Communication signal tower integrating new energy collection and storage, unmanned aerial vehicle operation and maintenance and electric vehicle charging
By integrating new energy collection and storage, drone operation and maintenance, and electric vehicle charging into a communication signal tower, the problems of unstable power supply, inefficient operation and maintenance, and safety hazards of traditional signal towers have been solved. This has enabled efficient collection and storage of new energy and improved the automation of drone operation and maintenance and the safety of electric vehicle charging.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-03-03
- Publication Date
- 2026-04-14
AI Technical Summary
Traditional signal towers suffer from unstable power supply, inefficient operation and maintenance, and limited functionality; wind turbines have excessively high yaw speeds and pose safety hazards when drones land; and water accumulation at the bottom of cars during charging poses a safety hazard.
Design a communication signal tower that integrates new energy collection and storage, drone operation and maintenance, and electric vehicle charging. It includes a signal tower base, an electric vehicle charging platform, a drone platform, a photovoltaic platform, and a wind power generation device. The windward attitude of the fan blades can be adjusted by telescopic rods and deflection components, the angle of the photovoltaic panels can be adjusted by rotating the photovoltaic base, and a drone landing buffer structure and a drainage trough are set to improve safety.
It has enabled the efficient collection and storage of new energy sources, improved the automation and safety of drone operation and maintenance, ensured the safety and stability of electric vehicle charging, and enhanced the intelligence and multifunctionality of signal towers.
Smart Images

Figure CN121853841A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of new energy collection technology, specifically a communication signal tower that integrates new energy collection and storage, drone operation and maintenance, and electric vehicle charging. Background Technology
[0002] This type of communication tower, integrating renewable energy collection and storage, drone maintenance, and electric vehicle charging, represents a key trend in the evolution of communication infrastructure towards multifunctionality, intelligence, and greenness. It aims to solve problems such as unstable power supply, inefficient operation and maintenance, and limited functionality of traditional signal towers. By integrating wind-solar hybrid power generation and energy storage systems, it achieves energy self-sufficiency and peak shaving; it utilizes drones and digital twin technology for automated inspection and predictive maintenance; and it expands public service capabilities by incorporating fast-charging stations for electric vehicles. Its technological foundation benefits from advancements in 5G IoT, intelligent energy management, and modular structural design, essentially transforming the communication tower into an intelligent node in the urban energy internet. Despite challenges such as high system integration complexity and initial costs, this model provides an integrated and innovative solution for improving network reliability, promoting transportation electrification, and sustainable energy development.
[0003] Drones are easily affected by backdrafts when landing, and wind turbines can deflect too quickly when the wind is strong. Additionally, there are safety hazards when there is water accumulation under a car while it is charging. Summary of the Invention
[0004] To solve the above technical problems, the present invention is implemented through the following technical solution: a communication signal tower integrating new energy collection and storage, drone operation and maintenance and electric vehicle charging, including a signal tower base, an electric vehicle charging platform fixedly connected to the bottom side of the signal tower base, an electric vehicle platform fixedly connected to the side of the signal tower base above the electric vehicle charging platform, a photovoltaic platform fixedly connected to the top side of the signal tower base above the drone platform, and a wind power generation device fixedly connected to the side of the photovoltaic platform; The wind power generation device includes a first telescopic rod, a generator is rotatably connected to the top of the movable end of the first telescopic rod, a rotating fan blade is fixedly connected to the drive shaft of the generator, a deflection component is fixedly connected to the end of the generator away from the rotating fan blade, and the fixed end of the first telescopic rod is fixedly connected to the side of the photovoltaic platform through a bracket.
[0005] Preferably, the deflection assembly includes a second telescopic rod, a rotating seat fixedly connected to the drive shaft of the second telescopic rod, deflection blades rotatably connected to the side of the rotating seat, and an adjusting rod rotatably connected to one end of the adjusting rod on the side of the deflection blades. The end of the adjusting rod away from the deflection blades is rotatably connected to the side of the fixed end of the second telescopic rod. The fixed end of the second telescopic rod is fixedly connected to the side of the generator. The arrangement of multiple sets of first telescopic rods facilitates the adaptation to wind forces from different directions for combined power generation. When the first telescopic rod is activated, the movable end of the first telescopic rod drives the generator to rise and fall. By setting different heights for multiple sets of first telescopic rods, multiple sets of rotating blades are arranged in a fan-shaped adaptation state, thereby avoiding the overlap of the directional projections of the rotating blades to the wind direction, which would reduce the efficiency of power generation. The wind blows the deflection blades... The deflecting fan blades, aligned with the wind direction, drive the generator to rotate along the top of the first telescopic rod. This causes the generator to automatically deflect under the influence of the wind, facilitating wind power generation. The second telescopic rod is then activated, its movable end moving an adjusting rod. This movement causes the deflecting fan blades to deflect along the side of the rotating base, reducing the wind-driven deflection speed. Furthermore, the movement of the rotating base via the second telescopic rod alters the distance between the deflecting fan blades and the generator, further reducing the linear velocity of the deflecting fan blades under wind conditions. This allows for adjustments to the deflection speed under varying wind speeds. The photovoltaic platform is used for photovoltaic power generation, the drone platform serves as a maintenance and charging platform for drones, and the car charging platform provides charging for new energy vehicles.
[0006] Preferably, the photovoltaic platform includes a photovoltaic base, a support plate fixedly connected to the top of the photovoltaic base, a photovoltaic panel fixedly connected to the top of the support plate, and a fixed end of an electric gear fixedly connected to the center of the top of the photovoltaic base. A fixed gear ring meshes with the drive end of the electric gear on its side. The fixed gear ring is sleeved on the side of the signal tower base and fixedly connected to the side of the signal tower base. The photovoltaic base is sleeved on the side of the signal tower base and rotatably connected to the side of the signal tower base. When parking a large drone, the electric gear is activated, and the drive shaft of the electric gear drives the fixed gear ring to move. Under the driving action of the electric gear and the braking action of the fixed gear ring, the electric gear pushes the photovoltaic base to rotate along the side of the signal tower base. The rotating photovoltaic base moves from the top of the drone platform, facilitating the landing and maintenance of ultra-high-altitude drones. The rotation of the photovoltaic base causes the support plate to move, and the movement of the support plate causes the photovoltaic panel to be aligned with sunlight, thus facilitating photovoltaic power generation.
[0007] Preferably, the drone platform includes a drone base, an upper step fixedly connected to the top of the drone base, an upper guardrail fixedly connected to the top of the drone base, a drone power distribution box fixedly connected to the top of the drone base, and a parking platform fixedly connected to the top of the drone base. The upper step is located inside the upper guardrail on one side of the drone power distribution box, and the parking platform is located inside the upper guardrail on one side of the drone power distribution box. The drone base is fitted onto the side of the signal tower base and fixedly connected to the side of the signal tower base. The drone base is located below the photovoltaic base.
[0008] Preferably, the parking platform includes a fixed base, the top of which is fixedly connected to the fixed end of a first spring rod, and the movable end of the first spring rod is fitted with and slidably connected to a sliding platform. The bottom of the sliding platform is fixedly connected to a sunken platform, and the inner wall of the sunken platform has an air outlet. The bottom of the fixed base is fixedly connected to the top of the drone base. The drone base serves as a maintenance platform, with steps for easy movement by personnel. The drone power distribution box serves as a power storage and release device, and the fixed base serves as the base for the drone landing platform. When the drone lands on the top of the sunken platform, its weight directly falls on the top of the sunken platform, causing the sunken platform to descend. The descent of the sunken platform causes the sliding platform to descend. The sliding platform descends elastically under the elastic action of the first spring rod. When the drone descends, the downward airflow generated by the drone is diverted along the air outlet, thereby avoiding the turbulent airflow rebounding onto the drone body and facilitating a stable descent.
[0009] Preferably, the vehicle charging platform includes a vehicle platform, a lower guardrail fixedly connected to the top of the vehicle platform, a lower step fixedly connected to the top of the vehicle platform, a rotating hole at the center of the top of the vehicle platform, a vehicle power distribution box fixedly connected to the top of the vehicle platform, the lower step being located inside the lower guardrail, the vehicle power distribution box being located on one side of the lower step, and the signal tower base being located inside the rotating hole.
[0010] Preferably, the vehicle platform includes a charging base. A guide groove is formed on one side of the top of the charging base, and a drainage groove is formed at the bottom of the inner wall of the guide groove. The charging base is disposed on and fixedly connected to the side of the signal tower base. The bottom of the lower step is fixedly connected to the top of the charging base. The vehicle power distribution box distributes power to the new energy vehicle. The lower step facilitates personnel movement for maintenance operations. The lower guardrail provides external protection. The charging base serves as the main support for the equipment. The guide groove allows the vehicle to be parked in a fixed position for charging in a specific area. The drainage groove facilitates water flow down the inner wall of the drainage groove, thereby drying the area where the vehicle is charging and increasing safety during charging.
[0011] This invention provides a communication signal tower that integrates new energy collection and storage, drone operation and maintenance, and electric vehicle charging. It has the following beneficial effects: 1. This integrated communication signal tower, combining new energy collection and storage, drone operation and maintenance, and electric vehicle charging, is equipped with a first telescopic mast and multiple sets of adjustable-height first telescopic masts, allowing the wind power generation unit to face different wind directions. Upon startup, the telescopic masts raise and lower the generator, causing the fan blades to spread out in a fan shape, reducing wind obstruction and increasing the windward area. When the wind blows the fan blades, they cause the generator to rotate with the wind direction, maintaining a windward posture. Adjusting the second telescopic mast changes the deflection angle of the fan blades and their relative distance to the generator, thus controlling the blade rotation speed to adapt to different wind speed environments. The photovoltaic platform is used for solar power generation, the drone platform supports drone parking and recharging, and the electric vehicle charging platform provides charging services for new energy vehicles.
[0012] 2. This communication signal tower, which integrates new energy collection and storage, drone operation and maintenance, and electric vehicle charging, is equipped with a fixed gear ring. When a large drone needs to be parked, activating the drive device allows the photovoltaic base to rotate along the tower and move away from the drone platform, providing ample landing and maintenance space for the drone. As the photovoltaic base rotates, it adjusts the orientation of the photovoltaic panels on it, allowing them to receive more sunlight and improving photovoltaic power generation efficiency.
[0013] 3. This integrated communication tower, combining new energy collection and storage, drone maintenance, and electric vehicle charging, features an upper staircase. The drone base serves as a maintenance work surface, the power distribution box stores and supplies electricity, and the fixed base forms the foundation for the landing platform. During drone descent, the platform sinks with its weight, and an elastic structure mitigates the impact. As the platform descends, the downward airflow from the drone is diverted through a dedicated outlet, reducing upward turbulence and contributing to a smooth landing.
[0014] 4. This integrated communication signal tower, combining new energy collection and storage, drone maintenance, and electric vehicle charging, is equipped with lower guardrails and steps to facilitate maintenance and ensure safety. The vehicle power distribution box is responsible for distributing charging power, while the charging base provides primary support. Guide channels guide vehicles to designated charging locations, while drainage channels promptly remove accumulated water, keeping the charging area dry and improving the safety of the charging environment. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the communication signal tower structure that integrates new energy collection and storage, drone operation and maintenance, and electric vehicle charging according to the present invention. Figure 2 This is a schematic diagram of the wind power generation device of the present invention; Figure 3 This is a schematic diagram of the deflection component structure of the present invention; Figure 4 This is a schematic diagram of the photovoltaic platform structure of the present invention; Figure 5 This is a schematic diagram of the UAV platform structure of the present invention; Figure 6 This is a schematic diagram of the parking platform structure of the present invention; Figure 7 This is a schematic diagram of the vehicle charging platform structure of the present invention; Figure 8 This is a schematic diagram of the automotive platform structure of the present invention.
[0016] In the diagram: 1. Signal tower base; 2. Car charging platform; 3. Drone platform; 4. Photovoltaic platform; 5. Wind power generation device; 501. First telescopic mast; 502. Generator; 503. Rotating fan blade; 504. Deflection assembly; 5041. Second telescopic mast; 5042. Rotating seat; 5043. Deflecting fan blade; 5044. Adjusting rod; 401. Photovoltaic base; 402. Support plate; 403. Photovoltaic panel; 404. Electric gear; 405. Fixed gear ring; 30 1. Drone base; 302. Upper step; 303. Upper guardrail; 304. Drone power distribution box; 305. Parking platform; 3051. Fixed base; 3052. First spring rod; 3053. Sliding platform; 3054. Lower platform; 3055. Air outlet; 201. Car platform; 202. Lower guardrail; 203. Lower step; 204. Rotating hole; 205. Car power distribution box; 2011. Charging base; 2012. Guide groove; 2013. Drainage groove. Detailed Implementation
[0017] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0018] For the first embodiment, please refer to... Figures 1-3 The present invention provides a technical solution: a communication signal tower integrating new energy collection and storage, drone operation and maintenance and electric vehicle charging, including a signal tower base 1, an electric vehicle charging platform 2 fixedly connected to the bottom side of the signal tower base 1, an electric vehicle platform 3 fixedly connected to the side of the signal tower base 1 above the electric vehicle charging platform 2, a photovoltaic platform 4 fixedly connected to the top side of the signal tower base 1 above the drone platform 3, and a wind power generation device 5 fixedly connected to the side of the photovoltaic platform 4. The wind power generation device 5 includes a first telescopic rod 501, a generator 502 is rotatably connected to the top of the movable end of the first telescopic rod 501, a rotating fan blade 503 is fixedly connected to the drive shaft of the generator 502, a deflection component 504 is fixedly connected to the end of the generator 502 away from the rotating fan blade 503, and the fixed end of the first telescopic rod 501 is fixedly connected to the side of the photovoltaic platform 4 through a bracket.
[0019] The deflection assembly 504 includes a second telescopic rod 5041. The drive shaft of the second telescopic rod 5041 is fixedly connected to a rotating seat 5042. A deflection fan blade 5043 is rotatably connected to the side of the rotating seat 5042. One end of an adjusting rod 5044 is rotatably connected to the side of the deflection fan blade 5043. The end of the adjusting rod 5044 away from the deflection fan blade 5043 is rotatably connected to the side of the fixed end of the second telescopic rod 5041. The fixed end of the second telescopic rod 5041 is fixedly connected to the side of the generator 502.
[0020] The arrangement of multiple sets of first telescopic masts 501 facilitates the combined generation of power by adapting to wind forces from different directions. When the first telescopic masts 501 are activated, their movable ends drive the generator 502 to rise and fall. By setting different heights for the multiple sets of first telescopic masts 501, the multiple sets of rotating fan blades 503 are arranged in a fan-shaped alignment, thus avoiding overlapping projections of the wind-facing directions between the rotating fan blades 503 and reducing power generation efficiency. Wind forces deflect the deflecting fan blades 5043, which, in accordance with the wind direction, drive the generator 502 to rotate along the top of the first telescopic masts 501. This causes the generator 502 to automatically deflect under the influence of the wind, facilitating wind power generation by ensuring the rotating fan blades 503 are aligned with the wind direction. The second telescopic rod 5041, at its movable end, drives the adjusting rod 5044 to move. The movement of the adjusting rod 5044 causes the deflecting fan blade 5043 to deflect along the side of the rotating seat 5042, thereby reducing the speed at which the deflecting fan blade 5043 deflects due to wind. During the movement of the rotating seat 5042 driven by the second telescopic rod 5041, the distance between the deflecting fan blade 5043 and the generator 502 is changed, thereby reducing the linear velocity of the deflecting fan blade 5043 when deflected by wind, thus facilitating the adjustment of the deflection speed under different wind conditions. The photovoltaic platform 4 is used for photovoltaic power generation, the drone platform 3 serves as a platform for drone maintenance and charging, and the car charging platform 2 serves as a platform for charging new energy vehicles.
[0021] Second embodiment, please refer to Figures 1-4 Based on the first embodiment, the present invention provides a technical solution: the photovoltaic platform 4 includes a photovoltaic base 401, a support plate 402 is fixedly connected to the top of the photovoltaic base 401, a photovoltaic panel 403 is fixedly connected to the top of the support plate 402, the fixed end of an electric gear 404 is fixedly connected to the center of the top of the photovoltaic base 401, a fixed gear ring 405 is engaged on the side of the drive end of the electric gear 404, the fixed gear ring 405 is sleeved on the side of the signal tower base 1 and fixedly connected to the side of the signal tower base 1, and the photovoltaic base 401 is sleeved on the side of the signal tower base 1 and rotatably connected to the side of the signal tower base 1.
[0022] When parking a large drone, the electric gear 404 is activated. The drive shaft of the electric gear 404 drives the fixed gear ring 405 to move. Under the driving action of the electric gear 404 and the braking action of the fixed gear ring 405, the photovoltaic base 401 is pushed to rotate along the side of the signal tower base 1. The rotation of the photovoltaic base 401 moves from the top of the drone platform 3, which facilitates the landing and maintenance of the ultra-high drone. The rotation of the photovoltaic base 401 drives the support plate 402 to move. The movement of the support plate 402 causes the photovoltaic panel 403 to be exposed to sunlight, which facilitates photovoltaic power generation.
[0023] Third embodiment, please refer to Figures 1-6 Based on the second embodiment, the present invention provides a technical solution: the drone platform 3 includes a drone base 301, an upper step 302 fixedly connected to the top of the drone base 301, an upper guardrail 303 fixedly connected to the top of the drone base 301, a drone power distribution box 304 fixedly connected to the top of the drone base 301, and a parking platform 305 fixedly connected to the top of the drone base 301. The upper step 302 is located inside the upper guardrail 303 on one side of the drone power distribution box 304, and the parking platform 305 is located inside the upper guardrail 303 on one side of the drone power distribution box 304. The drone base 301 is sleeved on the side of the signal tower base 1 and fixedly connected to the side of the signal tower base 1. The drone base 301 is located below the photovoltaic base 401.
[0024] The parking platform 305 includes a fixed base 3051. The fixed end of a first spring rod 3052 is fixedly connected to the top of the fixed base 3051. A sliding platform 3053 is sleeved and slidably connected to the side of the movable end of the first spring rod 3052. A sinking platform 3054 is fixedly connected to the bottom of the sliding platform 3053. An air outlet 3055 is opened on the inner wall side of the sinking platform 3054. The bottom of the fixed base 3051 is fixedly connected to the top of the drone base 301.
[0025] The drone base 301 serves as a maintenance platform, the upper step 302 facilitates personnel movement, the drone power distribution box 304 serves as a power storage and release device, and the fixed base 3051 serves as the base for the drone landing platform. When the drone lands on the top of the sinking platform 3054, the weight of the drone directly falls on the top of the sinking platform 3054, causing the sinking platform 3054 to descend. The descent of the sinking platform 3054 causes the sliding platform 3053 to descend. When the sliding platform 3053 descends, it descends elastically under the elastic action of the first spring rod 3052. When the drone descends, the downward airflow generated by the drone is diverted and moved along the air outlet 3055, thereby avoiding the turbulent airflow rebounding onto the main body of the drone, facilitating a stable descent of the drone.
[0026] For the fourth embodiment, please refer to [link / reference]. Figures 1-8Based on the third embodiment, the present invention provides a technical solution: the car charging platform 2 includes a car platform 201, a lower guardrail 202 fixedly connected to the top of the car platform 201, a lower step 203 fixedly connected to the top of the car platform 201, a rotating hole 204 opened at the center of the top of the car platform 201, a car power distribution box 205 fixedly connected to the top of the car platform 201, the lower step 203 is located inside the lower guardrail 202, the car power distribution box 205 is located on one side of the lower step 203, and the signal tower base 1 is located inside the rotating hole 204.
[0027] The vehicle platform 201 includes a charging base 2011. A guide groove 2012 is provided on one side of the top of the charging base 2011. A drainage groove 2013 is provided at the bottom of the inner wall of the guide groove 2012. The charging base 2011 is disposed on the side of the signal tower base 1 and is fixedly connected to the side of the signal tower base 1. The bottom of the lower step 203 is fixedly connected to the top of the charging base 2011.
[0028] The vehicle power distribution box 205 distributes power to new energy vehicles. The lower step 203 facilitates personnel movement for maintenance. The lower guardrail 202 provides external protection. The charging base 2011 serves as the main support for the equipment. The guide channel 2012 facilitates charging of specific areas by parking the vehicle in a fixed position. The drainage channel 2013 facilitates water flow down the inner wall of the drainage channel 2013, thereby drying the charging area and increasing charging safety.
[0029] Obviously, the described embodiments are only a part of the embodiments of the present invention, and not all of them. All other embodiments obtained by those skilled in the art and related fields based on the embodiments of the present invention without inventive effort should fall within the scope of protection of the present invention. Structures, devices, and operating methods not specifically described and explained in the present invention, unless otherwise specified or limited, shall be implemented according to conventional means in the art.
Claims
1. A communication signal tower integrating new energy collection and storage, drone operation and maintenance, and electric vehicle charging, characterized in that: The system includes a signal tower base (1), a car charging platform (2) is fixedly connected to the bottom side of the signal tower base (1), a drone platform (3) is fixedly connected to the side of the signal tower base (1) above the car charging platform (2), a photovoltaic platform (4) is fixedly connected to the top side of the signal tower base (1) above the drone platform (3), and a wind power generation device (5) is fixedly connected to the side of the photovoltaic platform (4). The wind power generation device (5) includes a first telescopic rod (501), a generator (502) is rotatably connected to the top of the movable end of the first telescopic rod (501), a rotating fan blade (503) is fixedly connected to the drive shaft of the generator (502), a deflection component (504) is fixedly connected to the end of the generator (502) away from the rotating fan blade (503), and the fixed end of the first telescopic rod (501) is fixedly connected to the side of the photovoltaic platform (4) through a bracket.
2. The communication signal tower integrating new energy collection and storage, drone operation and maintenance, and electric vehicle charging as described in claim 1, characterized in that: The deflection assembly (504) includes a second telescopic rod (5041), the drive shaft of the second telescopic rod (5041) is fixedly connected to a rotating seat (5042), the side of the rotating seat (5042) is rotatably connected to a deflection fan blade (5043), the side of the deflection fan blade (5043) is rotatably connected to one end of an adjusting rod (5044), the end of the adjusting rod (5044) away from the deflection fan blade (5043) is rotatably connected to the side of the fixed end of the second telescopic rod (5041), and the fixed end of the second telescopic rod (5041) is fixedly connected to the side of the generator (502).
3. A communication signal tower integrating new energy collection and storage, drone operation and maintenance, and electric vehicle charging as described in claim 1, characterized in that: The photovoltaic platform (4) includes a photovoltaic base (401), a support plate (402) is fixedly connected to the top of the photovoltaic base (401), a photovoltaic panel (403) is fixedly connected to the top of the support plate (402), the fixed end of an electric gear (404) is fixedly connected to the center of the top of the photovoltaic base (401), a fixed gear ring (405) is meshed on the side of the drive end of the electric gear (404), the fixed gear ring (405) is sleeved on the side of the signal tower base (1) and fixedly connected to the side of the signal tower base (1), and the photovoltaic base (401) is sleeved on the side of the signal tower base (1) and rotatably connected to the side of the signal tower base (1).
4. A communication signal tower integrating new energy collection and storage, drone operation and maintenance, and electric vehicle charging as described in claim 3, characterized in that: The drone platform (3) includes a drone base (301), an upper step (302) is fixedly connected to the top of the drone base (301), an upper guardrail (303) is fixedly connected to the top of the drone base (301), a drone power distribution box (304) is fixedly connected to the top of the drone base (301), and a parking platform (305) is fixedly connected to the top of the drone base (301). The upper step (302) is located inside the upper guardrail (303) on one side of the drone power distribution box (304), and the parking platform (305) is located inside the upper guardrail (303) on one side of the drone power distribution box (304). The drone base (301) is fitted onto the side of the signal tower base (1) and fixedly connected to the side of the signal tower base (1). The drone base (301) is located below the photovoltaic base (401).
5. A communication signal tower integrating new energy collection and storage, drone operation and maintenance, and electric vehicle charging as described in claim 4, characterized in that: The parking platform (305) includes a fixed base (3051), the top of which is fixedly connected to the fixed end of a first spring rod (3052), the movable end of the first spring rod (3052) is sleeved and slidably connected to a sliding platform (3053), the bottom of which is fixedly connected to a sunken platform (3054), the inner wall side of which is provided with an air outlet (3055), and the bottom of the fixed base (3051) is fixedly connected to the top of the drone base (301).
6. A communication signal tower integrating new energy collection and storage, drone operation and maintenance, and electric vehicle charging as described in claim 1, characterized in that: The car charging platform (2) includes a car platform (201), a lower guardrail (202) is fixedly connected to the top of the car platform (201), a lower step (203) is fixedly connected to the top of the car platform (201), a rotating hole (204) is opened at the center of the top of the car platform (201), a car distribution box (205) is fixedly connected to the top of the car platform (201), and the lower step (203) is located inside the lower guardrail (202).
7. A communication signal tower integrating new energy collection and storage, drone operation and maintenance, and electric vehicle charging as described in claim 6, characterized in that: The vehicle electrical distribution box (205) is located on one side of the lower step (203), and the signal tower base (1) is located inside the rotating hole (204).
8. A communication signal tower integrating new energy collection and storage, drone operation and maintenance, and electric vehicle charging as described in claim 6, characterized in that: The vehicle platform (201) includes a charging base (2011), a guide groove (2012) is provided on one side of the top of the charging base (2011), and a drain groove (2013) is provided at the bottom of the inner wall of the guide groove (2012).
9. A communication signal tower integrating new energy collection and storage, drone operation and maintenance, and electric vehicle charging as described in claim 8, characterized in that: The charging base (2011) is disposed on the side of the signal tower base (1) and fixedly connected to the side of the signal tower base (1), and the bottom of the lower step (203) is fixedly connected to the top of the charging base (2011).