Integrated energy storage charging pile
By introducing flip units and spray units into photovoltaic energy storage charging piles, automatic cleaning of photovoltaic modules is achieved, solving the problems of low cleaning efficiency and safety hazards of photovoltaic modules, improving cleaning efficiency and reducing the need for manual cleaning.
Patent Information
- Application Number
- CN202510984191.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-17
- Publication Date
- 2025-09-12
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The photovoltaic components of existing photovoltaic energy storage charging piles have low cleaning efficiency and pose safety hazards. They require manual cleaning on a ladder on a regular basis, and the cleaning cost is high.
An integrated energy storage charging pile is designed, which includes a flip unit and a spray unit. The flip unit can flip the photovoltaic module to a vertical state, and the spray unit sprays a gas-liquid mixture during the flipping process to clean the surface of the photovoltaic module.
It realizes the automated cleaning of photovoltaic modules, improves cleaning efficiency, reduces safety risks, and reduces the need for manual cleaning.
Smart Images

Figure CN120621119A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of energy storage charging piles for new energy vehicles, and specifically to an integrated energy storage charging pile. Background Art
[0002] Integrated energy storage charging stations offer either photovoltaic or direct charging solutions. They utilize photovoltaic power generation or nighttime off-peak charging to store energy for the energy storage charging station, which then provides charging services for new energy electric vehicles. A photovoltaic energy storage integrated charging station features a large photovoltaic panel installed on the roof of a charging station. Each station is equipped with multiple charging stations and energy storage equipment. The photovoltaic panels on the roof generate electricity during the day and store the energy in the energy storage equipment, which then supplies the energy to the charging station to charge new energy electric vehicles.
[0003] The photovoltaic energy storage integrated charging pile must be installed in a well-lit location with no obstructions around it, otherwise it will affect the power generation efficiency of the photovoltaic modules. In the photovoltaic energy storage integrated charging pile scheme on the market, the roof is designed to be slanted, so that leaves and impurities can fall freely after falling on the ceiling. However, the inclination angle of the upper end face of the ceiling is not large, and the splicing gap of the photovoltaic modules will also hold leaves and other impurities. Therefore, it is still necessary to manually clean the lighting surface of the photovoltaic modules on the ceiling regularly. However, the height of the ceiling is generally between 2.2m and 3.1m (to ensure that cars and SUVs can drive in). A ladder is needed to clean the lighting surface of the photovoltaic modules. In addition, the top surface area of the ceiling is large, and the staff are required to clean it from multiple angles, which requires multiple ladder operations. Not only is the cleaning efficiency low, but there are also major safety hazards. Summary of the Invention
[0004] The purpose of the present invention is to provide an integrated energy storage charging pile to solve the problems raised in the above background technology.
[0005] To achieve the above objectives, the present invention provides the following technical solution: an integrated energy storage charging pile, comprising: two symmetrically distributed fixing frames fixed to the ground, and a photovoltaic energy storage box and a new energy vehicle charging pile fixed to the ground, wherein the photovoltaic energy storage box and the new energy vehicle charging pile are both located between the two fixing frames, a roof plate is jointly provided on the top of the two fixing frames, and a plurality of photovoltaic modules distributed in a matrix are fixedly mounted on the upper end surface of the roof plate, and the photovoltaic energy storage box and the new energy vehicle charging pile are both located directly below the roof plate;
[0006] The photovoltaic module is also provided with a flip unit for flipping the photovoltaic module into a vertical position, so as to facilitate the cleaning of impurities and dirt on the surface of the photovoltaic module by the staff;
[0007] The spraying unit is used to spray the gas-liquid mixture on the surface of the photovoltaic component during the process of flipping the photovoltaic component in cooperation with the flipping unit.
[0008] Preferably, the top of each of the fixing frames and the facing end surfaces of the two fixing frames are open, and the top of each of the fixing frames is provided with a vertical plate and a horizontal plate, and the vertical plate and the horizontal plate are respectively fixed to the two extended edges of the top of the fixing frame, the vertical plate is vertical, and the angle between the horizontal plate and the fixing frame is an arc angle, the ceiling plate is placed on the upper end surfaces of the two horizontal plates, and one end surface of the ceiling plate is in contact with the inner wall of the fixing frame, and a sleeve block is slidably assembled inside each of the fixing frames, and the sleeve block slides up and down inside the fixing frame, and the sleeve block A first sleeve is fixedly installed inside, a first piston block is slidably installed inside the first sleeve, and a first piston rod sliding through the first sleeve is fixedly installed on the upper end surface of the first piston block, a collar is fixedly installed on the upper end surface of the first piston rod, a first spring is provided between the upper end surface of the first piston block and the first sleeve, an optical axis is fixedly installed between the two collars, and the optical axis rotates through the ceiling plate, a driving member is fixed on the outer wall of each of the fixing frames, the output end of the driving member is facing, and the output end of the driving member is fixedly assembled with the sleeve block.
[0009] Preferably, the included angle between the horizontal plate and the vertical plate is less than 90°.
[0010] Preferably, the angle between the horizontal plate and the vertical plate is 90°, and a lifting component is provided at the bottom of each horizontal plate, and the lifting component is used to lift the roof plate upward, and the lifting component includes a second sleeve fixed to the bottom of each horizontal plate, and the interior of the second sleeve is slidably equipped with a second piston block, and the top of the second piston block is fixedly provided with a top rod that slides through the horizontal plate, and a connecting pipe is fixedly provided between the outer wall of the first sleeve and the bottom of the second sleeve, and the docking interface between the connecting pipe and the first sleeve is located above the first piston block.
[0011] Preferably, the first sleeve is made of copper alloy, and a magnetic block is embedded in the interior of the first piston block, so that the first piston block generates electromagnetic damping when moving inside the first sleeve.
[0012] Preferably, the spray unit includes a hollow tube fixed to the end of the ceiling plate away from the optical axis, and the interior of the hollow tube is hollow, and the outer wall of the hollow tube is fixedly connected with a plurality of branch tubes distributed in a straight line and equidistantly, and the end of the branch tube away from the hollow tube is inclined toward the photovoltaic component, and the exposed end of the branch tube is fixedly equipped with a one-way valve nozzle, and a conveying component is installed between each vertical plate and the hollow tube, and the conveying component inputs the cleaning liquid into the interior of the hollow tube.
[0013] Preferably, the conveying component includes two symmetrically distributed third sleeves fixedly mounted on the upper end surface of the ceiling plate, the photovoltaic module is located between the two third sleeves, a conveying pipe is fixedly connected between the end of the third sleeve away from the vertical plate and the hollow tube, a third piston block is slidably mounted inside the third sleeve, and a push rod sliding through the third sleeve is fixedly arranged at the end of the third piston block away from the hollow tube, a second spring is arranged between the end of the third piston block away from the push rod and the third sleeve, and the outer wall of the third sleeve It is also fixedly connected and equipped with a feeding pipe, and the docking point between the feeding pipe and the sleeve block is located on the side close to the hollow tube. The docking point between the feeding pipe and the sleeve block is also connected and equipped with a third one-way valve. The flow direction of the third one-way valve is one-way flow from the feeding pipe to the interior of the sleeve block, and the one-way flow direction of the one-way valve nozzle is one-way flow from the branch pipe to the end of the one-way valve nozzle away from the branch pipe. A trigger is provided between the exposed end of the push rod and the ceiling plate. When the ceiling plate is in a vertical state, the third sleeve will not contact the vertical plate.
[0014] Preferably, the trigger includes two symmetrically distributed empty slots opened inside the ceiling plate, the optical axis passes through the empty slots, a swing arm is movably installed inside each of the empty slots, and the bottom of the swing arm is rotatably sleeved on the outer wall of the optical axis, a connecting rod is hingedly assembled between the end of the swing arm away from the optical axis and the push rod through a pin shaft, and a top ball is fixedly provided at the ends of the two pin shafts away from each other, and the top ball rests on the surface of the vertical plate or the fixed frame.
[0015] Preferably, one section of the delivery pipe is a hard pipe portion, and the outer surface of the hard pipe portion is fixedly connected and equipped with an arc sleeve, the arc sleeve is semicircular, and the delivery pipe and the arc sleeve are tangentially distributed, the interior of the arc sleeve is rotatably equipped with a rotating shaft, and the outer surface of the rotating shaft is fixedly sleeved with an impeller, the impeller is placed inside the arc sleeve, and a narrow hole portion is fixedly provided inside the hard pipe portion, the large end of the narrow hole portion faces the third sleeve, and the small end of the narrow hole portion faces the impeller, and a gas injection component is also provided between the rotating shaft and the arc sleeve.
[0016] Preferably, the gas injection component includes a gear reducer fixedly mounted on the outside of the arc sleeve, and the input end of the gear reducer is fixed to one end of the rotating shaft, the output end of the gear reducer is fixedly provided with a turntable, and the turntable is fixedly provided with a plurality of shift blocks equidistantly distributed around the circumference on one end face of the arc sleeve, the outside of the arc sleeve is also fixedly connected to a gas injection cylinder, the axis of the gas injection cylinder is parallel to the axis of the rotating shaft, the interior of the gas injection cylinder is slidably equipped with a fourth piston block, the end face of the fourth piston block away from the delivery pipe is fixedly provided with a dome rod sliding through the gas injection cylinder, and a third spring is provided between the other end face of the fourth piston block and the delivery pipe, the outer wall of the gas injection cylinder is fixedly connected to a second one-way valve, and the connection between the gas injection cylinder and the delivery pipe is fixedly provided with a first one-way valve, the flow direction of the second one-way valve is one-way flow from the outside to the inside of the gas injection cylinder, and the flow direction of the first one-way valve is one-way flow from the gas injection cylinder to the inside of the arc sleeve.
[0017] Compared with the prior art, the present invention has the following beneficial effects:
[0018] The present invention can directly flip the ceiling panel through the function of the flipping unit, so that the ceiling panel with the photovoltaic module is placed vertically, thereby making it convenient for the staff to clean the dirt and accumulated impurities on the surface of the photovoltaic module. During the flipping process of the ceiling panel, the spray unit will also be triggered at the same time. Under the operation of the spraying unit, a high-pressure cleaning medium will be sprayed toward the surface of the photovoltaic module, assisting the staff in cleaning the photovoltaic panel assembly. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 It is a schematic diagram of the overall structure of the present invention;
[0020] Figure 2 This is a schematic structural diagram of the present invention from another perspective;
[0021] Figure 3 This is a schematic diagram of the internal structure of the third sleeve of the present invention;
[0022] Figure 4 This is a schematic diagram of the swing arm, connecting rod and top ball structure of the present invention;
[0023] Figure 5 This is a schematic diagram of the internal structure of the first sleeve and the second sleeve of the present invention;
[0024] Figure 6 This is a schematic diagram of the branch pipe and one-way valve nozzle structure of the present invention;
[0025] Figure 7 This is a schematic diagram of the internal structure of the arc frame of the present invention;
[0026] Figure 8 This is a schematic diagram of the internal structure of the gas injection cylinder of the present invention;
[0027] Figure 9 For the present invention Figure 8 Enlarged view of point A in the middle.
[0028] In the figure: 1, fixing frame; 2, photovoltaic energy storage box; 3, new energy vehicle charging pile; 4, roof plate; 5, photovoltaic module; 6, vertical plate; 7, horizontal plate; 8, first sleeve; 9, first piston rod; 10, first piston block; 11, first spring; 12, collar; 13, optical axis; 14, second sleeve; 15, ejector rod; 16, second piston block; 17, connecting pipe; 18, sleeve block; 19, hollow pipe; 20, branch pipe; 21, one-way valve nozzle; 22, conveying Tube; 23. Push rod; 24. Third piston block; 25. Second spring; 26. Swing arm; 27. Connecting rod; 28. Feeding tube; 29. Arc sleeve; 30. Rotating shaft; 31. Impeller; 32. Gear reducer; 33. Turntable; 34. Shift block; 35. Inflator; 36. Fourth piston block; 37. Dome rod; 38. First one-way valve; 39. Second one-way valve; 40. Third spring; 41. Driving member; 42. Third sleeve; 43. Top ball; 44. Narrow hole. DETAILED DESCRIPTION
[0029] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0030] Example 1: Please refer to Figures 1-9 The figure shows an integrated energy storage charging pile, comprising: two symmetrically distributed fixing frames 1 fixed on the ground, and a photovoltaic energy storage box 2 and a new energy vehicle charging pile 3 fixed on the ground, and the photovoltaic energy storage box 2 and the new energy vehicle charging pile 3 are both located between the two fixing frames 1, and a roof plate 4 is jointly mounted on the top of the two fixing frames 1, and a plurality of photovoltaic modules 5 distributed in a matrix are fixedly mounted on the upper end surface of the roof plate 4, and the photovoltaic energy storage box 2 and the new energy vehicle charging pile 3 are both located directly below the roof plate 4, and the photovoltaic modules 5 convert the absorbed light energy into electrical energy and store it inside the photovoltaic energy storage box 2, and the photovoltaic energy storage box 2 provides electrical energy for the new energy vehicle charging pile 3, so that the charging gun of the new energy vehicle charging pile 3 can charge the new energy vehicle;
[0031] It also includes: a flip unit for flipping the photovoltaic module 5 into a vertical position, so that the staff can clean the impurities and dirt on the surface of the photovoltaic module 5;
[0032] The spray unit is used to spray the gas-liquid mixture on the surface of the photovoltaic assembly 5 during the flipping process of the photovoltaic assembly 5 in cooperation with the flipping unit.
[0033] The top of each fixing frame 1 and the facing end surfaces of the two fixing frames 1 are open. The top of each fixing frame 1 is provided with a vertical plate 6 and a horizontal plate 7, and the vertical plate 6 and the horizontal plate 7 are respectively fixed to the two extended edges of the top of the fixing frame 1, the vertical plate 6 is vertical, and the angle between the horizontal plate 7 and the fixing frame 1 is an arc angle. The ceiling plate 4 is placed on the upper end surfaces of the two horizontal plates 7, and one end surface of the ceiling plate 4 is fitted with the inner wall of the fixing frame 1. The interior of each fixing frame 1 is slidably equipped with a sleeve block 18, which slides up and down inside the fixing frame 1, and the interior of the sleeve block 18 is fixedly equipped with a first sleeve 8, and the interior of the first sleeve 8 is slidably equipped with a first piston block 10, and the upper end surface of the first piston block 10 is fixedly provided with a sliding member that penetrates The first piston rod 9 of the first sleeve 8, the upper end surface of the first piston rod 9 is fixedly provided with a collar 12, a first spring 11 is provided between the upper end surface of the first piston block 10 and the first sleeve 8, an optical axis 13 is fixedly assembled between the two collars 12, and the optical axis 13 rotates through the ceiling plate 4, and a driving member 41 is fixed to the outer wall of each fixing frame 1, the output end of the driving member 41 is facing, and the output end of the driving member 41 is fixedly assembled with the sleeve block 18, the driving member 41 is an electric push rod or a cylinder push rod, when the driving member 41 runs and moves the sleeve block 18 downward, the first sleeve 8 pulls the first piston block 10 downward through the first spring 11, so that the collar 12 can pull the ceiling plate 4 through the optical axis 13 to swing, resulting in a position change.
[0034] The included angle between the horizontal plate 7 and the vertical plate 6 is less than 90°. At this time, the roof plate 4 is erected on the top of the two fixing frames 1 in an inclined roof shape.
[0035] The angle between the horizontal plate 7 and the vertical plate 6 is 90°. A lifting component is provided at the bottom of each horizontal plate 7. The lifting component is used to lift the roof plate 4 upward. The lifting component includes a second sleeve 14 fixed to the bottom of each horizontal plate 7, and the second sleeve 14 is slidably equipped with a second piston block 16. The top of the second piston block 16 is fixedly provided with a push rod 15 that slides through the horizontal plate 7. A connecting pipe 17 is fixedly provided between the outer wall of the first sleeve 8 and the bottom of the second sleeve 14. The docking interface between the connecting pipe 17 and the first sleeve 8 is located above the first piston block 10. When the first piston block 10 moves upward inside the first sleeve 8, the medium inside the first sleeve 8 can be input into the inside of the second sleeve 14 through the connecting pipe 17, and the push rod 15 is pushed upward by the second piston block 16, so that the roof plate 4 swings around the optical axis 13.
[0036] The first sleeve 8 is made of copper alloy, and a magnet is embedded in the first piston block 10. When the first piston block 10 moves inside the first sleeve 8, electromagnetic damping will be generated. When the roof panel 4 is deformed and can move downward into the interior of the two fixing frames 1, since the first spring 11 has been compressed before, the first spring 11 will apply a downward elastic force to the roof panel 4 after the roof panel 4 is in a vertical shape, and the electromagnetic damping applied to the first piston block 10 will slow down the downward movement speed of the roof panel 4, thereby avoiding collision of the roof panel 4.
[0037] Example 2: Please refer to Figure 3-Figure 4 This embodiment is a further explanation of the first embodiment. The spray unit includes a hollow tube 19 fixed to the end of the ceiling plate 4 away from the optical axis 13, and the interior of the hollow tube 19 is hollow. The outer wall of the hollow tube 19 is fixedly connected to a plurality of branch tubes 20 distributed in a straight line and equidistantly. The end of the branch tube 20 away from the hollow tube 19 is inclined toward the photovoltaic module 5, and the exposed end of the branch tube 20 is fixedly equipped with a one-way valve nozzle 21. A conveying component is installed between each vertical plate 6 and the hollow tube 19. The conveying component inputs the cleaning liquid into the interior of the hollow tube 19. When the ceiling plate 4 is flipped over, the conveying component will be triggered, so that the cleaning liquid can be transported to the interior of the hollow tube 19 and sprayed toward the surface of the photovoltaic module 5 through multiple one-way valve nozzles 21.
[0038] The conveying component includes two symmetrically distributed third sleeves 42 fixedly mounted on the upper end surface of the ceiling plate 4, the photovoltaic module 5 is located between the two third sleeves 42, and a conveying pipe 22 is fixedly connected between the end of the third sleeve 42 away from the vertical plate 6 and the hollow tube 19. The interior of the third sleeve 42 is slidably equipped with a third piston block 24, and the end of the third piston block 24 away from the hollow tube 19 is fixedly equipped with a push rod 23 that slides through the third sleeve 42. A second spring 25 is provided between the end of the third piston block 24 away from the push rod 23 and the third sleeve 42. The outer wall of the third sleeve 42 is also fixedly connected with a feeding pipe 28, and the docking point of the feeding pipe 28 and the sleeve block 18 is located near the hollow tube 19. On the other hand, the joint between the feeding pipe 28 and the sleeve block 18 is also connected and equipped with a third one-way valve. The flow direction of the third one-way valve is one-way flow from the feeding pipe 28 to the inside of the sleeve block 18, and the one-way flow direction of the one-way valve nozzle 21 is one-way flow from the branch pipe 20 to the end of the one-way valve nozzle 21 away from the branch pipe 20. A trigger is provided between the exposed end of the push rod 23 and the ceiling plate 4. When the ceiling plate 4 is in a vertical state, the third sleeve 42 will not contact the vertical plate 6, that is, the third sleeve 42 will not allow the ceiling plate 4 to be stuck inside the fixed frame 1. When the ceiling plate 4 swings, it can push the push rod 23 through the trigger, so that the third piston block 24 transfers the medium inside the third sleeve 42 to the inside of the hollow tube 19.
[0039] The trigger includes two symmetrically distributed empty slots opened inside the ceiling plate 4, and the optical axis 13 passes through the empty slots. A swing arm 26 is movably installed inside each empty slot, and the bottom of the swing arm 26 is rotatably sleeved on the outer wall of the optical axis 13. The end of the swing arm 26 away from the optical axis 13 is hingedly assembled with a connecting rod 27 through a pin shaft and the ends of the two pin shafts away from each other are fixed with a top ball 43. The top ball 43 rests on the surface of the vertical plate 6 or the fixed frame 1. When the ceiling plate 4 is flipped toward the vertical plate 6 with the optical axis 13 as the center axis, the vertical plate 6 pushes the top ball 43, gradually flattening the angled swing arm 26 and the connecting rod 27, thereby pushing the push rod 23, wherein the swing arm 26 and the connecting rod 27 do not contact the fixed frame 1 or the vertical plate 6.
[0040] Example 3: Please refer to Figure 6-Figure 9 The present embodiment is a further explanation of other embodiments. One section of the delivery pipe 22 is a hard pipe portion, and the outer surface of the hard pipe portion is fixedly connected and equipped with an arc sleeve frame 29. The arc sleeve frame 29 is semicircular, and the delivery pipe 22 and the arc sleeve frame 29 are tangentially distributed. The interior of the arc sleeve frame 29 is rotatably equipped with a rotating shaft 30, and the outer surface of the rotating shaft 30 is fixedly sleeved with an impeller 31. The impeller 31 is placed inside the arc sleeve frame 29. A narrow hole portion 44 is fixedly provided inside the hard pipe portion. The large end of the narrow hole portion 44 faces the third sleeve 42, and the small end of the narrow hole portion 44 faces the impeller 31. An air injection component is also provided between the rotating shaft 30 and the arc sleeve frame 29. The air injection component can intermittently inject air into the interior of the arc sleeve frame 29 according to the rotation of the rotating shaft 30. Through the action of the narrow hole portion 44, the flow rate of the medium can be increased, so that the medium can more forcefully touch the impeller 31 during the transmission process, so that the rotating shaft 30 rotates effectively.
[0041] The gas injection component includes a gear reducer 32 fixedly mounted on the outside of the arc sleeve 29, and the input end of the gear reducer 32 is fixed to one end of the rotating shaft 30, and the output end of the gear reducer 32 is fixedly provided with a turntable 33, and the turntable 33 is fixedly provided with a plurality of shift blocks 34 distributed equidistantly around the circumference on one end face close to the arc sleeve 29. The outside of the arc sleeve 29 is also fixedly connected to a gas injection cylinder 35, and the axis of the gas injection cylinder 35 is parallel to the axis of the rotating shaft 30. The interior of the gas injection cylinder 35 is slidably equipped with a fourth piston block 36, and the fourth piston block 36 is fixedly provided with a sliding A dome rod 37 passes through the gas injection cylinder 35, and a third spring 40 is provided between the other end face of the fourth piston block 36 and the delivery pipe 22. The outer wall of the gas injection cylinder 35 is fixedly connected and equipped with a second one-way valve 39, and the connection point between the gas injection cylinder 35 and the delivery pipe 22 is fixedly equipped with a first one-way valve 38. The flow direction of the second one-way valve 39 is one-way flow from the outside to the inside of the gas injection cylinder 35, and the flow direction of the first one-way valve 38 is one-way flow from the gas injection cylinder 35 to the inside of the arc sleeve 29. The shift block 34 is an arc-shaped isosceles trapezoid. When the shift block 34 rotates with the turntable 33, it can frequently push the dome rod 37.
[0042] Working principle: When the integrated photovoltaic energy storage charging station is in normal use, Figure 1 and Figure 2 In the state, the photovoltaic module 5 converts solar energy into electrical energy during the day and stores it inside the photovoltaic energy storage box 2 for the new energy vehicle charging pile 3 to charge the new energy electric vehicle. After a long period of use, the surface of the photovoltaic module 5 will be adhered to dirt and impurities such as dust, leaves or bird droppings due to weather reasons. Such dirt and impurities will block the surface of the photovoltaic module 5 and affect the photovoltaic power generation and energy storage efficiency of the photovoltaic module 5.
[0043] When the staff needs to clean the dirt and impurities on the surface of the photovoltaic module 5, they only need to start the driving member 41, and move the sleeve block 18 and the first sleeve 8 downward through the driving member 41. Since the roof plate 4 is mounted on the two horizontal plates 7, the first sleeve 8 directly pulls the roof plate 4 through the optical axis 13 to make it swing, which will encounter great resistance, resulting in the roof plate 4 not changing its position. The downward movement of the first sleeve 8 will compress the first spring 11 and allow the first piston rod 9 to slowly extend from the inside of the first sleeve 8. At this time, the medium inside the first sleeve 8 enters the second sleeve 1 through the connecting pipe 17 under the push of the first piston block 10. 4, and push the second piston block 16 and the push rod 15 upward. At this time, the push rod 15 can push the roof plate 4 upward, so that the roof plate 4 swings upward, thereby facilitating the roof plate 4 to follow the round chamfer between the cross plate 7 and the fixing frame 1 and enter the interior of the fixing frame 1. Under the elastic pressure of the first spring 11 in the compressed state, the first piston rod 9 moves downward with the roof plate 4 inside the fixing frame 1 through the optical axis 13, so that the roof plate 4 is in a vertical state. In the process of continuous downward driving of the driving member 41, the height of the roof plate 4 can also be lowered, which makes it easier for staff to handle dirt and impurities on the surface of the photovoltaic module 5.
[0044] In this solution, when the ceiling panel 4 is swinging, the angle between the ceiling panel 4 and the vertical panel 6 gradually decreases, and the vertical panel 6 can push the connecting rod 27 through the top ball 43, so that the push rod 23 is pushed into the interior of the third piston block 24. The third piston block 24 can input the cleaning liquid inside the third sleeve 42 into the interior of the hollow tube 19 through the delivery pipe 22, and finally spray it out through the one-way valve nozzle 21 at the end of the branch pipe 20 to perform preliminary cleaning on the surface of the photovoltaic component 5, thereby facilitating the subsequent cleaning operation of the staff. It should be noted that when the ceiling panel 4 is reset and the push rod 23 gradually withdraws from the interior of the third sleeve 42, the cleaning liquid can be replenished into the interior of the third sleeve 42 through the action of the third one-way valve and the feeding pipe 28.
[0045] When the cleaning liquid is pushed into the interior of the hollow tube 19, the flow rate of the cleaning liquid will increase due to the influence of the narrow hole portion 44, so that the cleaning liquid can push the blades of the impeller 31, allowing the impeller 31 to rotate rapidly with the rotating shaft 30, and the output end of the gear reducer 32 can intermittently push the dome rod 37 through a number of shift blocks 34 distributed equidistantly around the circumference, and cooperate with the first one-way valve 38 and the second one-way valve 39 to intermittently inject the air inside the air injection cylinder 35 into the interior of the arc sleeve 29. The injection of air can make the cleaning liquid foam. When the one-way valve nozzle 21 sprays out the foamed cleaning liquid, its cleaning foam can better absorb impurities and dirt on the surface of the photovoltaic component 5, thereby improving the efficiency of treating impurities and dirt on the surface of the photovoltaic component 5.
[0046] It should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that includes a list of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus.
[0047] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.
Claims
1. An integrated energy storage charging pile, characterized in that: include: Two symmetrically distributed fixing frames (1), and a photovoltaic energy storage box (2) and a new energy vehicle charging pile (3) fixed on the ground, wherein the photovoltaic energy storage box (2) and the new energy vehicle charging pile (3) are both located between the two fixing frames (1), a roof plate (4) is commonly provided on the top of the two fixing frames (1), and a photovoltaic module (5) is fixedly mounted on the upper end surface of the roof plate (4); Also includes: A turning unit, used for turning the photovoltaic module (5) into a vertical position, so as to facilitate workers to clean impurities and dirt on the surface of the photovoltaic module (5); The spray unit is used to spray a gas-liquid mixture on the surface of the photovoltaic component (5) in cooperation with the flipping unit during the flipping process of the photovoltaic component (5).
2. The integrated energy storage charging pile according to claim 1, characterized in that: The top of each fixing frame (1) and the facing end surfaces of the two fixing frames (1) are open. The top of each fixing frame (1) is provided with a vertical plate (6) and a horizontal plate (7), and the vertical plate (6) and the horizontal plate (7) are respectively fixed to the two extended edges of the top of the fixing frame (1). The roof plate (4) is placed on the upper end surfaces of the two horizontal plates (7). The interior of each fixing frame (1) is slidably equipped with a sleeve block (18), and the interior of the sleeve block (18) is fixedly equipped with a first sleeve (8), and the interior of the first sleeve (8) is slidably equipped with a first piston. Block (10), and the upper end surface of the first piston block (10) is fixedly provided with a first piston rod (9), the upper end surface of the first piston rod (9) is fixedly provided with a collar (12), a first spring (11) is provided between the upper end surface of the first piston block (10) and the first sleeve (8), an optical axis (13) is fixedly assembled between the two collars (12), and the optical axis (13) rotates and passes through the ceiling plate (4), a driving member (41) is fixed to the outer wall of each of the fixing frames (1), and the output end of the driving member (41) is fixedly assembled with the block (18).
3. The integrated energy storage charging pile according to claim 2, characterized in that: The included angle between the horizontal plate (7) and the vertical plate (6) is less than 90°.
4. The integrated energy storage charging pile according to claim 2, characterized in that: The angle between the horizontal plate (7) and the vertical plate (6) is 90°, and a lifting component is provided at the bottom of each horizontal plate (7), and the lifting component includes a second sleeve (14) fixed at the bottom of each horizontal plate (7), and the interior of the second sleeve (14) is slidably equipped with a second piston block (16), and the top of the second piston block (16) is fixedly provided with a push rod (15) that slides through the horizontal plate (7), and a connecting pipe (17) is fixedly provided between the outer wall of the first sleeve (8) and the bottom of the second sleeve (14).
5. The integrated energy storage charging pile according to claim 2, characterized in that: The first sleeve (8) is made of copper alloy, and a magnetic block is embedded inside the first piston block (10).
6. The integrated energy storage charging pile according to claim 2, characterized in that: The spray unit includes a hollow tube (19) fixed to one end of the ceiling plate (4) away from the optical axis (13), and the interior of the hollow tube (19) is hollow. The outer wall of the hollow tube (19) is fixedly connected with a plurality of branch tubes (20), and the end of the branch tube (20) away from the hollow tube (19) is inclined toward the photovoltaic module (5), and the exposed end of the branch tube (20) is fixedly equipped with a one-way valve nozzle (21), and a conveying component is installed between each vertical plate (6) and the hollow tube (19).
7. The integrated energy storage charging pile according to claim 6, characterized in that: The conveying component includes two symmetrically distributed third sleeves (42) fixedly mounted on the upper end surface of the ceiling plate (4), a conveying pipe (22) is fixedly connected between the end of the third sleeve (42) away from the vertical plate (6) and the hollow tube (19), a third piston block (24) is slidably mounted inside the third sleeve (42), and a push rod (23) slidingly passing through the third sleeve (42) is fixedly mounted on the end of the third piston block (24) away from the hollow tube (19), a second spring (25) is arranged between the end of the third piston block (24) away from the push rod (23) and the third sleeve (42), an outer wall of the third sleeve (42) is also fixedly connected and mounted with a feeding pipe (28), a third one-way valve is also connected and mounted at the joint between the feeding pipe (28) and the sleeve block (18), and a trigger is arranged between the exposed end of the push rod (23) and the ceiling plate (4).
8. The integrated energy storage charging pile according to claim 7, characterized in that: The triggering member comprises two symmetrically distributed slots provided inside the ceiling plate (4), a swing arm (26) is movably mounted inside each of the slots, and the bottom of the swing arm (26) is rotatably sleeved on the outer wall of the optical axis (13), a connecting rod (27) is hingedly mounted between the end of the swing arm (26) away from the optical axis (13) and the push rod (23) via a pin shaft, and a top ball (43) is fixedly mounted at the ends of the two pin shafts away from each other, and the top ball (43) abuts against the surface of the vertical plate (6) or the fixed frame (1).
9. The integrated energy storage charging pile according to claim 7, characterized in that: One section of the delivery pipe (22) is a hard pipe portion, and the outer surface of the hard pipe portion is fixedly connected and assembled with an arc sleeve frame (29), the interior of the arc sleeve frame (29) is rotatably assembled with a rotating shaft (30), and the outer surface of the rotating shaft (30) is fixedly sleeved with an impeller (31), the impeller (31) is placed inside the arc sleeve frame (29), and a gas injection component is also provided between the rotating shaft (30) and the arc sleeve frame (29).
10. The integrated energy storage charging pile according to claim 9, characterized in that: The gas injection component comprises a gear reducer (32) fixedly mounted on the outside of the circular arc sleeve (29), and the input end of the gear reducer (32) is fixed to one end of the rotating shaft (30), the output end of the gear reducer (32) is fixedly provided with a turntable (33), and the turntable (33) is fixedly provided with a shift block (34) on one end face close to the circular arc sleeve (29), and the outside of the circular arc sleeve (29) is also fixedly provided with a gas injection cylinder (35), and the gas injection cylinder ( The fourth piston block (36) is slidingly assembled inside the gas injection cylinder (35), a dome rod (37) is fixedly arranged on one end face of the fourth piston block (36) away from the delivery pipe (22), and a third spring (40) is arranged between the other end face of the fourth piston block (36) and the delivery pipe (22), the outer wall of the gas injection cylinder (35) is fixedly connected with a second one-way valve (39), and the connection point between the gas injection cylinder (35) and the delivery pipe (22) is fixedly assembled with a first one-way valve (38).