, which in turn drives the counterweight to rotate. Under the action of centrifugal force, the counterweight slides outward and drives the winding wheel to rotate through the pull wire. This causes the small bevel gear to make circular motion through the large bevel gear. The small bevel gear drives the hollow shaft to rotate through the rotating rod. The hollow shaft then drives the blades to rotate and adjust the angle. In this way, the blade angle can be adjusted in time according to the wind speed, thereby improving the wind energy capture efficiency.

[0015] 2. Under the action of the air guide plate, some air can be guided into the frame. The air inside the frame enters the air guide frame through the air duct and the square shell. The air guide frame discharges the air into the charging cabinet. The air cools the inside of the charging cabinet, thus preventing high temperature inside the charging cabinet from affecting its service life.

[0016] 3. With the help of the mesh plate, impurities in the wind can be filtered first. The filtered wind then enters the shell and comes into contact with the blades. This can prevent impurities in the wind from coming into contact with the blades and causing dirt to accumulate on the blade surface, increasing the surface roughness, damaging the aerodynamic shape, reducing the lift-to-drag ratio, and weakening the power generation efficiency, thereby ensuring the normal use of the blades. Attached Figure Description

[0017] Figure 1 This is a three-dimensional structural diagram of the present invention.

[0018] Figure 2 This is a cross-sectional view of the charging cabinet and the circular shell of the present invention.

[0019] Figure 3 This is a three-dimensional structural diagram of the hollow shaft and blades of the present invention.

[0020] Figure 4 This is a three-dimensional structural diagram of the winding wheel and counterweight of the present invention.

[0021] Figure 5This is a three-dimensional structural diagram of the transmission component of the present invention.

[0022] Figure 6 This is a three-dimensional structural diagram of the air guide component of the present invention.

[0023] Figure 7 This is a cross-sectional view of the air guide shell of the present invention.

[0024] Figure 8 This is a three-dimensional structural diagram of the protective component of the present invention.

[0025] Figure 9 This is a three-dimensional structural diagram of the stepper motor of the present invention.

[0026] Figure 10 This is a three-dimensional structural diagram of the filter plate of the present invention.

[0027] In the attached diagram, the following labels are used: 1-charging cabinet, 3-round shell, 4-generator, 5-ring plate, 6-rotating shaft, 7-blade, 8-hollow shaft, 9-torsion spring, 10-winding wheel, 11-counterweight, 12-pull line, 13-guide wheel, 14-rotating rod, 141-large gear, 142-small gear, 143-small bevel gear, 144-large bevel gear, 15-air guide shell, 1501-square shell, 151-air guide frame, 152-frame, 153-air guide plate, 154-air duct, 155-connecting rod, 156-swing rod, 157-electric push rod, 16-mounting shell, 161-mesh plate, 162-connecting shaft, 163-brush plate, 164-stepper motor, 17-indicator light, 18-filter plate. Detailed Implementation

[0028] The embodiments of the present invention will now be described in detail with reference to the accompanying drawings.

[0029] Example: A charging pile integrating wind power, energy storage, and charging; please refer to [link / reference]. Figures 1-7As shown, the device includes a charging cabinet 1 and a circular shell 3 fixedly connected to the charging cabinet 1. A generator 4 is installed on the right side inside the circular shell 3. The generator 4 is connected to the storage battery of the charging cabinet 1 via a circuit. The rotor shaft end of the generator 4 is connected to a rotating shaft 6 via a coupling. An annular plate 5 is rotatably connected to the left side inside the circular shell 3. Six hollow shafts 8 are rotatably connected to the inner side of the annular plate 5 at even intervals along the circumference. The inner ends of the six hollow shafts 8 are all rotatably connected to the left side of the rotating shaft 6. Blades 7 are fixedly fitted on the outer sides of the six hollow shafts 8. The end of the 7th shaft away from the rotating shaft 6 is connected to the inner side of the annular plate 5 by a torsion spring 9. It also includes a winding wheel 10, a counterweight 11, a pull wire 12, a guide wheel 13, and a transmission assembly. The six hollow shafts 8 are rotatably connected to the winding wheel 10 near the rotating shaft 6. The guide wheels 13 are symmetrically rotatably connected to the inner side of the hollow shafts 8, and are close to the winding wheel 10. A pull wire 12 is wound on the winding wheel 10, and a counterweight 11 is fixed to the end of the pull wire 12. The counterweight 11 is slidably connected to the inner side of the hollow shaft 8. The winding wheel 10 contains... A transmission assembly is provided, which is connected to the winding wheel 10 and the hollow shaft 8 respectively, to transmit the rotation of the winding wheel 10 to the hollow shaft 8. An air guide assembly is provided between the charging cabinet 1 and the circular shell 3. When the air guide assembly is in operation, it can exhaust air into the charging cabinet 1 to complete the air cooling of the charging cabinet 1. When the external airflow drives the blades 7 to rotate, the blades 7 drive the rotating shaft 6 to rotate, and the generator 4 generates electrical energy and stores it in the storage battery. At the same time, the counterweights 11 inside each hollow shaft 8... Under centrifugal force, the counterweight slides towards the annular plate 5, and drives the winding wheel 10 to rotate through the pull wire 12. The winding wheel 10 drives the hollow shaft 8 to rotate through the transmission component, which in turn drives the blade 7 to deflect, thus completing the adjustment of the windward angle of the blade 7. The greater the external wind force, the greater the centrifugal force on the counterweight 11, the farther it slides along the hollow shaft 8, and the greater the angle of deflection of the blade 7 driven by the transmission component. This realizes the function of automatically adjusting the angle of the blade 7 according to the real-time wind speed, so that the power generation efficiency is always kept in a better state.

[0030] Please see Figure 5 As shown, the transmission assembly includes a rotating rod 14, a large gear 141, a small gear 142, a small bevel gear 143, and a large bevel gear 144. The large bevel gears 144 are fixedly connected to the left side of the rotating shaft 6 at even intervals along the circumference. The large bevel gears 144 are located inside the hollow shaft 8. The rotating rod 14 is rotatably connected to the inner side of the hollow shaft 8 near the large bevel gears 144. The small bevel gears 143 are fixedly mounted on the rotating rod 14 and mesh with the large bevel gears 144. The large gears 141 are also fixedly mounted on the rotating rod 14. The shafts of the six winding wheels 10 are all fixedly mounted with small gears 142 and mesh with the large gears 141.

[0031] Please see Figure 6 and Figure 7As shown, the air guide assembly includes an air guide shell 15, a square shell 1501, an air guide frame 151, a frame 152, an air guide plate 153, an air duct 154, and a drive assembly. The air guide shell 15 is fixedly connected to the right side of the round shell 3. The right side of the air guide shell 15 is open. The square shell 1501 is fixedly fitted onto the right side of the outer side of the air guide shell 15. The air guide frame 151 is fixedly connected to the bottom of the square shell 1501. The tail end of the air guide frame 151 is fixedly connected to the upper right side of the charging cabinet 1. The air guide frame 151 can exhaust air into the charging cabinet 1 for air cooling inside the charging cabinet 1. Three frames 152 are fixedly connected at even intervals on the top and bottom of the air guide shell 15. The air guide plate 153 is rotatably connected between the right sides of the front and rear sides of the frame 152. When the air guide plate 153 swings, it can control the air volume. The upper frame 152 is connected between the top right sides. Air ducts 154 are fixedly connected to the bottom right side of the lower frame 152. The right ends of the upper and lower air ducts 154 are fixedly connected to the left side of the square shell 1501. The air ducts 154 can exhaust air into the square shell 1501. A drive assembly is provided between the air guide plate 153 and the inner side of the air guide shell 15. When the drive assembly is in operation, it can drive the air guide plate 153 to swing. The drive assembly includes a connecting rod 155, a swing rod 156 and an electric push rod 157. The front side of the shaft of the upper and lower air guide plates 153 is fixedly fitted with connecting rods 155. The middle of the upper three connecting rods 155 and the middle of the lower three connecting rods 155 are rotatably connected to the swing rods 156. The right side of the front side of the air guide shell 15 is symmetrically rotatably connected to the electric push rods 157. The telescopic rod end of the electric push rod 157 is rotatably connected to the tail end of the leftmost connecting rod 155.

[0032] When wind blows on blade 7, the wind contacts blade 7, causing blade 7 to rotate. The rotation of blade 7 causes hollow shaft 8 to rotate, which in turn causes rotating shaft 6 to rotate. The rotation of rotating shaft 6 causes the rotor shaft of generator 4 to rotate, and generator 4 charges the storage battery of charging cabinet 1, thus completing wind-powered energy storage and charging. At the same time, the rotation of hollow shaft 8 also causes annular plate 5 and counterweight 11 to rotate. Due to centrifugal force, counterweight 11 slides outward inside hollow shaft 8 during rotation. The outward sliding of counterweight 11 causes pull wire 12 to move outward. The outward movement of pull wire 12 drives winding wheel 10 to rotate through guide wheel 13. The rotation of winding wheel 10 drives small gear 142 to rotate, and small gear 142 drives large gear. When gear 141 rotates, the large gear 141 rotates, causing the rotating rod 14 to rotate. The rotating rod 14 rotates, causing the small bevel gear 143 to rotate. Since the small bevel gear 143 meshes with the large bevel gear 144 fixed on the rotating shaft 6, and the large bevel gear 144 is stationary, the small bevel gear 143 rolls along the tooth surface of the large bevel gear 144 while rotating. This causes the hollow shaft 8, along with the blades 7 on its outer side, to rotate circumferentially relative to the rotating shaft 6. The torsion spring 9 is compressed. The higher the wind speed, the greater the distance that the counterweight 11 slides outward. The greater the distance that the counterweight 11 slides outward, the greater the angle of rotation of the blades 7. The greater the angle of rotation of the blades 7, the smaller the frontal area, thereby reducing the rotational speed. Maintaining the optimal rotational speed range is crucial. Conversely, the lower the wind speed, the smaller the distance the counterweight 11 slides outward, and the smaller the angle at which the counterweight 11 drives the blade 7 to rotate. A smaller rotation angle of the blade 7 does not affect the contact area with the wind, thus allowing for normal wind utilization. In this way, the angle of the blade 7 can be adjusted in a timely manner according to the wind speed, thereby improving wind energy capture efficiency. At the same time, the wind that comes into contact with the blade 7 continues to flow to the right into the air guide shell 15. Some of the wind inside the air guide shell 15 comes into contact with the air guide plate 153 and enters the frame 152. The electric push rod 157 is activated, and the extension and retraction of the electric push rod 157 causes the leftmost connecting rod 155 to swing left and right. The leftmost connecting rod 155 drives the swing rod 156 to swing left and right. The movement of the swing arm 156 causes the remaining connecting rod 155 to swing left and right. The swing of the connecting rod 155 causes the air guide plate 153 to swing up and down. When the air guide plate 153 swings up and down until the required air volume enters the frame 152, the electric push rod 157 is closed. At this time, some of the air in the air guide shell 15 continuously enters the frame 152 through the air guide plate 153. The air in the frame 152 enters the air guide pipe 154. The air in the air guide pipe 154 enters the square shell 1501. The air in the square shell 1501 enters the air guide frame 151. The air in the air guide frame 151 enters the interior of the charging cabinet 1. The air cools the interior of the charging cabinet 1 to prevent high temperatures from affecting its service life.

[0033] Please see Figure 8 and Figure 9As shown, the integrated wind storage and charging pile also includes a mounting shell 16, a mesh plate 161, and a scraping component. The mounting shell 16 is fixedly connected to the left side of the circular shell 3. Six mesh plates 161 are fixedly connected at even intervals on the left side of the mounting shell 16. The mesh plates 161 are located to the left of the blades 7. When the wind enters the circular shell 3, the mesh plates 161 can filter the impurities in the wind. The mounting shell 16 is equipped with a scraping component. When the scraping component is in operation, it can scrape off the impurities attached to the mesh plates 161 to prevent the mesh plates 161 from being blocked. The scraping assembly includes a connecting shaft 162, a brush plate 163, and a stepper motor 164. The connecting shaft 162 is rotatably connected to the middle of the mounting housing 16. The brush plate 163 is fixedly mounted on the left end of the connecting shaft 162. The brush plate 163 contacts the screen plate 161. When the brush plate 163 rotates, it can scrape off the impurities attached to the screen plate 161. The stepper motor 164 is installed in the middle of the inner side of the mounting housing 16. The output shaft end of the stepper motor 164 is connected to the right end of the connecting shaft 162 through a coupling.

[0034] When this device is in use, the air first contacts the mesh plate 161, which filters impurities from the air. The filtered air continues to flow to the right and contacts the blades 7, driving the blades 7 to rotate. Simultaneously, the stepper motor 164 is activated, driving the connecting shaft 162 to rotate. The rotating connecting shaft 162 then drives the brush plate 163 to rotate, brushing away impurities attached to the mesh plate 161. This prevents a large amount of impurities from affecting the normal operation of the mesh plate 161. Once the impurities on the mesh plate 161 are cleaned, the stepper motor 164 is turned off, stopping the rotation of the connecting shaft 162, which in turn stops rotating the brush plate 163. This prevents impurities in the air from accumulating on the blades 7, increasing surface roughness, damaging the aerodynamic shape, reducing the lift-to-drag ratio, and weakening power generation efficiency, thus ensuring the normal operating performance of the blades 7.

[0035] Please see Figure 8 As shown, the integrated wind-storage-charging charging pile also includes an indicator light 17. An indicator light 17 is installed on the upper part of the front side of the charging cabinet 1. The indicator light 17 can indicate the usage status of the generator 4. The indicator light 17 is electrically connected to the generator 4.

[0036] Please see Figure 10 As shown, the integrated wind storage and charging charging pile also includes a filter plate 18. The filter plate 18 is embedded in the lower right side of the air guide frame 151. The filter plate 18 can filter impurities in the air to prevent impurities from entering the charging cabinet 1.

[0037] When the device is not in use, indicator light 17 will be yellow, indicating to the operator that generator 4 is in standby mode. When indicator light 17 is green, generator 4 is in normal operating condition. When indicator light 17 is red, generator 4 is in a faulty state, and the operator needs to repair generator 4. In this way, the operator can promptly understand the operating status of generator 4, thus ensuring that wind power generation is not affected.

[0038] When air enters the air guide frame 151, it comes into contact with the filter plate 18, which filters out impurities from the air. The filtered air then enters the charging cabinet 1, thus providing air cooling for the charging cabinet 1. After prolonged use, the operator can pull the filter plate 18 to the right to detach it from the air guide frame 151, and then clean the impurities from the filter plate 18. After cleaning, the filter plate 18 can be clipped back onto the air guide frame 151 for continued use. This prevents impurities from adhering to the inside of the charging cabinet 1 and affecting heat dissipation, thereby ensuring the safety of the charging cabinet 1.

[0039] The above embodiments are merely preferred embodiments of the present invention and are not intended to limit the scope of the present invention. Therefore, all equivalent changes made to the content described in the claims of the present invention should be included within the scope of the claims of the present invention.

Claims

1. A charging pile integrating wind power, energy storage, and charging, comprising a charging cabinet (1), characterized in that, A circular shell (3) is connected to the top of the charging cabinet (1). A generator (4) connected to the storage battery circuit of the charging cabinet (1) is installed inside the circular shell (3). A rotating shaft (6) is connected to the end of the rotor shaft of the generator (4). An annular plate (5) is rotatably connected inside the circular shell (3). Hollow shafts (8) are rotatably connected to the inner side of the annular plate (5) at even intervals along the circumference. The end of the hollow shaft (8) is rotatably connected to the rotating shaft (6). A blade (7) is fixedly mounted on the hollow shaft (8). A torsion spring (9) is connected between the blade (7) and the annular plate (5). The inner side of the hollow shaft (8) is rotatably connected to a winding wheel (10). The inner side of the hollow shaft (8) is symmetrically provided with guide wheels (13) close to the winding wheel (10). A pull wire (12) is wound on the winding wheel (10). The end of the pull wire (12) is fixed to a counterweight block (11) that is slidably connected to the inner side of the hollow shaft (8). A transmission component is provided inside the winding wheel (10). The transmission component is connected to the winding wheel (10) and the hollow shaft (8) respectively, and is used to transmit the rotation of the winding wheel (10) to the hollow shaft (8). A wind guide component is provided between the charging cabinet (1) and the round shell (3).

2. The integrated wind-storage-charging charging pile as described in claim 1, characterized in that, The transmission assembly includes large bevel gears (144) fixedly connected to the circumference of the rotating shaft (6) at even intervals. The large bevel gears (144) are located inside the hollow shaft (8). A rotating rod (14) is rotatably connected to the inside of the hollow shaft (8). A small bevel gear (143) is fixedly mounted on the rotating rod (14). The small bevel gear (143) meshes with the large bevel gear (144). A large gear (141) is also fixedly mounted on the rotating rod (14). A small gear (142) meshes with the large gear (141) on the shaft of the winding wheel (10).

3. A charging pile integrating wind power, energy storage, and charging as described in claim 2, characterized in that, The air guide assembly includes an air guide shell (15) fixedly attached to a circular shell (3). The right side of the air guide shell (15) is open. A square shell (1501) is fixedly fitted on the outer side of the air guide shell (15). An air guide frame (151) is fixedly attached to the bottom of the square shell (1501). The tail end of the air guide frame (151) is fixedly connected to the charging cabinet (1) to exhaust air into the charging cabinet (1). Frames are fixedly inserted at even intervals at the top and bottom of the air guide shell (15). (152) A guide plate (153) is rotatably connected between the two sides of the frame (152) for controlling the air volume. An air duct (154) is fixedly connected to the frame (152). The end of the air duct (154) is fixedly connected to the square shell (1501) for discharging air into the square shell (1501). A drive assembly is provided between the guide plate (153) and the inner side of the air duct shell (15) for driving the guide plate (153) to swing.

4. A charging pile integrating wind power, energy storage, and charging as described in claim 3, characterized in that, The drive assembly includes a connecting rod (155) fixedly mounted on the shaft of the air guide plate (153). A swing rod (156) is rotatably connected between the upper connecting rod (155) and between the lower connecting rod (155). An electric push rod (157) is symmetrically rotatably connected to the inner side of the air guide shell (15). The telescopic rod end of the electric push rod (157) is rotatably connected to the tail end of one of the connecting rods (155).

5. A charging pile integrating wind power, energy storage, and charging as described in claim 4, characterized in that, The integrated wind storage and charging pile also includes a mounting shell (16) fixed to the circumference of the round shell (3). The mounting shell (16) is fixedly connected with mesh plates (161) at even intervals. The mesh plates (161) are located on the left side of the blade (7) and are used to filter impurities in the wind. The mounting shell (16) is equipped with a scraping component for scraping off the impurities attached to the mesh plates (161).

6. A charging pile integrating wind power, energy storage, and charging as described in claim 5, characterized in that, The scraping assembly includes a connecting shaft (162) that is rotatably connected to the mounting housing (16). A brush plate (163) that contacts the mesh plate (161) is fixedly fitted at the end of the connecting shaft (162) for scraping off impurities attached to the mesh plate (161). A stepper motor (164) is installed inside the mounting housing (16), and the output shaft end of the stepper motor (164) is connected to the end of the connecting shaft (162).

7. A charging pile integrating wind power, energy storage, and charging as described in claim 6, characterized in that, The integrated wind, storage and charging station also includes an indicator light (17) installed on the charging cabinet (1) to indicate the usage status of the generator (4). The indicator light (17) is electrically connected to the generator (4).

8. A charging pile integrating wind power, energy storage, and charging as described in claim 7, characterized in that, The integrated wind, storage and charging charging pile also includes an embedded filter plate (18) that is snapped onto the air guide frame (151) to filter impurities in the wind.

Citation Information

Patent Citations

  • A type of electric vehicle integrated wind, solar and energy storage charging pile

    CN113386606B