Shared power bank solar charging mechanism and cleaning device

By introducing a solar panel adjustment unit and a cleaning unit into the shared power bank energy storage box, the problems of photovoltaic panels not being able to adjust their orientation to the sun and the impact of pollutants are solved, enabling photovoltaic panels to generate electricity and be protected outdoors, ensuring power supply.

CN224138963UActive Publication Date: 2026-04-17YUNNAN GUANGDIAN TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
YUNNAN GUANGDIAN TECHNOLOGY CO LTD
Filing Date
2025-03-25
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

Existing shared power bank energy storage boxes cannot be deployed outdoors due to power supply limitations, and the photovoltaic panels cannot be adjusted to face the sun. They are also susceptible to damage from severe weather and pollution from pollutants, which affects their power generation efficiency.

Method used

A shared power bank solar charging mechanism was designed, which includes a solar panel adjustment unit and a cleaning unit. The angle of the photovoltaic panel is adjusted by a lifting component and a control component. The photovoltaic panel is protected by a solar tracking probe and a fire extinguisher. The cleaning device removes pollutants by a spray component and a drive component.

Benefits of technology

This ensures that photovoltaic panels always face the sun when deployed outdoors, improving power generation efficiency, protecting the panels from damage caused by severe weather, removing pollutants, extending their service life, and ensuring power supply.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a shared power bank solar charging mechanism and cleaning device, which comprises a main body, a cabinet body, a mounting cavity which is arranged in the cabinet body and penetrates through the front and rear surfaces of the cabinet body, shared power bank hosts which are arranged in the mounting cavity and are symmetrical in front and rear positions, and an electric power storage assembly arranged below the mounting cavity, the solar photovoltaic panel is arranged above the cabinet body; and a solar panel adjusting unit. The beneficial effects of the utility model are that the solar photovoltaic panel can be utilized to convert solar energy into electric energy, the electric energy is stored in the storage battery, a power supply is provided for the shared charge pal host, and the lifting assembly, the control assembly and the sun tracking probe act together to drive the solar photovoltaic panel to move up and down and rotate so as to achieve an optimal illumination angle. And meanwhile, the photovoltaic panel can be turned over to prevent the photovoltaic panel from being damaged by severe weather such as hail and the like by using the firm fixing frame, so that the service life of the solar photovoltaic panel is prolonged.
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Description

Technical Field

[0001] This utility model relates to the field of power bank technology, and in particular to a solar charging mechanism and cleaning device for a shared power bank. Background Technology

[0002] With the development of smartphone technology, power banks emerged to solve the problem of not having a power source when out and about, and have become popular. Furthermore, in some public places, people sometimes need to temporarily charge their electronic devices, and seeing this business opportunity, many companies have launched shared power bank storage boxes. However, currently, shared power bank storage boxes still have the following drawbacks:

[0003] Existing shared power bank energy storage boxes all require an external power source, necessitating partnerships with businesses to rent power supplies. This limits deployment and increases site rental costs. Furthermore, high-traffic plazas lacking external power sources cannot accommodate these boxes, resulting in wasted business opportunities. This paper proposes a shared power bank energy storage box that can be deployed outdoors without an external power source. It utilizes solar photovoltaic panels to convert solar energy into electricity, which is then stored in a battery to charge the power bank. However, existing photovoltaic panels are mostly fixed installations, making it impossible to adjust their angle to ensure they always face the sun, thus affecting their power generation efficiency. Outdoor photovoltaic panels are also susceptible to damage from severe weather, and their surface is easily contaminated by pollutants, further impacting their power generation efficiency. Utility Model Content

[0004] The purpose of this section is to outline some aspects of embodiments of the present invention and to briefly describe some preferred embodiments. Simplifications or omissions may be made in this section, as well as in the abstract and title of this application, to avoid obscuring the purpose of these documents, and such simplifications or omissions should not be construed as limiting the scope of the present invention.

[0005] In view of the problems in the existing technology, such as the inability of shared power bank energy storage boxes to be deployed outdoors due to power limitations, the inability to adjust the photovoltaic panels to face the sun, and the easy damage to the photovoltaic panels in severe weather, this utility model is proposed.

[0006] To solve the above-mentioned technical problems, this utility model provides the following technical solution:

[0007] As a preferred embodiment of the shared power bank solar charging mechanism of this utility model, it includes:

[0008] The main body includes a cabinet, an installation cavity disposed within the cabinet and extending through the front and rear surfaces of the cabinet, a shared power bank host disposed within the installation cavity and symmetrically positioned front and rear, an energy storage component disposed below the installation cavity, and a solar photovoltaic panel disposed above the cabinet.

[0009] The solar panel adjustment unit includes a fixed frame disposed below and fixedly connected to the solar photovoltaic panel, a lifting component disposed inside the cabinet and capable of lifting the solar photovoltaic panel, and a control component disposed on both sides of the fixed frame and capable of controlling the rotation of the fixed frame.

[0010] As a preferred embodiment of the shared power bank solar charging mechanism of this utility model, the energy storage component includes a storage cavity disposed below the mounting cavity and penetrating the right surface of the cabinet, a battery disposed on the lower surface of the storage cavity, a control box disposed on the upper surface of the storage cavity, and a lock door rotatably connected to the storage cavity.

[0011] As a preferred embodiment of the shared power bank solar charging mechanism of this utility model, the lifting assembly includes a lifting cavity disposed in the cabinet and symmetrical about the left and right positions of the mounting cavity and opening upward, a first servo motor disposed at the bottom of the lifting cavity, a first screw disposed in the lifting cavity and mounted on the first servo motor, and a lifting rod disposed in the lifting cavity and slidably connected and threadedly connected to the first screw.

[0012] As a preferred embodiment of the shared power bank solar charging mechanism of this utility model, the control component includes a second servo motor disposed inside the lifting rod and facing the fixed frame, a connector disposed on the second servo motor, a ball joint mounting cavity disposed inside the connector and opening towards the fixed frame, and a ball joint cross shaft disposed inside the ball joint mounting cavity and slidably connected thereto.

[0013] As a preferred embodiment of the shared power bank solar charging mechanism of this utility model, the control component further includes connecting blocks disposed on the left and right surfaces of the fixed frame, and a cross-shaped limiting cavity disposed within the connecting blocks and opening towards the ball-head cross axis and slidably connected thereto.

[0014] As a preferred embodiment of the shared power bank solar charging mechanism of this utility model, the main body further includes a fire-fighting component disposed on the left side of the energy storage component, and a solar tracking probe.

[0015] As a preferred embodiment of the shared power bank solar charging mechanism of this utility model, the fire-fighting component includes a fire-fighting chamber disposed inside the cabinet and penetrating the left surface of the cabinet, and a fire extinguisher disposed inside the fire-fighting chamber.

[0016] The beneficial effects of this utility model's shared power bank solar charging mechanism are as follows: It can utilize solar photovoltaic panels to convert solar energy into electrical energy stored in a battery, providing power to the shared power bank host. Simultaneously, the lifting assembly, control assembly, and solar tracking probe work together to move and rotate the solar photovoltaic panels up and down to achieve the optimal illumination angle. For example, when the lifting rods in the lifting assembly are raised and lowered synchronously, the photovoltaic panels move horizontally up and down; when the lifting rods are not raised and lowered synchronously, the photovoltaic panels move tilted up and down. The control assembly can control the photovoltaic panels to rotate 360 ​​degrees in either horizontal or tilted states, ensuring the solar photovoltaic panels are at the optimal illumination angle and improving power generation efficiency. Furthermore, at night or in severe weather, the photovoltaic panels can be flipped so that the bottom of the fixing frame faces the sky, using the sturdy fixing frame to protect the photovoltaic panels from damage caused by severe weather such as hail, extending their lifespan. Additionally, the included fire extinguisher can prevent fires involving the equipment or surrounding objects, protecting personnel and property safety.

[0017] In practical use, there is a problem that the surface of photovoltaic panels is easily contaminated by pollutants when used outdoors, which affects the power generation efficiency of photovoltaic panels.

[0018] To solve the above-mentioned technical problems, the present invention also provides the following technical solution: a solar panel cleaning unit, including a cleaning chamber disposed above the mounting cavity and opening upward and communicating with the upper end of the lifting cavity, a spray assembly disposed in the cleaning chamber for cleaning the solar photovoltaic panel, and a drive assembly disposed in the cleaning chamber for controlling the movement of the spray assembly.

[0019] As a preferred embodiment of the cleaning device of this utility model, the spray assembly includes: a sliding groove disposed on the front and rear surfaces of the cleaning chamber; a cleaning beam disposed in the sliding groove and slidably connected; a rubber scraper disposed on the upper surface of the cleaning beam and capable of pressing against the solar photovoltaic panel; a uniform distribution chamber disposed in the cleaning beam; spray heads disposed on the left and right sides of the rubber scraper and communicating with the uniform distribution chamber; a sewage chamber disposed below the cleaning chamber and opening forward, the sewage chamber communicating with the cleaning chamber; a sewage box disposed in the sewage chamber; a clean water chamber disposed on the left side of the sewage chamber and opening forward; a clean water box disposed in the clean water chamber; a water pump disposed above the clean water chamber; and the water pump communicating with the uniform distribution chamber through a first flexible hose and the water pump communicating with the clean water box through a second flexible hose.

[0020] In a preferred embodiment of the cleaning device of this utility model, the driving component includes a third servo motor disposed in the left surface of the sliding groove, a second screw disposed at the right end of the third servo motor and rotatably connected to the sliding groove, and the second screw is threadedly connected to the cleaning beam.

[0021] The beneficial effects of the cleaning device of this utility model are as follows: the water pump pumps clean water from the clean water chamber into the uniform distribution chamber, and then sprays it onto the surface of the solar photovoltaic panel through the spray head to wet the contaminants on the surface of the solar photovoltaic panel and preliminarily clean the contaminants that are not firmly attached to the surface. Then, the drive component drives the rubber scraper to move and scrape off the wetted stubborn contaminants, thereby removing the contaminants from the surface of the solar photovoltaic panel, restoring the photovoltaic panel to its optimal power generation state, and improving the power generation efficiency. Attached Figure Description

[0022] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort. Among them:

[0023] Figure 1 This is a schematic diagram of a solar charging mechanism for a shared power bank.

[0024] Figure 2 A cross-sectional view AA of a solar charging mechanism for a shared power bank.

[0025] Figure 3 for Figure 2 A magnified view of a portion of G.

[0026] Figure 4 This is a front view of a solar-powered charging mechanism for shared power banks.

[0027] Figure 5 BB is a cross-sectional view of a solar charging mechanism for a shared power bank.

[0028] Figure 6 An exploded view of a solar-powered charging mechanism for shared power banks.

[0029] Figure 7 This is a schematic diagram of a cleaning device.

[0030] Figure 8 This is a schematic diagram illustrating the working state of a solar-powered charging mechanism for a shared power bank. Detailed Implementation

[0031] To make the above-mentioned objectives, features and advantages of this utility model more apparent and understandable, the specific embodiments of this utility model will be described in detail below with reference to the accompanying drawings.

[0032] Many specific details are set forth in the following description in order to provide a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Those skilled in the art can make similar extensions without departing from the spirit of the present invention. Therefore, the present invention is not limited to the specific embodiments disclosed below.

[0033] Secondly, the term "an embodiment" or "embodiment" as used herein refers to a specific feature, structure, or characteristic that may be included in at least one implementation of the present invention. The phrase "in one embodiment" appearing in different places in this specification does not necessarily refer to the same embodiment, nor is it a single or selective embodiment that excludes other embodiments.

[0034] Example 1

[0035] Reference Figures 1-6 This is the first embodiment of the present utility model. This embodiment provides a shared power bank solar charging mechanism, which can be deployed outdoors to convert solar energy into electrical energy and store it in a battery. At the same time, it can adjust the photovoltaic panel to always face the sun to maintain the best light angle, and also protect the photovoltaic panel from damage by severe weather.

[0036] Specifically, including,

[0037] The main body 100 includes a cabinet 101, an installation cavity 101a disposed within the cabinet 101 and extending through the front and rear surfaces of the cabinet 101, a shared power bank host 102 disposed within the installation cavity 101a and symmetrically positioned front and rear, an energy storage component 103 disposed below the installation cavity 101a, and a solar photovoltaic panel 104 disposed above the cabinet 101. The shared power bank host 102 and the solar photovoltaic panel 104 can both adopt existing technologies, and only need to achieve the corresponding functions, so they will not be described in detail.

[0038] The solar panel adjustment unit 200 includes a fixed frame 201 fixedly connected to and positioned below the solar photovoltaic panel 104, a lifting component 202 positioned inside the cabinet 101 and capable of lifting the solar photovoltaic panel 104, and a control component 203 positioned on both sides of the fixed frame 201 and capable of controlling the rotation of the fixed frame 201.

[0039] Furthermore, the energy storage assembly 103 includes a storage cavity 103a located below the mounting cavity 101a and extending through the right surface of the cabinet 101, a battery 103b located on the lower surface of the storage cavity 103a, a control box 103c located on the upper surface of the storage cavity 103a, and a lock door 103d rotatably connected to the storage cavity 103a. The battery 103b and the control box 103c can both adopt existing technologies, such as lead-acid batteries or ternary lithium batteries. As long as the control box 103c can control the on / off of the circuit and protect the circuit within a safe range, it only needs to implement the corresponding functions, so it will not be described in detail.

[0040] Furthermore, the lifting assembly 202 includes a lifting cavity 202a disposed within the cabinet 101 and symmetrically positioned about the left and right of the mounting cavity 101a with an upward opening, a first servo motor 202b disposed at the bottom of the lifting cavity 202a, a first screw 202c disposed within the lifting cavity 202a and mounted on the first servo motor 202b, and a lifting rod 202d disposed within the lifting cavity 202a and slidably connected to and threadedly connected to the first screw 202c.

[0041] Furthermore, the control component 203 includes a second servo motor 203a disposed within the lifting rod 202d and facing the fixed frame 201, a connector 203b disposed on the second servo motor 203a, a ball joint mounting cavity 203c disposed within the connector 203b and opening towards the fixed frame 201, and a ball joint cross shaft 203d disposed within the ball joint mounting cavity 203c and slidably connected thereto.

[0042] Furthermore, the control component 203 also includes a connecting block 203e disposed on the left and right surfaces of the fixed frame 201, and a cross limiting cavity 203f disposed in the connecting block 203e and opening toward the ball head cross shaft 203d and slidably connected.

[0043] Furthermore, the main body 100 also includes a fire-fighting component 105 disposed on the left side of the energy storage component 103, and a solar tracking probe 106. The solar tracking probe 106 can adopt existing technologies, such as photoelectric probes or differential pressure probes, etc., as long as the corresponding functions are realized, so it will not be described in detail.

[0044] Furthermore, the fire-fighting component 105 includes a fire-fighting chamber 105a disposed within the cabinet 101 and extending through the left surface of the cabinet 101, and a fire extinguisher 105b disposed within the fire-fighting chamber 105a.

[0045] It should be noted that the servo motor and the fire extinguisher 105b are both existing technologies, and it is sufficient to implement the corresponding functions, so they will not be described in detail.

[0046] In use, the first servo motor 202b starts and drives the lifting rod 202d to move upward, thereby moving the photovoltaic panel upward. Then, the second servo motor 203a starts and drives the photovoltaic panel to rotate 180 degrees so that the photovoltaic panel faces the sky. When the sun is tilted, the first servo motor 202b on the side away from the sun starts and drives the lifting rod 202d to rise, while the first servo motor 202b on the side closer to the sun starts and drives the lifting rod 202d to fall or remain stationary, so that the lifting rod 202d is higher on the side away from the sun and lower on the side closer to the sun, thereby tilting the photovoltaic panel towards the sun. At the same time, the second servo motor 203a starts and drives the photovoltaic panel to finely adjust the angle so that the photovoltaic panel is at a better angle of light reception. Then, as the sun rises and falls, the first servo motor 202b adjusts the height difference between the lifting rods 202d and the second servo motor 203a adjusts the angle of the photovoltaic panel, thereby adjusting the tilt angle of the photovoltaic panel to adapt to the changing angle of the sun throughout the year.

[0047] At night or in severe weather such as hail, the second servo motor 203a starts to rotate the photovoltaic panel toward the cleaning chamber 301, and then the first servo motor 202b starts to move the photovoltaic panel downward and into the cleaning chamber 301, thereby protecting the photovoltaic panel from damage.

[0048] In summary, the beneficial effects of a shared power bank solar charging mechanism are as follows: it can utilize solar photovoltaic panels to convert solar energy into electrical energy stored in a battery, providing power to the shared power bank host. Simultaneously, the lifting assembly, control assembly, and solar tracking probe work together to move and rotate the solar photovoltaic panels up and down to achieve the optimal illumination angle. For example, when the lifting rods in the lifting assembly are raised and lowered synchronously, the photovoltaic panels move horizontally up and down; when the lifting rods are not raised and lowered synchronously, the photovoltaic panels move tilted up and down. The control assembly can control the photovoltaic panels to rotate 360 ​​degrees in either horizontal or tilted positions, ensuring the solar photovoltaic panels are at the optimal illumination angle and improving power generation efficiency. Furthermore, at night or in severe weather, the photovoltaic panels can be flipped so that the bottom of the fixing frame faces the sky, using the sturdy fixing frame to protect the photovoltaic panels from damage caused by severe weather such as hail, extending their lifespan. Additionally, the included fire extinguisher can prevent fires involving the equipment or surrounding objects, protecting personnel and property safety.

[0049] Example 2

[0050] Reference Figures 3-7 This is the second embodiment of the present invention. This embodiment provides a cleaning device that can remove contaminants from the surface of photovoltaic panels and improve the power generation efficiency of photovoltaic panels.

[0051] Specifically, the solar panel cleaning unit 300 includes a cleaning chamber 301 disposed above the mounting cavity 101a and opening upward and communicating with the upper end of the lifting cavity 202a, a spray assembly 302 disposed in the cleaning chamber 301 for cleaning the solar photovoltaic panel 104, and a drive assembly 303 disposed in the cleaning chamber 301 for controlling the movement of the spray assembly 302.

[0052] Furthermore, the spray assembly 302 includes a sliding groove 302a disposed on the front and rear surfaces of the cleaning chamber 301, a cleaning beam 302b disposed in the sliding groove 302a and slidably connected thereto, a rubber scraper 302c disposed on the upper surface of the cleaning beam 302b and capable of pressing against the solar photovoltaic panel 104, a uniform distribution cavity 302d disposed in the cleaning beam 302b, spray heads 302e disposed on the left and right sides of the rubber scraper 302c and communicating with the uniform distribution cavity 302d, and a spray head 302e disposed below the cleaning chamber 301 and opening forward. The system includes a wastewater chamber 302f, a wastewater box 302g located inside the wastewater chamber 302f, a clean water chamber 302h located on the left side of the wastewater chamber 302f and opening forward, a clean water box 302i located inside the clean water chamber 302h, a water pump 302j located above the clean water chamber 302h, and a water pump 302j connected to the distribution chamber 302d via a first hose 302k. The water pump 302j is also connected to the clean water box 302i via a second hose 302l.

[0053] Furthermore, the drive assembly 303 includes a third servo motor 303a disposed in the left surface of the sliding groove 302a, and a second screw 303b disposed at the right end of the third servo motor 303a and rotatably connected to the sliding groove 302a. The second screw 303b is threadedly connected to the cleaning beam 302b.

[0054] It should be noted that the rubber scraper 302c, water pump 302j, and third servo motor 303a are all existing technologies, and it is sufficient to implement the corresponding functions, so they will not be described in detail.

[0055] When in use, the water pump 302j is started to pump the clean water in the cleaning chamber 301 into the uniform distribution chamber 302d, and then sprays it onto the surface of the solar photovoltaic panel through the spray head 302e to wet the contaminants on the surface of the solar photovoltaic panel. Then, the third servo motor 303a drives the rubber scraper 302c to move and scrape off the wetted stubborn contaminants.

[0056] In summary, the beneficial effects of a cleaning device are as follows: clean water is pumped from the cleaning chamber into the uniform distribution chamber, and then sprayed onto the surface of the solar photovoltaic panel through a spray head to wet the contaminants on the surface of the solar photovoltaic panel and to initially clean the contaminants that are not firmly attached to the surface. Then, the driving component drives the rubber scraper to move and scrape off the wetted stubborn contaminants, thereby removing the contaminants from the surface of the solar photovoltaic panel, restoring the photovoltaic panel to its optimal power generation state, and improving the power generation efficiency.

[0057] Example 3

[0058] Reference Figures 1-8 This is the third embodiment of the present invention. This embodiment further provides a cleaning device that can be deployed outdoors to convert solar energy into electrical energy and store it in a battery. At the same time, it can adjust the photovoltaic panel to always face the sun to maintain the optimal light angle, protect the photovoltaic panel from damage caused by harsh weather, and remove contaminants from the surface of the photovoltaic panel to improve the power generation efficiency of the photovoltaic panel.

[0059] Specifically, including,

[0060] The main body 100 includes a cabinet 101, an installation cavity 101a disposed within the cabinet 101 and extending through the front and rear surfaces of the cabinet 101, a shared power bank host 102 disposed within the installation cavity 101a and symmetrically positioned front and rear, an energy storage component 103 disposed below the installation cavity 101a, and a solar photovoltaic panel 104 disposed above the cabinet 101. The shared power bank host 102 and the solar photovoltaic panel 104 can both adopt existing technologies, and only need to achieve the corresponding functions, so they will not be described in detail.

[0061] The solar panel adjustment unit 200 includes a fixed frame 201 fixedly connected to and positioned below the solar photovoltaic panel 104, a lifting component 202 positioned inside the cabinet 101 and capable of lifting the solar photovoltaic panel 104, and a control component 203 positioned on both sides of the fixed frame 201 and capable of controlling the rotation of the fixed frame 201.

[0062] Furthermore, the energy storage assembly 103 includes a storage cavity 103a located below the mounting cavity 101a and extending through the right surface of the cabinet 101, a battery 103b located on the lower surface of the storage cavity 103a, a control box 103c located on the upper surface of the storage cavity 103a, and a lock door 103d rotatably connected to the storage cavity 103a. The battery 103b and the control box 103c can both adopt existing technologies, such as lead-acid batteries or ternary lithium batteries. As long as the control box 103c can control the on / off of the circuit and protect the circuit within a safe range, it only needs to implement the corresponding functions, so it will not be described in detail.

[0063] Furthermore, the lifting assembly 202 includes a lifting cavity 202a disposed within the cabinet 101 and symmetrically positioned about the left and right of the mounting cavity 101a with an upward opening, a first servo motor 202b disposed at the bottom of the lifting cavity 202a, a first screw 202c disposed within the lifting cavity 202a and mounted on the first servo motor 202b, and a lifting rod 202d disposed within the lifting cavity 202a and slidably connected to and threadedly connected to the first screw 202c.

[0064] Furthermore, the control component 203 includes a second servo motor 203a disposed within the lifting rod 202d and facing the fixed frame 201, a connector 203b disposed on the second servo motor 203a, a ball joint mounting cavity 203c disposed within the connector 203b and opening towards the fixed frame 201, and a ball joint cross shaft 203d disposed within the ball joint mounting cavity 203c and slidably connected thereto.

[0065] Furthermore, the control component 203 also includes a connecting block 203e disposed on the left and right surfaces of the fixed frame 201, and a cross limiting cavity 203f disposed in the connecting block 203e and opening toward the ball head cross shaft 203d and slidably connected.

[0066] Furthermore, the main body 100 also includes a fire-fighting component 105 disposed on the left side of the energy storage component 103, and a solar tracking probe 106. The solar tracking probe 106 can adopt existing technologies, such as photoelectric probes or differential pressure probes, etc., as long as the corresponding functions are realized, so it will not be described in detail.

[0067] Furthermore, the fire-fighting component 105 includes a fire-fighting chamber 105a disposed within the cabinet 101 and extending through the left surface of the cabinet 101, and a fire extinguisher 105b disposed within the fire-fighting chamber 105a.

[0068] Furthermore, the solar panel cleaning unit 300 includes a cleaning chamber 301 disposed above the mounting cavity 101a and opening upward and communicating with the upper end of the lifting cavity 202a, a spray assembly 302 disposed in the cleaning chamber 301 for cleaning the solar photovoltaic panel 104, and a drive assembly 303 disposed in the cleaning chamber 301 for controlling the movement of the spray assembly 302.

[0069] Furthermore, the spray assembly 302 includes a sliding groove 302a disposed on the front and rear surfaces of the cleaning chamber 301, a cleaning beam 302b disposed in the sliding groove 302a and slidably connected thereto, a rubber scraper 302c disposed on the upper surface of the cleaning beam 302b and capable of pressing against the solar photovoltaic panel 104, a uniform distribution cavity 302d disposed in the cleaning beam 302b, spray heads 302e disposed on the left and right sides of the rubber scraper 302c and communicating with the uniform distribution cavity 302d, and a spray head 302e disposed below the cleaning chamber 301 and opening forward. The system includes a wastewater chamber 302f, a wastewater box 302g located inside the wastewater chamber 302f, a clean water chamber 302h located on the left side of the wastewater chamber 302f and opening forward, a clean water box 302i located inside the clean water chamber 302h, a water pump 302j located above the clean water chamber 302h, and a water pump 302j connected to the distribution chamber 302d via a first hose 302k. The water pump 302j is also connected to the clean water box 302i via a second hose 302l.

[0070] Furthermore, the drive assembly 303 includes a third servo motor 303a disposed in the left surface of the sliding groove 302a, and a second screw 303b disposed at the right end of the third servo motor 303a and rotatably connected to the sliding groove 302a. The second screw 303b is threadedly connected to the cleaning beam 302b.

[0071] It should be noted that the servo motor, fire extinguisher 105b, rubber scraper 302c, water pump 302j and third servo motor 303a are all existing technologies, and it is sufficient to implement the corresponding functions, so they will not be described in detail.

[0072] In use, the first servo motor 202b starts and drives the lifting rod 202d to move upward, thereby moving the photovoltaic panel upward. Then, the second servo motor 203a starts and drives the photovoltaic panel to rotate 180 degrees so that the photovoltaic panel faces the sky. When the sun is tilted, the first servo motor 202b on the side away from the sun starts and drives the lifting rod 202d to rise, while the first servo motor 202b on the side closer to the sun starts and drives the lifting rod 202d to fall or remain stationary, so that the lifting rod 202d is higher on the side away from the sun and lower on the side closer to the sun, thereby tilting the photovoltaic panel towards the sun. At the same time, the second servo motor 203a starts and drives the photovoltaic panel to finely adjust the angle so that the photovoltaic panel is at a better angle of light reception. Then, as the sun rises and falls, the first servo motor 202b adjusts the height difference between the lifting rods 202d and the second servo motor 203a adjusts the angle of the photovoltaic panel, thereby adjusting the tilt angle of the photovoltaic panel to adapt to the changing angle of the sun throughout the year.

[0073] At night or in severe weather such as hail, the second servo motor 203a starts to drive the photovoltaic panel to rotate toward the cleaning chamber 301, and then the first servo motor 202b starts to drive the photovoltaic panel to move downward and be put into the cleaning chamber 301, thereby protecting the photovoltaic panel from damage.

[0074] Then, the water pump 302j is started to pump the clean water in the cleaning chamber 301 into the uniform distribution chamber 302d, and then sprays it onto the surface of the solar photovoltaic panel through the spray head 302e to wet the contaminants on the surface of the solar photovoltaic panel. Then, the third servo motor 303a drives the rubber scraper 302c to move and scrape off the wetted stubborn contaminants.

[0075] In summary, the beneficial effects of a shared power bank solar charging mechanism and cleaning device are as follows: It can utilize solar photovoltaic panels to convert solar energy into electrical energy stored in a battery, providing power to the shared power bank host. Simultaneously, the lifting component, control component, and solar tracking probe work together to move and rotate the solar photovoltaic panel up and down to achieve the optimal illumination angle. For example, when the lifting rods in the lifting component are raised and lowered synchronously, the photovoltaic panel moves horizontally up and down; when the lifting rods are not raised and lowered synchronously, the photovoltaic panel moves tilted up and down. The control component can control the photovoltaic panel to rotate 360 ​​degrees in either a horizontal or tilted state, ensuring the solar photovoltaic panel is at the optimal illumination angle and improving its power generation efficiency. Furthermore, at night or in severe weather, it can flip the photovoltaic panel so that the bottom of the fixing frame faces the sky, using the sturdy fixing frame to protect the photovoltaic panel from damage caused by severe weather such as hail, thus extending its service life. Additionally, the included fire extinguisher can prevent equipment fires or fires in the surrounding area, protecting personnel and property safety.

[0076] Clean water from the cleaning chamber is pumped into the uniform distribution chamber d by a water pump. Then, the water is sprayed onto the surface of the solar photovoltaic panel through the spray head e to wet the contaminants on the surface of the solar photovoltaic panel and to initially clean the contaminants that are not firmly attached to the surface. Then, the rubber scraper c is moved by the drive component to scrape off the wetted stubborn contaminants, thereby removing the contaminants from the surface of the solar photovoltaic panel, restoring the photovoltaic panel to its optimal power generation state, and improving the power generation efficiency.

[0077] It is important to note that the constructions and arrangements of this application shown in several different exemplary embodiments are merely illustrative. Although only a few embodiments are described in detail in this disclosure, those who consult this disclosure will readily understand that many modifications are possible (such as variations in the solar charging mechanism, installation arrangement, use of materials, color, orientation, etc.) without substantially departing from the novel teachings and advantages of the subject matter described in this application. For example, an element shown as integrally formed may be composed of multiple parts or elements, the position of the elements may be inverted or otherwise altered, and the nature or number or position of the discrete elements may be changed or altered. Therefore, all such modifications are intended to be included within the scope of this utility model. The order or sequence of any process or method steps may be changed or rearranged according to alternative embodiments. In the claims, any "device plus function" clause is intended to cover the structure performing the function described herein, and not merely structural equivalents but also equivalent structures. Other substitutions, modifications, alterations, and omissions may be made in the design, operation, and arrangement of the exemplary embodiments without departing from the scope of this utility model. Therefore, this invention is not limited to the specific embodiments, but extends to various modifications that still fall within the scope of the appended claims.

[0078] Furthermore, in order to provide a concise description of the exemplary implementation, not all features of the shared power bank solar charging mechanism of the actual implementation may be omitted.

[0079] It should be understood that numerous specific implementation decisions can be made during the development of any practical implementation, such as in any engineering or design project. Such development efforts may be complex and time-consuming, but for those of ordinary skill in the art who benefit from this disclosure, the development effort will be a routine task in design, manufacturing, and production without requiring extensive experimentation.

[0080] It should be noted that the above embodiments are only used to illustrate the technical solution of this utility model and are not intended to limit it. Although this utility model has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solution of this utility model without departing from the spirit and scope of the technical solution of this utility model, and all such modifications or substitutions should be covered within the scope of the claims of this utility model.

Claims

1. A shared power bank solar charging mechanism, characterized in that: include, The main body (100) includes a cabinet (101), an installation cavity (101a) disposed in the cabinet (101) and extending through the front and rear surfaces of the cabinet (101), a shared power bank host (102) disposed in the installation cavity (101a) and symmetrically positioned front and rear, an energy storage component (103) disposed below the installation cavity (101a), and a solar photovoltaic panel (104) disposed above the cabinet (101); The solar panel adjustment unit (200) includes a fixed frame (201) fixedly connected to and positioned below the solar photovoltaic panel (104), a lifting component (202) positioned inside the cabinet (101) and capable of lifting the solar photovoltaic panel (104), and a control component (203) positioned on both sides of the fixed frame (201) and capable of controlling the rotation of the fixed frame (201).

2. The shared power bank solar charging mechanism of claim 1, wherein: The energy storage assembly (103) includes a storage cavity (103a) disposed below the mounting cavity (101a) and penetrating the right surface of the cabinet (101), a battery (103b) disposed on the lower surface of the storage cavity (103a), a control box (103c) disposed on the upper surface of the storage cavity (103a), and a lock door (103d) rotatably connected to the storage cavity (103a).

3. The shared power bank solar charging mechanism of claim 2, wherein: The lifting assembly (202) includes a lifting cavity (202a) disposed within the cabinet (101) and symmetrical about the left and right positions of the mounting cavity (101a) with an upward opening, a first servo motor (202b) disposed at the bottom of the lifting cavity (202a), a first screw (202c) disposed within the lifting cavity (202a) and mounted on the first servo motor (202b), and a lifting rod (202d) disposed within the lifting cavity (202a), slidably connected to, and threadedly connected to the first screw (202c).

4. The shared power bank solar charging mechanism of claim 3, wherein: The control component (203) includes a second servo motor (203a) disposed within the lifting rod (202d) and facing the fixed frame (201), a connector (203b) disposed on the second servo motor (203a), a ball joint mounting cavity (203c) disposed within the connector (203b) and opening towards the fixed frame (201), and a ball joint cross shaft (203d) disposed within the ball joint mounting cavity (203c) and slidably connected.

5. The shared power bank solar charging mechanism of claim 4, wherein: The control component (203) further includes connecting blocks (203e) disposed on the left and right surfaces of the fixed frame (201), and a cross limiting cavity (203f) disposed in the connecting block (203e) and opening toward the ball head cross shaft (203d) and slidably connected.

6. The shared power bank solar charging mechanism of claim 5, wherein: The main body (100) also includes a fire-fighting component (105) disposed on the left side of the energy storage component (103) and a solar tracking probe (106).

7. The shared power bank solar charging mechanism as described in claim 6, characterized in that: The fire-fighting assembly (105) includes a fire-fighting chamber (105a) disposed inside the cabinet (101) and extending through the left surface of the cabinet (101), and a fire extinguisher (105b) disposed inside the fire-fighting chamber (105a).

8. A cleaning apparatus characterized by: Includes the shared power bank solar charging mechanism as described in any one of claims 3 to 7; as well as, The solar panel cleaning unit (300) includes a cleaning chamber (301) disposed above the mounting cavity (101a) and opening upward and communicating with the upper end of the lifting cavity (202a), a spray assembly (302) disposed in the cleaning chamber (301) for cleaning the solar photovoltaic panel (104), and a drive assembly (303) disposed in the cleaning chamber (301) for controlling the movement of the spray assembly (302).

9. The cleaning apparatus of claim 8, wherein: The spray assembly (302) includes a sliding groove (302a) disposed on the front and rear surfaces of the cleaning chamber (301), a cleaning beam (302b) disposed in the sliding groove (302a) and slidably connected, a rubber scraper (302c) disposed on the upper surface of the cleaning beam (302b) and press-fitted to the solar photovoltaic panel (104), a uniform distribution chamber (302d) disposed in the cleaning beam (302b), spray heads (302e) disposed on the left and right sides of the rubber scraper (302c) and communicating with the uniform distribution chamber (302d), and a sewage chamber (302e) disposed below the cleaning chamber (301) and opening forward. 02f), the sewage chamber (302f) is connected to the cleaning chamber (301), a sewage box (302g) is disposed in the sewage chamber (302f), a clear water chamber (302h) is disposed on the left side of the sewage chamber (302f) and opens forward, a clear water box (302i) is disposed in the clear water chamber (302h), a water pump (302j) is disposed above the clear water chamber (302h), and the water pump (302j) is connected to the uniform distribution chamber (302d) through a first hose (302k), and the water pump (302j) is connected to the clear water box (302i) through a second hose (302l).

10. The cleaning apparatus of claim 9, wherein: The drive assembly (303) includes a third servo motor (303a) disposed in the left surface of the sliding groove (302a), and a second screw (303b) disposed at the right end of the third servo motor (303a) and rotatably connected to the sliding groove (302a). The second screw (303b) is threadedly connected to the cleaning beam (302b).