Splicing type unmanned aerial vehicle parking apron

By designing a modular spliced ​​drone apron, integrating solar photovoltaic panels, ring light strips and environmental detection modules, the existing aprons have solved the shortcomings in energy, positioning, weather resistance and maintenance, and achieved energy self-sufficiency, enhanced positioning capabilities and high weather resistance design, suitable for diversified environments.

CN222863013UActive Publication Date: 2025-05-13GUANGDONG CHENGJIN TECH CO LTD
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Patent Information

Application Number
CN202421767613.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-25
Publication Date
2025-05-13
Estimated Expiration
2034-07-25

AI Technical Summary

Technical Problem

The existing UAV aprons have shortcomings in energy supply, positioning visibility, weather resistance, maintenance and upgrades, and environmental adaptability, especially in remote areas and inclement weather conditions.

Method used

A spliced ​​drone apron was designed, using a modular support frame and a translucent material panel, integrating solar photovoltaic panels, ring and surround light strips, GPS positioning modules, environmental detection modules and 5G remote information transmission capabilities.

Benefits of technology

It achieves energy self-sufficiency, enhanced positioning and visibility, high weather resistance design, easy maintenance and upgrade, and strong environmental adaptability. It is suitable for diverse application occasions, improving the safe take-off and landing and operational efficiency of drones.

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Abstract

The utility model relates to the technical field of parking aprons, and discloses a splicing type unmanned aerial vehicle parking apron which comprises a splicing type supporting frame, the supporting frame comprises a center frame, two edge frames and four arc-shaped frames, and the center frame, the two edge frames and the four arc-shaped frames are detachably connected. Spliced panels are laid on the central frame, the two edge frames and the four arc-shaped frames. According to the splicing type unmanned aerial vehicle parking apron, solar energy can be utilized for self-generation through the solar photovoltaic panel, electric energy is provided for the lamp strip and the monitoring module, the energy self-sufficient capacity is improved, and the splicing type unmanned aerial vehicle parking apron is particularly suitable for being used in areas without power source coverage.
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Description

Technical Field

[0001] The utility model relates to the technical field of helipads, in particular to a spliced ​​unmanned aerial vehicle helipad. Background Art

[0002] With the rapid development of drone technology, helipads have become important facilities for drone takeoff and landing, charging and data transmission. However, the existing drone helipad technology has some shortcomings:

[0003] 1. Energy supply issues: Many helipads lack the ability to be self-sufficient in energy and rely on external power supplies, which limits their application in remote areas or areas with inconvenient electricity supply.

[0004] 2. Visibility and positioning capabilities: In low-light or bad weather conditions, the positioning and identification capabilities of drones are limited, increasing the difficulty and risk of landing.

[0005] 3. Weather resistance and protection: The apron needs to withstand various weather conditions, but existing designs often lack protection from water and dust, heat and cold.

[0006] 4. Maintenance and Upgrades: Maintenance and upgrades of traditional aprons may involve complex physical interventions, leading to increased costs and operational inconveniences.

[0007] 5. Environmental adaptability: Different environments have different requirements for aprons, and existing designs often lack flexibility to adapt to changing needs.

[0008] To this end, the present invention proposes a spliced ​​UAV helipad. Utility Model Content

[0009] In view of the above-mentioned deficiencies in the prior art, the utility model provides a spliced ​​UAV helipad to solve the problems of energy and positioning.

[0010] The utility model provides the following technical solution: a spliced ​​UAV landing pad, comprising a spliced ​​support frame, the support frame comprising a central frame, two edge frames and four arc frames, and the central frame, the two edge frames and the four arc frames are detachably connected, and the central frame, the two edge frames and the four arc frames are paved with spliced ​​panels;

[0011] The spliced ​​panel is made of a light-transmitting material, a ring light belt is provided at the edge of the support frame, a solar photovoltaic panel is installed on the central frame, and a surrounding light belt is installed on the central frame at the edge of the solar photovoltaic panel;

[0012] The central frame is equipped with a battery, a temperature control module, an environment detection module, a solar controller and a monitoring module;

[0013] The solar photovoltaic panel is electrically connected to the solar controller, and the solar controller is electrically connected to the battery, the electric energy of the solar photovoltaic panel is stored in the battery, and the battery is electrically connected to the monitoring module and the environmental detection module respectively, the environmental detection module collects data from the environmental sensor on the support frame, and the monitoring module monitors the operating status of the battery in real time, and the monitoring module and the environmental detection module perform remote information transmission through the 5G module;

[0014] A battery-powered GPS positioning module and a cooling fan are installed in the central frame, and the battery is connected to the cooling fan through a temperature control module to control the cooling fan operation mode;

[0015] Both the annular light strip and the surround light strip use LED light strips, and the LED light strips are electrically connected to the solar controller through a timing switch, so that the solar controller distributes the battery to the LED light strip, and the support frame is provided with an external power supply interface for charging and a control switch for the device.

[0016] Preferably, a groove for installing the annular light strip is provided on the edge of the support frame.

[0017] Preferably, an anemometer for measuring wind speed is installed on the support frame.

[0018] Preferably, the support frame 1 is welded from stainless steel material.

[0019] Compared with the prior art, the utility model has the following beneficial effects:

[0020] 1. Energy self-sufficiency: Through solar photovoltaic panels, the apron can use solar energy to generate electricity for the light strips and monitoring modules, improving energy self-sufficiency, which is particularly suitable for use in areas without power coverage;

[0021] 2. Enhanced positioning and visibility: Combined with luminous light strips and colored translucent panels, it can ensure accurate positioning and safe landing of the drone even at night or in poor visibility conditions;

[0022] 3. High weather resistance design: The use of stainless steel pipes and acrylic plate materials, as well as back ventilation design, ensures the structural strength and weather resistance of the apron, while effectively dissipating heat to protect electronic components.

[0023] 4. Easy to maintain and upgrade: The modular design makes the apron easier to maintain and upgrade; each module can be replaced or upgraded separately, reducing long-term operating costs;

[0024] 5. Strong environmental adaptability: The shape and size of the solar panels can be customized according to different environmental requirements, and the brightness and color of the light strips can be adjusted to meet a variety of application scenarios;

[0025] 6. Improved safety: The integrated anemometer can monitor wind speed in real time, ensuring that the drone takes off and lands under safe climatic conditions, avoiding losses caused by bad weather. BRIEF DESCRIPTION OF THE DRAWINGS

[0026] Figure 1 It is a schematic diagram of the structure of the utility model;

[0027] Figure 2 It is a structural schematic diagram of the support frame of the utility model.

[0028] In the figure: 1. Support frame; 11. Center frame; 12. Edge frame; 13. Arc frame; 2. Panel; 3. Ring light strip; 4. Solar photovoltaic panel; 5. Surround light strip; 6. Battery; 7. Temperature control module; 8. Environmental detection module; 9. Solar controller; 10. Monitoring module. DETAILED DESCRIPTION

[0029] In order to make the purpose, technical solution and advantages of the embodiments of the present disclosure clearer, the technical solution of the embodiments of the present disclosure will be clearly and completely described below in conjunction with the drawings of the embodiments of the present disclosure. In order to keep the following description of the embodiments of the present disclosure clear and concise, the present disclosure omits detailed descriptions of known functions and known components to avoid unnecessary confusion of the concepts of the present invention.

[0030] See also Figure 1-2 A spliced ​​UAV helipad includes a spliced ​​support frame 1, wherein the support frame 1 includes a central frame 11, two edge frames 12 and four arc frames 13, and the central frame 11, the two edge frames 12 and the four arc frames 13 are detachably connected, and a spliced ​​panel 2 is laid on the central frame 11, the two edge frames 12 and the four arc frames 13; the modular design makes the helipad easier to maintain and upgrade; each module can be replaced or upgraded separately, reducing long-term operating costs.

[0031] The edge of the support frame 1 is provided with an annular light belt 3, a solar photovoltaic panel 4 is installed on the central frame 11, and a surrounding light belt 5 is installed on the central frame 11 at the edge of the solar photovoltaic panel 4. The brightness and color of the annular light belt 3 and the surrounding light belt 5 can be adjusted to meet various application occasions;

[0032] The central frame 11 is equipped with a battery 6, a temperature control module 7, an environment detection module 8, a solar controller 9 and a monitoring module 10;

[0033] The solar photovoltaic panel 4 is electrically connected to the solar controller 9, and the solar controller 9 is electrically connected to the battery 6, so that the electric energy of the solar photovoltaic panel 4 is stored in the battery 6, and the battery 6 is electrically connected to the monitoring module 10 and the environmental detection module 8 respectively, and the data on the environmental sensor on the support frame 1 is collected through the environmental detection module 8, and the monitoring module 10 monitors the operating status of the battery 6 in real time, and the monitoring module 10 and the environmental detection module 8 transmit information remotely through the 5G module.

[0034] A GPS positioning module and a cooling fan powered by a battery 6 are installed in the central frame 11, and the battery 6 is connected to the cooling fan through a temperature control module 7 to control the operation mode of the cooling fan.

[0035] The annular light strip 3 and the surrounding light strip 5 both use LED light strips, and the LED light strips are electrically connected to the solar controller 9 through a timing switch, so that the solar controller 9 distributes the battery 6 to the LED light strip, and the support frame 1 is provided with an external power supply interface for charging and a control switch for the device.

[0036] The edge of the support frame 1 is provided with a groove for installing the annular light strip 3 .

[0037] The support frame 1 is equipped with an anemometer for measuring wind speed. The integrated anemometer can monitor the wind speed in real time to ensure that the UAV takes off and lands under safe climatic conditions and avoid losses caused by bad weather.

[0038] The support frame 1 is welded with stainless steel material, and the spliced ​​panel 2 is made of a light-transmitting material, such as an acrylic plate, and has a back ventilation design, which ensures the structural strength and weather resistance of the apron, while effectively dissipating heat and protecting electronic components.

[0039] The above embodiments are only exemplary embodiments of the present invention and are not intended to limit the present invention. The protection scope of the present invention is defined by the claims. Those skilled in the art may make various modifications or equivalent substitutions to the present invention within the essence and protection scope of the present invention, and such modifications or equivalent substitutions shall also be deemed to fall within the protection scope of the present invention.

Claims

1. A spliced ​​UAV parking apron, characterized by: The invention comprises a spliced ​​support frame (1), wherein the support frame (1) comprises a central frame (11), two edge frames (12) and four arc-shaped frames (13), and the central frame (11), the two edge frames (12) and the four arc-shaped frames (13) are detachably connected to each other, and the central frame (11), the two edge frames (12) and the four arc-shaped frames (13) are provided with a spliced ​​panel (2); The spliced ​​panel (2) is made of a light-transmitting material, an annular light strip (3) is provided on the edge of the support frame (1), a solar photovoltaic panel (4) is installed on the central frame (11), and a surrounding light strip (5) is installed on the central frame (11) at the edge of the solar photovoltaic panel (4); The central frame (11) is equipped with a storage battery (6), a temperature control module (7), an environment detection module (8), a solar energy controller (9) and a monitoring module (10); The solar photovoltaic panel (4) is electrically connected to a solar controller (9), and the solar controller (9) is electrically connected to a storage battery (6), and the electric energy of the solar photovoltaic panel (4) is stored in the storage battery (6), and the storage battery (6) is electrically connected to a monitoring module (10) and an environmental detection module (8) respectively, and the environmental detection module (8) collects data from an environmental sensor on the support frame (1), and the monitoring module (10) monitors the operating state of the storage battery (6) in real time, and the monitoring module (10) and the environmental detection module (8) perform remote information transmission via a 5G module; A GPS positioning module and a cooling fan powered by a battery (6) are installed in the central frame (11), and the battery (6) is connected to the cooling fan through a temperature control module (7) to control the operation mode of the cooling fan; The annular light strip (3) and the surrounding light strip (5) both adopt LED light strips, and the LED light strips are electrically connected to a solar controller (9) via a timing switch, so that the solar controller (9) distributes the storage battery (6) to the LED light strips, and an external power supply interface for charging and a control switch of the device are provided on the support frame (1).

2. The spliced ​​UAV parking apron according to claim 1, characterized in that: The edge of the support frame (1) is provided with a groove for installing the annular light strip (3).

3. The spliced ​​UAV parking apron according to claim 1, characterized in that: An anemometer for measuring wind speed is installed on the support frame (1).

4. The spliced ​​UAV parking apron according to claim 1, characterized in that: The support frame (1) is made of stainless steel by welding.