Drone cross flight contact charging platform
Patent Information
- Application Number
- DE202025103741
- Authority / Receiving Office
- DE · DE
- Patent Type
- Utility models
- Current Assignee / Owner
- Filing Date
- 2025-07-01
- Publication Date
- 2025-09-04
- Estimated Expiration
- 2035-07-31
Smart Images

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Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of UAV aircraft, in particular to a drone cruise contact loading platform. Background of the technology
[0002] With the continuous maturity and development of UAV technology, UAVs are widely used in civilian applications due to their advantages of relatively low cost, no casualty risk, strong survivability, good maneuverability, and ease of use. The main application markets include: aerial photography, aerial photography, forest fire prevention, earthquake investigation, nuclear radiation detection, border patrol, emergency disaster relief, crop yield, farmland information monitoring, pipelines, high-voltage transmission lines, wildlife protection, scientific research experiments, maritime reconnaissance, environmental monitoring, atmospheric sampling, precipitation enhancement, resource exploration, drug control, terrorism, police reconnaissance and patrol, public security monitoring, aerial photography monitoring, communication relay, urban planning, digital city construction, and other fields.
[0003] Drones are fundamentally powered by batteries, and the power they can carry is limited, making it difficult to operate for extended periods. Therefore, drone battery life and charging methods have become key factors. Conventional manual charging and charging station charging methods are not only inefficient but also require significant human involvement, making it difficult to meet the requirements of long-term, multi-task continuous operation. CONTENT OF THIS APPLICATION
[0004] The utility model provides a UAV cruise contact charging platform to solve the problems in the background of the technology.
[0005] In order to achieve the above purpose, the utility model provides the following technical solutions: the front of the cabin body is installed with a cabin door through a hinge, and the upper ends of the cabin body are slidably connected with a battery, a PLC controller, a battery controller and a GPS beacon, and the middle part of the partition is installed with a lifting screw.
[0006] In addition, guide bushings are embedded around the partition wall, and guide rods are embedded around the support platform and slide over the partition wall through the guide rods and guide bushings.
[0007] In addition, the top of the cabin body is an open structure, and the two ends of the top of the cabin body are provided with slides, and the slides are located on the front and rear sides thereof.
[0008] In addition, sliding strips are provided on the inner walls on both sides of the unfolded cover plate, which slide through the sliding strips and the slide to the top of the cabin body.
[0009] In addition, a photovoltaic controller is installed on the inner floor of the cabin body, a solar cell panel is installed on the unfolded cover, and the solar cell panel is electrically connected to the battery via the photovoltaic controller.
[0010] In addition, an inverter is installed on the inner floor of the cabin body, and the battery is electrically connected to the PLC controller via the inverter.
[0011] In addition, blinds are installed on the rear of the cabin body, and glass windows are installed on the left and right sides of the cabin body.
[0012] Compared with the prior art, the utility model provides a UAV cruise contact charging platform that has the following advantageous effects: 1. The drone cruise contact charging platform uses a wireless charging module to realize wireless power transmission between the charging platform and the drone with wireless charging function, avoiding the problem of contact wear of traditional charging methods, and using GPS beacons to display the geographical location and related information of the charging platform to ensure that the drone can accurately find the charging station and complete docking. 2. The drone cruise contact charging platform is equipped with a battery control system that intelligently adjusts the charging strategy according to real-time data such as battery power and health status to prevent battery damage. It can monitor and optimize the charging rate to ensure efficient and safe charging. At the same time, it can simultaneously deploy multiple drones and dynamically adjust the power distribution to ensure maximum energy utilization during charging and avoid energy waste. BRIEF DESCRIPTION OF THE DRAWINGS Fig. 1 is a schematic structural representation of the utility model; Fig. 2 a split representation of the utility model; Fig. 3 is a use representation diagram of the utility model.
[0013] In the picture: 1. Cabin body; 2. Hatch; 3. Unfold the cover; 4. Battery; 5. PLC controller; 6. Battery controller; 7. GPS beacon; 8. Partition; 9. Jackscrew; 10. Bearing; 11. Stepper motor; 12. Carry platform; 13. Wireless charging module; 14, Guide sleeve; 15 Guide rod; 16, Chute; 17. Slider; 18. Photovoltaic controller; 19. Solar panels; 20. Inverter; 21. Blinds; 22. Glass window. DETAILED DESCRIPTION
[0014] Below, the technical solution in the embodiment of the utility model is described clearly and completely in conjunction with the drawings in the embodiment of the utility model. It is obvious that the described embodiments are only a part of the embodiments of the utility model, not all embodiments. Based on the embodiments in the utility model, all other embodiments obtained by a person skilled in the art without creative work fall within the scope of protection of the utility model.
[0015] The utility model discloses a UAV cruise contact loading platform comprising a cabin body 1, the front of the cabin body 1 being installed with a cabin door 2 through a hinge, and the upper ends of the cabin body 1 being slidably connected with a deployment cover 3, and the inner bottom of the cabin body 1 being installed with a battery 4, a PLC controller 5, a battery controller 6, and a GPS beacon 7.The output shaft end of the stepper motor 11 is gear-connected to the nut on the propeller 9 by a belt. The upper end of the propeller 9 is mounted on a support platform 12 through a bearing. The support platform 12 is embedded with a wireless charging module 13. The wireless charging module 13 is used to realize wireless power transmission between the charging platform and the UAV with a wireless charging function, thus avoiding the contact wear problem of the conventional charging method. The GPS beacon 7 is used to display the geographic location and related information of the charging platform, ensuring that the drone can accurately find the charging station and complete docking. This technology can reduce errors and avoid manual intervention.The battery controller 6, the GPS beacons 7, the stepper motor 11 and the wireless charging module 13 are each electrically connected to the PLC controller 5.
[0016] In particular, guide bushings 14 are inserted around the partition 8, and guide rods 15 are inserted around the support platform 12 and slide over the partition 8 through the guide rods 15 and the guide bushings 14.
[0017] In this embodiment, the guide rod 15 and the guide bushing 14 mainly play the role of guiding and positioning to ensure the smooth operation of the support platform 12 during the lifting and lowering operation, reduce wear, and extend the service life.
[0018] Specifically, the upper part of the cabin body 1 is an open structure, and the upper ends of the cabin body 1 are provided with slopes 16, and the slopes 16 are located on the front and rear sides thereof.
[0019] In this embodiment, before charging the drone with a wireless charging function, the cover plate 3 is opened and the positioning platform 12 is raised to a certain height, as shown in Fig. 3 shown.
[0020] In particular, slide rails 17 are provided on the inner walls of both sides of the unfolded cover plate 3 and slide through the slide rails 17 and the slide 16 onto the upper side of the cabin body 1.
[0021] In this embodiment, the sliding opening of the expansion cover 3 is facilitated by the interaction between the sliding strip 17 and the sliding groove 16.
[0022] Specifically, a photovoltaic controller 18 is installed on the inner floor of the cabin body 1, a solar panel 19 is installed on the unfolded cover 3, and the solar panel 19 is electrically connected to the battery 4 via the photovoltaic controller 18.
[0023] In this embodiment, the charging platform is equipped with solar power supply, and the photovoltaic controller 18 is responsible for controlling the energy flow between the solar panel 19 and the battery 4 in order to charge the battery 4.
[0024] Specifically, the inner floor of the cabin body 1 is installed with an inverter 20, and the battery 4 is electrically connected to the PLC controller 5 via the inverter 20.
[0025] In this embodiment, the inverter 20 is a power converter that can convert direct current to alternating current to ensure that electrical energy can be supplied to various AC electrical devices. The PLC controller 5 is a programmable logic controller that plays a crucial role in the field of industrial automation control.
[0026] Specifically, a roller blind 21 is installed on the back of the cabin body 1, and glass windows 22 are installed on the left and right sides of the cabin body 1.
[0027] In this embodiment, the design of the blinds 21 is such that the air can circulate freely in the cabin 1, thereby facilitating heat dissipation of the internal equipment, and the glass window 22 mainly serves to facilitate observation of the conditions in the cabin or to increase permeability.
[0028] During use, before charging the drone with wireless charging function, open the cover 3. The stepper motor 11 drives the propeller 9 (the principle is to convert rotational motion into linear motion to realize lifting and lowering in a limited space) to ensure it can continue the next round of travel missions. In large-scale farmland management, drones are used to monitor crop growth, soil moisture, pests and diseases, and other aspects. The contact charging platform allows the drone to operate efficiently and continuously, avoiding downtime due to battery depletion.In disaster areas, drones are used to quickly assess the situation in the disaster area and assist in search and rescue operations. The contact charging platform allows drones to quickly recharge after completing a round of missions, preparing for the next round of missions, and improving rescue efficiency. In industrial parks or high-risk areas, drones are used for equipment inspection, environmental quality detection, and other tasks. The contact charging platform can ensure the uninterrupted operation of drones and improve the efficiency and safety of industrial inspections. The equipped battery controller 6 (is an electronic device, its main function is to monitor, manage, and protect the battery to ensure its performance and service life. Switches, fuses, etc., while the software part includes control algorithms and data processing, etc.) intelligently adjusts the charging strategy to prevent battery damage and can monitor and optimize the charging rate to ensure efficient and safe charging.
[0029] In summary, the UAV cruise contact charging platform uses the wireless charging module 13 to realize wireless power transmission between the charging platform and the UAV with wireless charging function, thus avoiding the problem of contact wear of traditional charging methods, ensuring that the UAV can accurately find the charging station and complete docking. The equipped battery controller 6 intelligently adjusts the charging strategy according to real-time data such as battery power and health status to prevent battery damage. It can monitor and optimize the charging rate to ensure efficient and safe charging. In this case, the power distribution can be dynamically adjusted to ensure maximum energy utilization during the charging process and avoid energy waste.
[0030] Although embodiments of the utility model have been shown and described, it will be understood by those skilled in the art that various variations, modifications, substitutions and variants can be made to these embodiments without departing from the principle and spirit of the utility model, the scope of the utility model being defined by the appended claims and their equivalents. SUMMARY
[0031] The utility model discloses a drone cruise contact charging platform and relates to the technical field of UAV technology. It includes a cabin body. The front of the cabin body is installed with a cabin door through a hinge, and the upper ends of the cabin body are slidably connected with a cover plate. The interior and bottom of the cabin body are equipped with a battery, a PLC controller, a battery controller, and a GPS beacon. A partition wall is located inside the cabin, and a lifting propeller is installed in the center of the partition wall through a bearing. The drone cruise contact charging platform uses a wireless charging module to realize wireless power transmission between the charging platform and the drone with wireless charging function, thus avoiding the problem of contact wear of traditional charging methods.The charging platform's geographic location and associated information ensure that the drone can accurately locate the charging station and complete docking. This technology can reduce errors and avoid manual intervention.
Claims
[1] Drone cruise contact loading platform, comprising a cabin body (1), characterized bythat the front of the cabin body (1) is installed with a cabin door (2) by a hinge, and the upper ends of the cabin body (1) are slidably connected with a spreader cover (3), and the inner bottom of the cabin body (1) is equipped with a battery (4), a PLC controller (5), a battery controller (6) and a GPS beacon (7).The cabin body (1) is provided with a partition (8), and the middle part of the partition (8) is mounted with a lifting screw (9) through a bearing, and the bottom of the partition (8) is mounted with a bearing (10), and the bearing (10) is mounted with a stepping motor (11), and the end of the output shaft of the stepping motor (11) is gear-connected with a nut on the lifting screw (9) through a belt. The upper end of the lifting screw (9) is installed with a support platform (12) via a bearing, and a wireless charging module (13) is embedded in the support platform (12), and the battery controller (6) and the GPS beacons (7), the stepping motor (11) and the wireless charging module (13) are electrically connected to the PLC controller (5). [2] Drone cruise contact loading platform according to claim 1, characterized bythat guide bushings (14) are embedded around the partition wall (8) and guide rods (15) are embedded around the support platform (12) and slide over the partition wall (8) through the guide rod (15) and the guide bushing (14). [3] Drone cruise contact loading platform according to claim 1, characterized by that the top of the cabin body (1) is an open structure and the two upper ends of the cabin body (1) are provided with slides (16), and the slide (16) is located on the front and rear sides thereof. [4] Drone cruise contact loading platform according to claim 3, characterized by that slide rails (17) are provided on the inner walls on both sides of the covered cover (3) and slide through the slide rails (17) and the slide (16) on the top of the cabin (1). [5] Drone cruise contact loading platform according to claim 1, characterized bythat a photovoltaic control (18) is installed on the inner underside of the cabin (1) and a solar panel (19) is installed on the unfolded cover (3), and the solar panel (19) is electrically connected to the battery (4) via the photovoltaic control (18). [6] Drone cruise contact loading platform according to claim 1, characterized by that an inverter (20) is installed on the inner floor of the cabin (1) and the battery (4) is electrically connected to the PLC control (5) through the inverter (20). [7] Drone cruise contact loading platform according to claim 1, characterized by , that: the back of the cabin body (1) is installed with a roller blind (21) and the left and right sides of the cabin body (1) are installed with glass windows (22).