Photovoltaic power station inspection equipment
By adopting a design that combines wireless charging and solar panel power supply in photovoltaic power station inspection equipment, the problem of drone damage during charging has been solved. This enables automatic charging and efficient power supply for drones, extending their service life and improving the reliability and safety of the equipment.
Patent Information
- Application Number
- CN202422926530.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-28
- Publication Date
- 2025-11-04
- Estimated Expiration
- 2034-11-28
AI Technical Summary
Existing photovoltaic power station inspection equipment is easily damaged by bumps during charging or battery replacement, which affects the lifespan of drones and results in low efficiency of manual operation.
Design a photovoltaic power station inspection device, including a drone and a control box. The control box is divided into a placement chamber and a storage chamber by a partition. It is powered by a wireless charging base and a solar panel. The drone is charged by a receiving coil in cooperation with the wireless charging base. The orientation of the solar panel is adjusted by a ball joint. The device reliability is improved by combining a locking component and heat dissipation holes.
This enables automatic charging of drones, reducing damage from manual operation, extending drone lifespan, improving energy efficiency, and ensuring equipment reliability and safety.
Smart Images

Figure CN223508526U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of inspection equipment, especially to a photovoltaic power station inspection equipment. BACKGROUND
[0002] The photovoltaic power station refers to a kind of photovoltaic power generation system, which utilizes solar energy, adopts special materials such as crystalline silicon panel and inverter, and is connected to power grid to transmit power to power grid.
[0003] Since the photovoltaic power station is generally located in a remote area and contains a large number of equipment such as photovoltaic panel matrix, the area occupied is large, so the efficiency of manual inspection is low. In the prior art, unmanned aerial vehicles are usually used for inspection. When the existing inspection equipment is used, the operator needs to charge or replace the battery of the unmanned aerial vehicle regularly to ensure its endurance. However, during the charging or battery replacement process, the unmanned aerial vehicle may be accidentally bumped, which affects the service life of the unmanned aerial vehicle. UTILITY MODEL CONTENT
[0004] In order to improve the service life of the unmanned aerial vehicle and reduce the inspection cost, the present application provides a photovoltaic power station inspection equipment.
[0005] The photovoltaic power station inspection equipment provided by the present application adopts the following technical solution:
[0006] The photovoltaic power station inspection equipment comprises an unmanned aerial vehicle and a control box, wherein the control box is a hollow box body with an open top, a partition is arranged in the control box, the control box is divided into a storage cavity and a storage cavity by the partition, the storage cavity is located on the side of the partition facing the opening, a wireless charging base and a storage battery are arranged in the control box, the wireless charging base is located on the side of the partition away from the storage cavity, the storage battery is located in the storage cavity, a receiving coil is arranged on the unmanned aerial vehicle, the wireless charging base and the receiving coil cooperate to charge the unmanned aerial vehicle, a solar panel and a support column for supporting the solar panel are further arranged on the hollow box body, and the storage battery is electrically connected with the solar panel and the wireless charging base.
[0007] By adopting the above technical solution, the receiving coil cooperates with the wireless charging base to charge the unmanned aerial vehicle, ensuring the endurance of the unmanned aerial vehicle. During the charging process, the unmanned aerial vehicle does not need to be manually touched and charged, which reduces the bumps and damages caused by misoperation, and improves the service life of the unmanned aerial vehicle to a certain extent. The solar panel converts solar energy into direct current energy through photoelectric effect, then charges the storage battery through a charging controller, and then supplies power to the wireless base through the storage battery, effectively saving energy.
[0008] Preferably, the control box is slidably connected with a box door for closing the placement cavity and communicating with the outside, the control box is provided with a sliding groove for the sliding of the box door, and the connection between the box door and the control box is arranged in a stepped manner.
[0009] By adopting the above technical scheme, the placement cavity is not easy to have sundries entering, so that the sundries outside do not easily affect the charging and flight of the unmanned aerial vehicle, and the service life of the unmanned aerial vehicle is improved to a certain extent.
[0010] Preferably, limit sliding blocks are arranged on both sides of the sliding direction of the box door, and the control box is provided with limit sliding grooves matched with the limit sliding blocks.
[0011] By adopting the above technical scheme, the limit sliding blocks and the limit sliding grooves are matched to limit the sliding length of the box door, so that the box door is not easy to slide away from the control box, and the reliability of the sliding of the box door is improved.
[0012] Preferably, the locking assembly comprises a locking block arranged on the control box, the control box is provided with a locking sliding groove for the sliding of the locking block, the box door is provided with a first sliding groove and a second sliding groove, the locking sliding groove is communicated with the first sliding groove or the second sliding groove after the sliding of the box door, the control box is provided with a locking elastic member for pushing the locking block to slide towards the box door, the box door is closed when the locking block is embedded in the first sliding groove, and the box door is opened when the locking block is embedded in the second sliding groove.
[0013] The control block is arranged on the locking block, one end of the control block away from the locking block extends to the outside of the control box, the control box is provided with a control sliding groove for the sliding of the control block, and the control sliding groove is communicated with the locking sliding groove.
[0014] By adopting the above technical scheme, when the box door slides to the communication between the locking sliding groove and the first sliding groove, the locking block can slide to be embedded in the first sliding groove under the locking of the locking elastic member, so that the box door can remain in the closed state, when the box door slides to the communication between the locking sliding groove and the second sliding groove, the locking block can slide to be embedded in the second sliding groove under the action of the locking elastic member, so that the box door remains in the open state, the locking block and the first sliding groove or the second sliding groove are matched to lock the sliding of the box door, and the locking block is arranged, so that the locking of the box door sliding by the locking block is facilitated.
[0015] Preferably, a guide arc surface is arranged on one side of the locking block towards the second sliding groove, one end of the box door close to the second sliding groove is provided with a magnetic suction piece, and the control box is provided with an iron piece matched with the magnetic suction piece in a magnetic suction manner.
[0016] By adopting the above technical solution, the setting of the guide arc surface facilitates the opening of the cabinet door without affecting the locking block's locking of the opened cabinet door, making operation convenient. With the cooperation of the magnetic suction plate and the iron part, the tightness of the cabinet door closure is improved, making the cabinet door less likely to slide relative to the control box, thus improving the reliability of the connection between the cabinet door and the outside world.
[0017] Preferably, the solar panel and the support column are connected by a ball joint.
[0018] By adopting the above technical solution and using the ball joint, the orientation of the solar panel can be adjusted periodically according to the position of the sun, effectively improving the efficiency of powering the battery through the solar panel.
[0019] Preferably, the control box has multiple heat dissipation holes that communicate with the battery storage chamber.
[0020] By adopting the above technical solution and setting heat dissipation holes, the battery can be cooled, thus improving the safety of the equipment during use.
[0021] In summary, this application includes at least one of the following beneficial technical effects:
[0022] 1. The receiving coil works with the wireless charging base to charge the drone, ensuring its battery life. During the charging process, there is no need for manual contact with the drone or assistance in the charging operation, reducing the risk of bumps and damage to the drone caused by misoperation, and thus extending the drone's lifespan to some extent.
[0023] 2. By using a ball joint, the orientation of the solar panel can be adjusted periodically according to the position of the sun, effectively improving the efficiency of powering the battery through the solar panel. Attached Figure Description
[0024] Figure 1 This is a schematic diagram of the overall structure of an embodiment of this application.
[0025] Figure 2 This is a partial cross-sectional view of an embodiment of this application.
[0026] Figure 3 This is a schematic diagram of the structure of the control box partition in an embodiment of this application.
[0027] Explanation of reference numerals in the attached drawings: 1. Drone; 11. Camera; 2. Control box; 21. Partition; 211. Support block; 212. Control through hole; 22. Placement cavity; 23. Battery storage cavity; 24. Wireless charging base; 25. Battery; 26. Support column; 261. Solar panel; 27. Heat dissipation through hole; 3. Door; 31. Sliding groove; 32. Limiting slider; 321. Limiting slide groove; 33. First slide groove; 34. Second slide groove; 35. Locking spring; 4. Locking block; 41. Locking slide groove; 42. Control block; 421. Control slide groove; 43. Guide arc surface. Detailed Implementation
[0028] The following is in conjunction with the appendix Figures 1-3 The present invention will be described in further detail below.
[0029] This application discloses a photovoltaic power station inspection device, referring to... Figure 1 and Figure 2 The system includes a drone 1 and a control box 2. The control box 2 is a hollow box with an open top. The control box 2 has a partition 21 inside, which is detachable. The inner wall of the control box 2 has an integrally formed support block 211 for supporting the partition 21. The partition 21 divides the internal space of the control box 2 into a placement cavity 22 and a battery storage cavity 23. The placement cavity 22 is located on the side of the partition 21 facing the opening. The control box 2 has a wireless charging base 24 and a battery 25 inside. The wireless charging base 24 is located on the side of the partition 21 away from the battery storage cavity 23. The wireless charging base 24 can be detachably connected to the partition 21 by bolts. The battery 25 is located in the battery storage cavity 23 and is electrically connected to the wireless charging base 24. The partition 21 can be opened with a control through hole 212 for wiring to pass through. The setting of the control through hole 212 also facilitates the disassembly of the partition 21.
[0030] Reference Figure 2 The drone 1 is equipped with a receiving coil and a camera 11. The receiving coil works with the wireless charging base 24 to charge the drone 1, ensuring the drone 1's battery life. During the charging process, there is no need for manual touching of the drone 1 or assistance in charging the drone 1, reducing the impact and damage to the drone 1 caused by misoperation, and improving the service life of the drone 1 to a certain extent.
[0031] Reference Figure 1 and Figure 2The hollow housing is equipped with solar panels 261 and support columns 26 for supporting the solar panels 261. The battery 25 is also electrically connected to the solar panels 261. In practical applications, the solar panels 261 convert solar energy into direct current through the photoelectric effect, then charge the battery 25 via a charging controller, and finally power the wireless base through the battery 25, effectively saving energy. The solar panels 261 and the support columns 26 are connected by a ball joint. In practical applications, the orientation of the solar panels 261 can be periodically adjusted according to the sun's position, effectively improving the efficiency of powering the battery 25 through the solar panels 261.
[0032] Reference Figure 1 , Figure 2 and Figure 3 The control box 2 has multiple heat dissipation holes 27 that communicate with the battery storage chamber 23. The number of heat dissipation holes 27 depends on the size of the control box 2 itself. The heat dissipation holes 27 are used to dissipate heat from the battery 25, thereby improving the safety of the device during use.
[0033] Reference Figure 1 and Figure 2 The control box 2 is slidably connected to a door 3 for sealing the placement cavity 22 and communicating with the outside. The control box 2 is provided with a sliding groove 31 for the door 3 to slide. The connection between the door 3 and the control box 2 is stepped. The stepped design of the door 3 and the door 3 and the control box 2 makes it difficult for debris to enter the placement cavity 22, so that external debris is less likely to affect the charging and flight of the drone 1, thus improving the service life of the drone 1 to a certain extent.
[0034] Reference Figure 2 and Figure 3 Both sides of the sliding direction of the door 3 are integrally formed with limit sliders 32. The control box 2 is provided with a limit groove 321 that cooperates with the limit sliders 32. The limit sliders 32 and the limit groove 321 cooperate to limit the sliding length of the door 3, making it difficult for the door 3 to slide out of the control box 2, thus improving the reliability of the sliding of the door 3.
[0035] Reference Figure 2 and Figure 3The control box 2 is provided with a locking assembly for locking the sliding of the box door 3. The locking assembly includes a locking block 4 disposed on the control box 2. The control box 2 is provided with a locking groove 41 for the locking block 4 to slide. The locking block 4 slides along the height direction of the control box 2. The box door 3 is provided with a first groove 33 and a second groove 34. After the box door 3 slides, the locking groove 41 communicates with the first groove 33 or the second groove 34. The control box 2 is provided with a locking elastic element for pushing the locking block 4 toward the box door 3. In this embodiment, the locking elastic element is a locking spring 35. The locking spring 35 is located in the locking groove 41. One end of the locking spring 35 is fixed to the inner wall of the locking groove 41, and the other end of the locking spring 35 is fixed to the locking block 4.
[0036] When the door 3 slides to the point where the locking groove 41 connects with the first groove 33, the locking block 4 can slide under the locking action of the locking spring 35 and be embedded in the first groove 33, so that the door 3 can remain closed. When the door 3 slides to the point where the locking groove 41 connects with the second groove 34, the locking block 4 can slide under the action of the locking spring 35 and be embedded in the second groove 34, so that the door 3 remains open.
[0037] Reference Figure 2 and Figure 3 A control block 42 is integrally formed on the locking block 4. One end of the control block 42 extends out of the control box 2 away from the locking block 4. The control box 2 is provided with a control slide groove 421 for the control block 42 to slide. The control slide groove 421 is connected to the locking slide groove 41. By setting the external control block 42, the sliding of the locking block 4 can be controlled, thereby facilitating the release of the locking block 4 from the sliding of the box door 3. If the distance between the control block 42 and the box door 3 is too small during actual operation, making it inconvenient to operate, a control rope can be added to the operating block.
[0038] Reference Figure 3 The locking block 4 has a guide arc surface 43 on the side facing the second slide groove 34. The guide arc surface 43 facilitates the opening of the box door 3, but does not affect the locking block 4's locking of the box door 3 after it is opened. The end of the box door 3 near the second slide groove 34 is provided with a magnetic piece. The magnetic piece can be fixed to the box door 3 by adhesive. The control box 2 is provided with an iron part that magnetically engages with the magnetic piece. In this embodiment, the control box 2 is made of iron material. Therefore, the iron part here refers to the control box 2 itself. The magnetic piece and the iron part magnetically engage, making it difficult for the box door 3 to slide relative to the control box 2, thus improving the reliability of the box door 3 in closing the placement cavity 22 and communicating with the outside world.
[0039] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. A photovoltaic power station inspection device, comprising a drone (1) and a control box (2), characterized in that, The control box (2) is a hollow box with an open top. The control box (2) is equipped with a partition (21), which divides the interior of the control box (2) into a placement cavity (22) and a battery storage cavity (23). The placement cavity (22) is located on the side of the partition (21) facing the opening. The control box (2) is equipped with a wireless charging base (24) and a battery (25). The wireless charging base (24) is located on the side of the partition (21) away from the battery storage cavity (23). The battery (25) is located in the battery storage cavity (23). The drone (1) is equipped with a receiving coil. The wireless charging base (24) works with the receiving coil to charge the drone (1). The hollow box is also equipped with a solar panel (261) and a support column (26) for supporting the solar panel (261). The battery (25) is electrically connected to the solar panel (261) and the wireless charging base (24).
2. The photovoltaic power station inspection equipment according to claim 1, characterized in that, The control box (2) is slidably connected to a door (3) for closing the placement cavity (22) and communicating with the outside. The control box (2) is provided with a sliding groove (31) for the door (3) to slide. The connection between the door (3) and the control box (2) is stepped. The control box (2) is provided with a locking component for locking the door (3) to slide.
3. The photovoltaic power station inspection equipment according to claim 2, characterized in that, Limiting sliders (32) are provided on both sides of the sliding direction of the door (3), and a limiting groove (321) that cooperates with the limiting sliders (32) is provided on the control box (2).
4. The photovoltaic power station inspection equipment according to claim 2, characterized in that, The locking assembly includes a locking block (4) disposed on the control box (2). The control box (2) has a locking groove (41) for the locking block (4) to slide. The door (3) has a first groove (33) and a second groove (34). After the door (3) slides, the locking groove (41) communicates with the first groove (33) or the second groove (34). The control box (2) has a locking elastic element for pushing the locking block (4) to slide toward the door (3). When the locking block (4) is embedded in the first groove (33), the door (3) is closed. When the locking block (4) is embedded in the second groove (34), the door (3) is opened. The locking block (4) is provided with a control block (42). One end of the control block (42) away from the locking block (4) extends to the outside of the control box (2). The control box (2) is provided with a control slide groove (421) for the control block (42) to slide. The control slide groove (421) is connected to the locking slide groove (41).
5. The photovoltaic power station inspection equipment according to claim 4, characterized in that, The locking block (4) has a guide arc surface (43) on the side facing the second slide groove (34), the box door (3) has a magnetic piece at one end near the second slide groove (34), and the control box (2) has an iron piece that magnetically engages with the magnetic piece.
6. The photovoltaic power station inspection equipment according to claim 1, characterized in that, The solar panel (261) is connected to the support column (26) by a ball joint.
7. The photovoltaic power station inspection equipment according to claim 1, characterized in that, The control box (2) has multiple heat dissipation holes (27) that are connected to the battery storage chamber (23).