Optical storage charging wireless charging platform device
By designing a photovoltaic charging wireless charging platform device that includes photovoltaic power generation, ash cleaning, wireless charging and multi-station support components, the problem of dust precipitation and charging alignment of photovoltaic panels in the drone inspection system is solved, automatic charging and cleaning is achieved, and system efficiency and reliability are improved.
Patent Information
- Application Number
- CN202510685597.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-27
- Publication Date
- 2025-06-27
AI Technical Summary
The existing drone inspection system is prone to dust precipitation on the surface of the photovoltaic panel after long-term use, and plug-in charging alignment is more troublesome, affecting efficiency.
An optical storage charging wireless charging platform device is designed, including photovoltaic power generation components, ash cleaning components, wireless charging components and multi-station support components. The device uses photovoltaic power generation components to generate energy-saving and environmentally friendly power, uses dust cleaning components to automatically clean up dust, uses wireless charging components to achieve wireless charging, and locates and clamps the drone through multi-station support components to realize automated charging and cleaning of the drone.
It realizes the automatic battery wireless charging of the drone and the automatic cleaning of photovoltaic panels, improving the efficiency and reliability of the system, and reducing the complexity and time of manual operation.
Smart Images

Figure CN120207647A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of drone inspection, and particularly relates to a photoelectric energy storage and wireless charging platform device. Background Art
[0002] With the gradual transformation of power inspection requirements towards intelligence and automation, drones have seen rapid growth in application in the field of power inspection due to their advantages such as flexibility, mobility, safety, reliability, all-weather operation, strong adaptability, high inspection efficiency, and low cost.
[0003] Chinese Patent CN218877616U, a line inspection drone and hangar, relates to the technical fields of drones and hangars. A cross-arm multi-station support and dust cleaning component (3) is fixed on a pole X-axis limit component and wireless charging component (5). At the upper part of one end of the cross-arm multi-station support and dust cleaning component (3), there is a solar panel adjustable support component box body (1). The solar panel adjustable support component box body (1) is electrically connected to a battery box body photovoltaic power generation component (2), and the battery box body photovoltaic power generation component (2) is also fixed on the cross-arm multi-station support and dust cleaning component (3). At the upper part of the other end of the cross-arm multi-station support and dust cleaning component (3), there is a hangar (24). On the side of the hangar (24) close to the pole X-axis limit component and wireless charging component (5), there is an insulating side wall connecting plate (12). A hydraulic pump support bottom plate (11) is fixed on the side wall connecting plate (12) through a bolt fixing piece and a photovoltaic panel (21). A charging gun (10) is connected to the hydraulic pump support bottom plate (11). The beneficial effect of the present invention is that when the drone conducts line inspection, it can accurately find the leakage point through an infrared camera, and can also observe the surrounding situation through the camera, which can well replace people to complete some high-intensity labor, saving time and effort.
[0004] After long-term use, some dust will precipitate on the surface of the above-mentioned photovoltaic structure, which needs to be cleaned by additional equipment. At the same time, it is rather troublesome to align through plug-in charging.
[0005] Based on this, the present invention designs a photoelectric energy storage and wireless charging platform device to solve the above problems. Summary of the Invention
[0006] In view of the above-mentioned drawbacks of the prior art, the present invention provides a photoelectric energy storage and wireless charging platform device.
[0007] To achieve the above objectives, the present invention is realized through the following technical solutions: A photoelectric energy storage and wireless charging platform device, including a box body; A photovoltaic power generation component for photovoltaic power generation is connected to the front side wall of the box body; A dust cleaning component for photovoltaic dust cleaning is connected to the side wall of the box body where the photovoltaic power generation component is located; At the upper end of the inner wall of the box, there are a Y-axis clamping component for the left and right limit of the drone and an X-axis clamping component for the front and rear limit of the drone, and the X-axis clamping component and the Y-axis clamping component are arranged vertically offset. Inside the box, there are a multi-station support component for clamping and rotating the drone and an air intake component for air intake. A wireless charging component is fixedly installed inside the box. The wireless charging component includes a wireless charging transmitter, a wireless charging receiver, a position adjustment component, and a temperature reduction component. The position adjustment component is fixedly installed at the bottom inside the box, the output end of the position adjustment component is fixedly connected to the wireless charging transmitter, the wireless charging receiver is fixedly installed on the top of the drone, and the wireless charging receiver is magnetically connected to the charging module of the drone. The temperature reduction component is connected to the wireless charging transmitter and is also connected to the box. The output end of the air intake component is connected to the dust cleaning component and the temperature reduction component.
[0008] Furthermore, the dust cleaning component includes a moving jet component and a follow-up air guiding component. The follow-up air guiding component is fixedly connected to the output end of the air intake component, the follow-up air guiding component is fixedly connected to the moving jet component in a communicating manner, the moving jet component is fixedly connected to the box, and the jet end of the moving jet component is located outside the photovoltaic power generation component.
[0009] Furthermore, the moving jet component includes a nozzle, a guide rail, a mounting block, a linear module, and a first support frame. The first support frame is fixedly installed on the side wall of the box, the guide rail and the linear module are fixedly installed on the first support frame, the mounting block is fixedly installed on the driving end of the linear module, the mounting block is limited and slidably connected to the guide rail through a slider, the nozzle is fixedly installed inside the mounting block, and the spray holes of the mounting block are directed at the outer wall of the photovoltaic power generation component. The nozzle is communicated with the follow-up air guiding component.
[0010] Furthermore, the follow-up air guiding component includes a first hose, a counterweight, a fixed pulley, and a fixed pipe. The fixed pulley is fixedly installed at the upper end of the side wall of the first support frame, the fixed pulley is slidably connected to the first hose, both ends of the first hose are fixedly connected to the nozzle and the fixed pipe respectively, and a counterweight for counterweight is sleeved outside the first hose. The fixed pipe is fixedly connected to the box and is also fixedly connected to the output end of the air intake component.
[0011] Furthermore, the position adjustment component includes a guide rod, a second support frame, a third support frame, and an electric push rod. The second support frame is fixedly installed at the bottom inside the box, the electric push rod is fixedly installed on the second support frame, the third support frame is fixedly installed on the driving end of the second support frame, the bottom of the third support frame is fixedly connected to the top of the guide rod, the second support frame is in sliding fit with the guide rod through a sliding hole, and the top of the second support frame is connected to the wireless charging transmitter.
[0012] Further, the wireless charging transmitter includes a lower coil and a lower mounting cover. The lower coil is fixedly installed inside the lower mounting cover, and the lower mounting cover is fixedly installed on the top of the second support frame. The lower coil is electrically connected to the photovoltaic power generation component, and the lower mounting cover is connected to the temperature reduction component.
[0013] Further, the wireless charging receiver includes an upper coil and an upper mounting cover. The upper coil is fixedly installed inside the upper mounting cover, and the upper mounting cover is fixedly installed on the top of the drone. The upper coil is electrically connected to the control end of the drone.
[0014] Further, the temperature reduction component includes a second hose, a third hose, a first air outlet pipe, a second air outlet pipe, a partition board, a vortex hole, a second air inlet pipe, a flow dividing valve, and a third air inlet pipe. The third hose is connected to the air intake component, and the third hose is fixedly connected to the input end of the flow dividing valve. The output ends of the flow dividing valve are respectively and fixedly connected to communicate with the second air inlet pipe and the third air inlet pipe. A vortex hole imitating the shape of the lower coil is formed in the lower mounting cover, and both ends of the vortex hole are fixedly connected to communicate with the second air inlet pipe and the second air outlet pipe respectively. Both the second air outlet pipe and the first air outlet pipe are fixedly connected to the second hose through a reflux valve. A partition board is fixedly connected to the inner wall of the lower mounting cover. The two sides of the lower mounting cover located on both sides of the partition board are respectively and fixedly connected to communicate with the first air outlet pipe and the third air inlet pipe. The top of the lower mounting cover is in close contact with the top of the drone through a sealing ring.
[0015] Beneficial effects: The photovoltaic power generation component of the present invention performs photovoltaic power generation, which is energy-saving and environmentally friendly. The multi-station support component rotates the empty support surface to be vertically upward. The drone lands on the support surface of the multi-station support component. The X-axis clamping component and the Y-axis clamping component cooperate to position the drone. Then the Y-axis clamping component returns to the outside, and the multi-station support component clamps the drone. Then the X-axis clamping component returns to the outside, and the multi-station support component drives the clamped drone to rotate to be vertically downward. The wireless charging receiver on the drone to be charged is rotated to face the wireless charging transmitter. The position adjustment component drives the wireless charging transmitter to move upward to contact the wireless charging receiver. At the same time, the air intake component conducts to the temperature reduction component, and the photovoltaic power generation component supplies power to the wireless charging transmitter. The energized wireless charging transmitter realizes wireless charging of the wireless charging receiver through a coupled magnetic field, realizing wireless charging of the drone's battery. At the same time, the air intake component adds flowing air into the temperature reduction component, and the flowing air takes away the heat generated in the wireless charging transmitter and the wireless charging receiver, avoiding overheating of the wireless charging transmitter and the wireless charging receiver, reducing the coil deformation of the wireless charging transmitter and the wireless charging receiver, and the decrease of the magnetic permeability of the magnetic core material, and ensuring the coupling efficiency. When the photovoltaic power generation component needs to be dusted, the air intake component conducts to the dust cleaning component, and the dust cleaning component moves along the photovoltaic power generation component for dust cleaning treatment, ensuring the power generation efficiency of the photovoltaic power generation component. Description of the Drawings
[0016] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the accompanying drawings required in the description of the embodiments or the prior art. Obviously, the accompanying drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other accompanying drawings can be obtained based on these drawings.
[0017] Figure 1 A three-dimensional view of a photo-storage-charging wireless charging platform device of the present invention Figure 1 .
[0018] Figure 2 A front view of a photo-storage-charging wireless charging platform device of the present invention.
[0019] Figure 3 A left view of a photo-storage-charging wireless charging platform device of the present invention.
[0020] Figure 4 A three-dimensional view of a photo-storage-charging wireless charging platform device of the present invention Figure 2 .
[0021] Figure 5 Is a sectional view along the Figure 3 A-A direction.
[0022] Figure 6 Is a sectional view along the Figure 3 B-B direction Figure 1 .
[0023] Figure 7 Is a sectional view along the Figure 3 B-B direction Figure 2 .
[0024] Figure 8 Is Figure 5 An enlarged view of the structure at C.
[0025] The reference numerals in the figure respectively represent: 1. box body; 2. photovoltaic power generation assembly; 21. photovoltaic panel; 22. controller; 23. storage battery; 3. dust cleaning assembly; 31. nozzle; 32. guide rail; 33. mounting block; 34. linear module; 35. first hose; 36. counterweight block; 37. first support frame; 38. fixed pulley; 39. fixed pipe; 4. air intake assembly; 41. air inlet pipe; 42. air pump; 43. control valve; 5. wireless charging assembly; 51. second hose; 52. third hose; 53. guide rod; 54. second support frame; 55. third support frame; 56. first air outlet pipe; 57. second air outlet pipe; 58. partition board; 59. jack; 510. plug block; 511. upper limit ring; 512. upper mounting cover; 513. lower coil; 514. vortex hole; 515. second air inlet pipe; 516. flow dividing valve; 517. third air inlet pipe; 518. electric push rod; 519. lower mounting cover; 6. X-axis clamping assembly; 7. multi-station support assembly; 71. equilateral triangle box body; 72. steering engine; 73. chute; 74. clamping block; 75. horizontal axis; 76. synchronous belt; 77. motor; 8. Y-axis clamping assembly. Detailed implementation mode
[0026] To make the objectives, technical solutions and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are some but not all of the embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention. The present invention will be further described below with reference to the embodiments.
[0027] Embodiment 1: Please refer to Figures 1 - 8 , a light storage and wireless charging platform device, including a box body 1; The front side wall of the box body 1 is connected with a photovoltaic power generation assembly 2 for photovoltaic power generation; The box body 1 is connected with a dust cleaning assembly 3 for photovoltaic dust cleaning at the side wall of the photovoltaic power generation assembly 2; The inner wall upper end of the box body 1 is provided with a Y-axis clamping assembly 8 for left and right limiting of the unmanned aerial vehicle and an X-axis clamping assembly 6 for front and back limiting of the unmanned aerial vehicle, and the X-axis clamping assembly 6 and the Y-axis clamping assembly 8 are arranged up and down in a staggered manner; The X-axis clamping assembly 6 and the Y-axis clamping assembly 8 have the same structure. The X-axis clamping assembly 6 includes a symmetric linear module and two groups of movable plates. The symmetric linear module is fixedly connected to the inner wall of the box body 1, and the two groups of movable plates are symmetrically installed at the output end of the symmetric linear module; The box body 1 is internally provided with a multi-station support assembly 7 for clamping and rotating the unmanned aerial vehicle and an air intake assembly 4 for air intake; Inside the box body 1, a wireless charging component 5 is fixedly installed. The wireless charging component 5 includes a wireless charging transmitter, a wireless charging receiver, a position adjustment component, and a temperature reduction component. The position adjustment component is fixedly installed at the inner bottom of the box body 1, and the output end of the position adjustment component is fixedly connected to the wireless charging transmitter. The wireless charging receiver is fixedly installed on the top of the drone, and the wireless charging receiver is magnetically connected to the charging module of the drone. The temperature reduction component is connected to the wireless charging transmitter and is also connected to the box body 1; The output end of the air intake component 4 is connected to the dust cleaning component 3 and the temperature reduction component.
[0028] The photovoltaic power generation component 2 generates photovoltaic power, which is energy-saving and environmentally friendly. The multi-station support component 7 rotates the empty support surface to be vertically upward. The drone lands on the support surface of the multi-station support component 7. The X-axis clamping component 6 and the Y-axis clamping component 8 cooperate to position the drone. Then the Y-axis clamping component 8 returns to the outside. The multi-station support component 7 clamps the drone. Then the X-axis clamping component 6 returns to the outside. The multi-station support component 7 drives the clamped drone to rotate to be vertically downward, and rotates the wireless charging receiver on the drone to be charged to face the wireless charging transmitter. The position adjustment component drives the wireless charging transmitter to move upward to contact the wireless charging receiver. At the same time, the air intake component 4 conducts air to the temperature reduction component, and the photovoltaic power generation component 2 supplies power to the wireless charging transmitter. After being powered on, the wireless charging transmitter realizes wireless charging of the wireless charging receiver through the coupled magnetic field, realizing wireless charging of the drone's battery. At the same time, the air intake component 4 adds flowing air into the temperature reduction component, and the flowing air takes away the heat generated in the wireless charging transmitter and the wireless charging receiver, avoiding overheating of the wireless charging transmitter and the wireless charging receiver, reducing the coil deformation of the wireless charging transmitter and the wireless charging receiver, and the decrease in the magnetic permeability of the magnetic core material, and ensuring the coupling efficiency. When the photovoltaic power generation component 2 needs dust cleaning, the air intake component 4 conducts air to the dust cleaning component 3, and the dust cleaning component 3 moves along the photovoltaic power generation component 2 for dust cleaning treatment, ensuring the power generation efficiency of the photovoltaic power generation component 2.
[0029] The photovoltaic power generation component 2 includes a photovoltaic panel 21, a controller 22, and a storage battery 23. The photovoltaic panel 21 is fixedly installed on the front side wall of the box body 1, and the controller 22 and the storage battery 23 are fixedly installed at the inner bottom of the box body 1. The controller 22 and the storage battery 23 are electrically connected, and the controller 22 is connected to the photovoltaic panel 21; The photovoltaic panel 21 generates photovoltaic power, and the storage battery 23 stores energy; The dust cleaning component 3 includes a moving jet component and a follow-up air guiding component. The follow-up air guiding component is fixedly connected to the output end of the air intake component 4, and the follow-up air guiding component is fixedly connected to the moving jet component in communication. The moving jet component is fixedly connected to the box body 1, and the jet end of the moving jet component is located outside the photovoltaic panel 21; The mobile jet assembly includes a nozzle 31, a guide rail 32, a mounting block 33, a linear module 34 and a first support frame 37. The first support frame 37 is fixedly mounted on the side wall of the box body 1, the guide rail 32 and the linear module 34 are fixedly mounted on the first support frame 37, the mounting block 33 is fixedly mounted on the driving end of the linear module 34, the mounting block 33 is limitedly slidably connected with the guide rail 32 through a slider, the nozzle 31 is fixedly mounted in the mounting block 33, and the nozzle hole of the mounting block 33 is directly opposite to the outer wall of the photovoltaic panel 21, and the nozzle 31 is communicated with the follower air guide assembly; The follow-up air guide assembly includes a first hose 35, a counterweight 36, a fixed pulley 38 and a fixed pipe 39. The fixed pulley 38 is fixedly installed on the upper end of the side wall of the first support frame 37. The fixed pulley 38 is slidably connected to the first hose 35. The two ends of the first hose 35 are respectively fixedly connected to the nozzle 31 and the fixed pipe 39, and the first hose 35 is outer-mounted on the counterweight 36 for counterweight. The fixed pipe 39 is fixedly connected to the box body 1, and the fixed pipe 39 is fixedly connected to the output end of the air intake assembly 4.
[0030] When it is necessary to clean the dust on the upper end of the photovoltaic panel 21, the air intake component 4 is connected to the fixed pipe 39 of the follower air guide component of the cleaning component 3, and the flowing gas in the air intake component 4 enters the nozzle 31 through the fixed pipe 39 and the first hose 35, and is sprayed from the nozzle 31 to the photovoltaic panel 21, and then the linear module 34 of the jet assembly is moved to drive the mounting block 33 to move along the guide rail 32, and the mounting block 33 drives the nozzle 31 to move along the photovoltaic panel 21 to spray, so as to realize jet dust removal of the photovoltaic panel 21, and when the nozzle 31 moves upward, the counterweight block 36 drives the first hose 35 to move downward, and the counterweight block 36 performs counterweighting to prevent the first hose 35 from twisting and knotting.
[0031] The multi-station support assembly 7 includes an equilateral triangle box 71, a steering gear 72, a slide 73, a clamp 74, a transverse shaft 75, a synchronous belt 76 and a motor 77. The front and rear inner walls of the box 1 are rotatably connected to the transverse shaft 75 through a bearing, the equilateral triangle box 71 is fixedly installed between the transverse shafts 75, a group of transverse shafts 75 are transmission-connected to the motor 77 through a synchronous belt 76, and the motor 77 is fixedly connected to the inner wall of the box 1, and each support surface of the equilateral triangle box 71 is symmetrically provided with a slide 73, the equilateral triangle box 71 is fixedly connected with the steering gear 72, and the clamp 74 is fixedly installed on the output end of the steering gear 72, and the clamp 74 moves in the slide 73; The motor 77 of the multi-station support assembly 7 drives a set of horizontal shafts 75 to rotate through a synchronous belt 76, and drives an equilateral triangle box body 71 to rotate through another set of horizontal shafts 75. The equilateral triangle box body 71 rotates the empty support surface to face vertically upward. The unmanned aerial vehicle lands on the support surface of the equilateral triangle box body 71. The X-axis clamping assembly 6 and the Y-axis clamping assembly 8 cooperate to position the unmanned aerial vehicle. Then the Y-axis clamping assembly 8 returns to the outside. The servo 72 of the multi-station support assembly 7 drives the clamping block 74 to rotate outward along the chute 73. The two clamping blocks 74 clamp the unmanned aerial vehicle. Then the X-axis clamping assembly 6 returns to the outside. The motor 77 of the multi-station support assembly 7 drives a set of horizontal shafts 75 to rotate through a synchronous belt 76, and drives an equilateral triangle box body 71 to rotate through another set of horizontal shafts 75. The equilateral triangle box body 71 drives the clamped unmanned aerial vehicle to rotate to be vertically downward, and rotates the wireless charging receiver on the unmanned aerial vehicle to be directly opposite the wireless charging transmitter.
[0032] The position adjustment assembly includes a guide rod 53, a second support frame 54, a third support frame 55 and an electric push rod 518. The second support frame 54 is fixedly installed at the inner bottom of the box body 1. The electric push rod 518 is fixedly installed on the second support frame 54. The third support frame 55 is fixedly installed on the driving end of the second support frame 54. The bottom of the third support frame 55 is fixedly connected to the top of the guide rod 53. The second support frame 54 is slidably connected to the guide rod 53 through a sliding hole. The top of the second support frame 54 is connected to the wireless charging transmitter. The wireless charging transmitter includes a lower coil 513 and a lower mounting cover 519. The lower coil 513 is fixedly installed in the lower mounting cover 519, and the lower mounting cover 519 is fixedly installed on the top of the second support frame 54. And the lower coil 513 is electrically connected to the controller 22. The lower mounting cover 519 is connected to the temperature reduction assembly. The wireless charging receiver includes an upper limit coil 511 and an upper mounting cover 512. The upper limit coil 511 is fixedly installed in the upper mounting cover 512. The upper mounting cover 512 is fixedly installed on the top of the unmanned aerial vehicle. And the upper limit coil 511 is electrically connected to the control end of the unmanned aerial vehicle. The cooling component includes a second hose 51, a third hose 52, a first air outlet pipe 56, a second air outlet pipe 57, a partition plate 58, a scroll hole 514, a second air inlet pipe 515, a flow control valve 516 and a third air inlet pipe 517. The third hose 52 is connected to the air intake component 4, and the third hose 52 is fixedly connected to the input end of the flow control valve 516. The output ends of the flow control valve 516 are respectively and fixedly connected to communicate with the second air inlet pipe 515 and the third air inlet pipe 517. A scroll hole 514 that imitates the shape of the lower coil 513 is formed in the lower mounting cover 519, and both ends of the scroll hole 514 are respectively and fixedly connected to communicate with the second air inlet pipe 515 and the second air outlet pipe 57. Both the second air outlet pipe 57 and the first air outlet pipe 56 are fixedly connected to the second hose 51 through a reflux valve. A partition plate 58 is fixedly connected to the inner wall of the lower mounting cover 519. The lower mounting cover 519 is respectively and fixedly connected to communicate with the first air outlet pipe 56 and the third air inlet pipe 517 on both sides of the partition plate 58. The top of the lower mounting cover 519 is in close contact with the top of the drone through a sealing ring; The multi-station support component 7 drives the clamped drone to rotate until it is vertically downward, and rotates the upper mounting cover 512 and the upper limit ring 511 of the wireless charging receiver on the drone to be charged until they are directly opposite to the lower coil 513 and the lower mounting cover 519 of the wireless charging transmitter. The electric push rod 518 of the position adjustment component drives the third support frame 55 to move upward, and the guide rod 53 conducts corresponding guiding. The third support frame 55 drives the lower mounting cover 519 of the wireless charging transmitter to move downward. The top of the lower mounting cover 519 contacts the drone, and the inner bottom of the lower mounting cover 519 contacts the upper mounting cover 512 of the wireless charging receiver. At the same time, the air intake component 4 conducts air to the third hose 52 of the cooling component, and the controller 22 energizes the lower coil 513 of the wireless charging transmitter. After being energized, the lower coil 513 of the wireless charging transmitter charges the upper limit ring 511 of the wireless charging receiver through a coupled magnetic field, realizing wireless charging of the drone's battery. At the same time, the air intake component 4 adds flowing air into the third hose 52 of the cooling component. The flow control valve 516 shunts the flowing air. A part of the flowing air enters the scroll hole 514 through the second air inlet pipe 515, and then enters the second hose 51 through the second air outlet pipe 57. The scroll hole 514 that imitates the shape of the lower coil 513 helps to take away the heat generated by the lower coil 513. A part of the flowing air enters the air between the outer walls of the lower mounting cover 519 and the upper mounting cover 512 through the third air inlet pipe 517. The flowing air starts from one side wall of the partition plate 58, then surrounds the outer wall of the upper mounting cover 512 and returns to the other side wall of the partition plate 58, and returns to the second hose 51 through the second air outlet pipe 57, taking away the heat of the outer wall of the upper mounting cover 512. The flowing air takes away the heat generated in the wireless charging transmitter and the wireless charging receiver, preventing the wireless charging transmitter and the wireless charging receiver from overheating, reducing the deformation of the coils and the decrease in the magnetic permeability of the magnetic core material in the wireless charging transmitter and the wireless charging receiver, and ensuring the coupling efficiency.
[0033] The bottom of the upper mounting cover 512 is provided with insertion holes 59 at equal circumferential intervals, and the bottom of the lower mounting cover 519 is fixedly connected with insertion blocks 510 that cooperate with the insertion holes 59 at equal circumferential intervals; When the lower mounting cover 519 moves upward, the lower mounting cover 519 drives the insertion blocks 510 to insert into the insertion holes 59. The insertion holes 59 and the insertion blocks 510 limit the lower mounting cover 519 and the upper mounting cover 512, ensuring that the upper limit ring 511 and the lower coil 513 are aligned.
[0034] The air intake assembly 4 includes an intake pipe 41, an air pump 42, and a control valve 43. The intake pipe 41 is fixedly connected to the box body 1, the intake pipe 41 is fixedly connected to the input end of the air pump 42, the output end of the air pump 42 is fixedly connected to the input end of the control valve 43, and the output end of the control valve 43 is fixedly connected to the inside of the fixed pipe 39 and the third hose 52 respectively; When the fixed pipe 39 needs to intake air, the control valve 43 opens to the fixed pipe 39, and the air pump 42 pumps gas into the fixed pipe 39 through the intake pipe 41; When the third hose 52 needs to intake air, the control valve 43 opens to the third hose 52, and the air pump 42 pumps gas into the third hose 52 through the intake pipe 41.
[0035] A waterproof cover plate (not shown in the figure) is installed on the top of the box body 1.
[0036] The above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it; although the present invention has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that: they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements on some of the technical features; and these modifications or replacements will not make the essence of the corresponding technical solutions deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.
Claims
1. A photovoltaic energy storage and wireless charging platform device, comprising a box body (1), characterized in that: A photovoltaic power generation component (2) for photovoltaic power generation is connected to the front side wall of the box body (1); A dust cleaning component (3) for photovoltaic dust cleaning is connected to the side wall of the box body (1) at the position of the photovoltaic power generation component (2); A Y-axis clamping component (8) for limiting the left and right positions of the unmanned aerial vehicle and an X-axis clamping component (6) for limiting the front and rear positions of the unmanned aerial vehicle are arranged at the upper end of the inner wall of the box body (1), and the X-axis clamping component (6) and the Y-axis clamping component (8) are arranged in a vertically staggered manner; A multi-station support component (7) for clamping and rotating the unmanned aerial vehicle and an air intake component (4) for air intake are arranged in the box body (1); A wireless charging component (5) is fixedly installed inside the box body (1). The wireless charging component (5) includes a wireless charging transmitting end, a wireless charging receiving end, a position adjusting component and a cooling component. The position adjusting component is fixedly installed at the bottom inside the box body (1), the output end of the position adjusting component is fixedly connected to the wireless charging transmitting end, the wireless charging receiving end is fixedly installed on the top of the unmanned aerial vehicle, and the wireless charging receiving end is magnetically connected to the charging module of the unmanned aerial vehicle. The cooling component is connected to the wireless charging transmitting end and is also connected to the box body (1); The output end of the air intake component (4) is connected to the dust cleaning component (3) and the cooling component.
2. The optical storage and charging wireless charging platform device according to claim 1, wherein The dust cleaning component (3) includes a moving jet component and a follow-up air guiding component. The follow-up air guiding component is fixedly connected to the output end of the air intake component (4), the follow-up air guiding component is fixedly connected to the moving jet component in a communicating manner, the moving jet component is fixedly connected to the box body (1), and the jet end of the moving jet component is located outside the photovoltaic power generation component (2).
3. The optical storage and charging wireless charging platform device according to claim 2, characterized in that, The moving jet component includes a nozzle (31), a guide rail (32), a mounting block (33), a linear module (34) and a first support frame (37). The first support frame (37) is fixedly installed on the side wall of the box body (1), the guide rail (32) and the linear module (34) are fixedly installed on the first support frame (37), the mounting block (33) is fixedly installed on the driving end of the linear module (34), the mounting block (33) is slidably connected to the guide rail (32) through a slider, the nozzle (31) is fixedly installed inside the mounting block (33), and the spray holes of the mounting block (33) are directed at the outer wall of the photovoltaic power generation component (2). The nozzle (31) is communicated with the follow-up air guiding component.
4. The optical storage and charging wireless charging platform device according to claim 3, characterized in that, The follow-up air guiding component includes a first hose (35), a counterweight block (36), a fixed pulley (38) and a fixed pipe (39). The fixed pulley (38) is fixedly installed at the upper end of the side wall of the first support frame (37), the fixed pulley (38) is slidably connected to the first hose (35), both ends of the first hose (35) are fixedly connected to the nozzle (31) and the fixed pipe (39) respectively, and the first hose (35) is sleeved outside the counterweight block (36) for counterweight. The fixed pipe (39) is fixedly connected to the box body (1), and the fixed pipe (39) is fixedly connected to the output end of the air intake component (4).
5. The optical storage and charging wireless charging platform device according to any one of claims 1-4, characterized in that The position adjustment component includes a guide rod (53), a second support frame (54), a third support frame (55), and an electric push rod (518). The second support frame (54) is fixedly installed at the inner bottom of the box body (1). The electric push rod (518) is fixedly installed on the second support frame (54). The third support frame (55) is fixedly installed on the driving end of the second support frame (54). The bottom of the third support frame (55) is fixedly connected to the top of the guide rod (53). The second support frame (54) is in sliding fit connection with the guide rod (53) through a sliding hole. The top of the second support frame (54) is connected to the wireless charging transmitter.
6. The optical storage and charging wireless charging platform device according to claim 5, wherein, The wireless charging transmitter includes a lower coil (513) and a lower mounting cover (519). The lower coil (513) is fixedly installed in the lower mounting cover (519), and the lower mounting cover (519) is fixedly installed at the top of the second support frame (54). The lower coil (513) is electrically connected to the photovoltaic power generation component (2), and the lower mounting cover (519) is connected to the temperature reduction component.
7. The optical storage and charging wireless charging platform device according to claim 6, characterized in that The wireless charging receiver includes an upper limit coil (511) and an upper mounting cover (512). The upper limit coil (511) is fixedly installed in the upper mounting cover (512). The upper mounting cover (512) is fixedly installed on the top of the unmanned aerial vehicle, and the upper limit coil (511) is electrically connected to the control end of the unmanned aerial vehicle.
8. The optical storage charging wireless charging platform device according to claim 7, characterized in that, The temperature reduction component includes a second hose (51), a third hose (52), a first air outlet pipe (56), a second air outlet pipe (57), a partition plate (58), a vortex hole (514), a second air inlet pipe (515), a flow dividing valve (516), and a third air inlet pipe (517). The third hose (52) is connected to the air intake component (4). The third hose (52) is fixedly connected to the input end of the flow dividing valve (516). The output ends of the flow dividing valve (516) are respectively and fixedly connected to communicate with the second air inlet pipe (515) and the third air inlet pipe (517). A vortex hole (514) imitating the shape of the lower coil (513) is formed in the lower mounting cover (519), and both ends of the vortex hole (514) are respectively and fixedly connected to communicate with the second air inlet pipe (515) and the second air outlet pipe (57). Both the second air outlet pipe (57) and the first air outlet pipe (56) are fixedly connected to the second hose (51) through a reflux valve. A partition plate (58) is fixedly connected to the inner wall of the lower mounting cover (519). The two sides of the lower mounting cover (519) located on both sides of the partition plate (58) are respectively and fixedly connected to communicate with the first air outlet pipe (56) and the third air inlet pipe (517). The top of the lower mounting cover (519) is in close contact with the top of the unmanned aerial vehicle through a sealing ring.
Citation Information
Patent Citations
Line patrol unmanned aerial vehicle and hangar
CN218877616U