Low-altitude intelligent aviation obstruction beacon
By integrating solar and wind turbines and automatically adjusting the angle of the wind turbines to efficiently utilize natural energy, the problem of traditional obstruction lights being unable to utilize natural energy has been solved, resulting in a low-cost and environmentally friendly aviation obstruction light system.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-30
- Publication Date
- 2026-03-27
AI Technical Summary
Traditional obstruction lights cannot effectively utilize natural renewable energy sources, cannot meet the monitoring and warning needs in complex environments, and do not conform to the trends of environmental protection and energy conservation.
It adopts an integrated solar power generation device and a wind turbine, and automatically adjusts the wind turbine to the optimal windward side through a wind direction detection module, and achieves efficient energy collection and utilization by combining the rotation device.
It reduces reliance on traditional electricity, lowers energy costs, ensures stable operation of obstruction lights in remote or power-unstable areas, aligns with environmental protection and energy-saving development trends, and safeguards aviation safety.
Smart Images

Figure CN224050185U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of aviation obstruction light, specifically to low altitude intelligent aviation obstruction light. BACKGROUND
[0002] The acceleration of urbanization process makes the number of high-rise buildings and high-altitude installations greatly increase, which threatens the safety of low-altitude flight of aircraft, and the traditional obstruction light cannot meet the monitoring and warning requirements in complex environment. With the growth of global air transportation volume and the popularization of unmanned aerial vehicles, higher requirements are put forward for the response efficiency of aviation obstruction light, and intelligentization has become an inevitable development direction.
[0003] In addition, the trend of environmental protection and energy saving promotes the elimination of traditional high-energy-consumption light sources, and the cold light source technology such as LED has become the mainstream due to the advantages of energy saving and long service life. However, the traditional obstruction light is too dependent on traditional power and cannot effectively utilize natural new energy such as solar energy and wind energy, which does not conform to the green development direction. Therefore, we propose a low-altitude intelligent aviation obstruction light. UTILITY MODEL CONTENT
[0004] (I) Technical problem solved
[0005] In view of the deficiencies of the prior art, the utility model provides a low-altitude intelligent aviation obstruction light, which solves the above problems.
[0006] (II) Technical scheme
[0007] In order to achieve the above purpose, the utility model provides the following technical scheme: a low-altitude intelligent aviation obstruction light, comprising a mounting base, a wind turbine, a solar power generation device, an obstruction light body and a rotating device, the mounting base top is provided with a solar power generation device, the solar power generation device top is matched and connected with the mounting base top through an adaptive screw, and the mounting base top center is provided with an obstruction light body, the obstruction light body is fixedly connected with the mounting base top, and the solar power generation device bottom is provided with a wind turbine, the wind turbine is rotatably connected with the mounting base, the mounting base bottom end is internally provided with a rotating device, and the rotating device output shaft is engaged with the bottom of the wind turbine.
[0008] Preferably, the mounting base bottom is a rectangular box structure, and the mounting base is internally provided with a fixing cavity, a group of connecting holes in annular array distribution are formed in the top center of the fixing cavity, a connecting column is arranged on the top of the support block, the connecting column is fixedly connected with the bottom of the obstruction light body, and a matching rod is arranged on the bottom of the support block and matched with the wind turbine.
[0009] Preferably, the solar power generation device is a circular truncated cone in overall outline, and a group of solar panels are arranged in a ring shape on the top inclined edge of the solar power generation device, and a group of connecting holes are arranged in a ring array on the top of the solar power generation device, the connecting holes are connected with the connecting holes through adaptive screws, and a matching cylinder is arranged inside the solar power generation device, the matching cylinder is matched with the support block, and a group of inclined support rods are welded to the outside of the matching cylinder.
[0010] Preferably, the connecting plate is arranged at the middle position of the wind turbine, and the connecting plate is matched with the mounting base, and the side wall of the connecting plate is provided with a power module, the side wall of the connecting plate is provided with a fan blade away from the connecting plate, and the side wall of the connecting plate is provided with a wind direction detection module, and the wind direction detection module and the power module are arranged in an axisymmetric manner.
[0011] Preferably, the connecting plate is arranged at the middle position of the wind turbine, and the connecting plate is matched with the mounting base, and the side wall of the connecting plate is provided with a power module, the side wall of the connecting plate is provided with a fan blade away from the connecting plate, and the side wall of the connecting plate is provided with a wind direction detection module, and the wind direction detection module and the power module are arranged in an axisymmetric manner.
[0012] Preferably, the connecting plate is arranged at the middle position of the wind turbine, and the connecting plate is matched with the mounting base, and the side wall of the connecting plate is provided with a power module, the side wall of the connecting plate is provided with a fan blade away from the connecting plate, and the side wall of the connecting plate is provided with a wind direction detection module, and the wind direction detection module and the power module are arranged in an axisymmetric manner.
[0013] (Three) beneficial effects
[0014] Compared with the prior art, the low-altitude intelligent aviation obstruction light has the following beneficial effects:
[0015] The low-altitude intelligent aviation obstruction light efficiently utilizes natural energy, the obstruction light integrates a solar power generation device and a wind turbine, the truncated cone design of the solar power generation device enables the solar panels to fully absorb sunlight, thereby improving the solar energy conversion efficiency, the wind turbine is automatically adjusted to the best windward surface through the cooperation of the wind direction detection module and the rotating device, thereby improving the wind energy utilization efficiency, the two energy collection methods complement each other, greatly reducing the dependence on traditional electricity and energy costs, and the low-altitude intelligent aviation obstruction light can still work stably in remote areas or areas with unstable power supply, thereby ensuring aviation safety, and meeting the development trend of environmental protection and energy saving, reducing carbon emissions, and contributing to sustainable development. DRAWINGS
[0016] Figure 1 It is a structure schematic view of the low-altitude intelligent aviation obstruction light of the utility model;
[0017] Figure 2 It is a sectional view schematic view of the low-altitude intelligent aviation obstruction light of the utility model;
[0018] Figure 3 It is a sectional view schematic view of the mounting base of the utility model;
[0019] Figure 4 It is a schematic view of the solar power generation device of the utility model;
[0020] Figure 5 It is a sectional view schematic view of the solar power generation device of the utility model;
[0021] Figure 6 It is a schematic view of the wind driven generator of the utility model.
[0022] In the figure: 1, installation base; 2, wind driven generator; 3, solar power generation device; 4, obstruction light body; 5, rotating device; 6, fixed cavity; 7, matching rod; 8, support block; 9, connecting hole; 10, connecting column; 11, solar panel; 12, connecting hole two; 13, matching cylinder; 14, support rod; 15, connecting plate; 16, power module; 17, fan blade; 18, wind direction detection module; 19, matching hole; 20, external gear ring. DETAILED DESCRIPTION
[0023] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the utility model.
[0024] Please refer to Figures 1-6 Low-altitude intelligent aviation obstruction light, including installation base 1, wind driven generator 2, solar power generation device 3, obstruction light body 4 and rotating device 5, installation base 1 top is provided with solar power generation device 3, solar power generation device 3 top is connected with installation base 1 top through adaptive screw, and the center of installation base 1 top is equipped with obstruction light body 4, obstruction light body 4 is fixedly connected with installation base 1 top, and solar power generation device 3 bottom is equipped with wind driven generator 2, and wind driven generator 2 is rotatably connected with installation base 1, and installation base 1 bottom end is provided with rotating device 5, and the output shaft of rotating device 5 is engaged with the bottom of wind driven generator 2 and is driven.
[0025] Further, the bottom of the mounting base 1 is a rectangular box structure, and the inside of the mounting base 1 is provided with a fixing cavity 6, the top center of the fixing cavity 6 is provided with a matching connection with the output shaft of the rotating device 5, the top of the mounting base 1 is provided with a support block 8, a group of connection holes 9 arranged in a ring array is formed in the top side edge of the support block 8, and the top of the support block 8 is provided with a connecting column 10, which is fixedly connected with the bottom of the obstruction light body 4, and the bottom of the support block 8 is provided with a matching rod 7, which is matched and connected with the wind driven generator 2. The mounting base 1 plays a supporting role, ensures the normal operation of the wind driven generator 2, the solar power generation device 3 and the obstruction light body 4, and ensures the stability and safety of the overall structure.
[0026] Further, the overall outline of the solar power generation device 3 is a circular truncated cone type, and a group of solar panels 11 arranged in a ring is arranged on the top inclined edge of the solar power generation device 3, and a group of connection holes 12 arranged in a ring array is formed on the top of the solar power generation device 3, the connection holes 12 are matched and connected with the connection holes 9 through adaptive screws, and the inside of the solar power generation device 3 is provided with a matching cylinder 13, which is matched with the support block 8, and the inside of the solar power generation device 3 is provided with a group of inclined structure support rods 14 welded with the outside of the matching cylinder 13. The circular truncated cone structure of the solar power generation device 3 can ensure the full and effective use of solar energy resources, and improve the efficiency of solar power generation.
[0027] Further, the connecting plate 15 is arranged at the middle position of the wind driven generator 2, and is matched and connected with the mounting base 1, and the side wall of the connecting plate 15 is provided with a power module 16, the side away from the connecting plate 15 of the power module 16 is provided with a fan blade 17, and the side wall of the connecting plate 15 is provided with a wind direction detection module 18, the wind direction detection module 18 and the power module 16 are arranged in axial symmetry, the wind direction detection module 18 detects the surrounding wind direction and transmits the detection data to the internal control system, and the control system feedbacks through the rotating device 5, the rotating device 5 controls the rotation of the wind driven generator 2 through the meshing of the output shaft gear block and the outer gear ring 20, so that the wind driven generator 2 is in the best windward position, improves the wind power generation efficiency, and effectively reduces the dependence on traditional power resources.
[0028] Further, the inside of the connecting plate 15 is provided with a matching hole 19, which is matched and connected with the matching rod 7, and the bottom of the connecting plate 15 is welded with an outer gear ring 20, the matching hole 19 plays a connecting role, and the outer gear ring 20 plays a transmission role.
[0029] Further, the rotating device 5 is fixedly connected with the inside top end of the fixing cavity 6 through adaptive screws, and the top output shaft of the rotating device 5 is welded with a gear block meshed and transmission connected with the outer gear ring 20, and the rotating device 5 provides sufficient power source for the angle adjustment of the wind driven generator 2.
[0030] Structure description:
[0031] Mounting base 1: The mounting base 1 is the basic support structure of the low-altitude intelligent aviation obstruction light. The bottom is a rectangular box structure, and the inside is provided with a fixing cavity 6. The top is used for carrying solar power generation device 3, obstruction light body 4 and other components, which guarantees the stability of the overall structure;
[0032] Wind turbine 2: The wind turbine 2 is located at the bottom of the solar power generation device 3, and the middle is provided with a connecting plate 15. The side wall has a power module 16 and a fan blade 17. Through cooperation with the rotating device 5, the angle can be adjusted according to the wind direction, and the wind energy can be converted into electric energy;
[0033] Solar power generation device 3: The solar power generation device 3 is in the shape of a circular truncated cone, and the top inclined edge is provided with a solar panel 11. The inside has a matching cylinder 13 and a supporting rod 14, which are connected with the supporting block 8 through the connecting hole two 12, can efficiently collect solar energy and convert it into electric energy;
[0034] Obstruction light body 4: The obstruction light body 4 is fixed on the top center of the mounting base 1, and is connected with the supporting block 8 through the connecting column 10 on the supporting block 8. It is used for sending warning signals to ensure the safety of low-altitude flight of aircraft;
[0035] Rotating device 5: The rotating device 5 is installed in the fixing cavity 6 inside the bottom end of the mounting base 1. The output shaft is engaged with the outer gear ring 20 at the bottom of the wind turbine 2 to provide power for the angle adjustment of the wind turbine 2;
[0036] Fixing cavity 6: The fixing cavity 6 is located inside the mounting base 1, and the top center is provided with a connecting port matched with the output shaft of the rotating device 5, which is used for installing the rotating device 5 and providing a fixed and working space for it to ensure the stable operation of the rotating device 5;
[0037] Matching rod 7: The matching rod 7 is arranged at the bottom of the supporting block 8, and is matched and connected with the matching hole 19 on the connecting plate 15 of the wind turbine 2. It plays a role in connecting the supporting block 8 and the wind turbine 2, and guarantees the stable connection of each component;
[0038] Supporting block 8: The supporting block 8 is located at the top of the mounting base 1. The top side has a connecting hole 9, the top is provided with a connecting column 10 to connect the obstruction light body 4, and the bottom is provided with a matching rod 7 to support the obstruction light body 4 and connect other components;
[0039] Connecting hole 9: The connecting hole 9 is arranged in an annular array on the top side of the supporting block 8. It is matched with the connecting hole two 12 at the top of the solar power generation device 3 through the matching screw, so as to realize the stable connection of the supporting block 8 and the solar power generation device 3;
[0040] Connecting column 10: The connecting column 10 is fixed at the top of the supporting block 8, and is connected with the bottom of the obstruction light body 4. It is a connecting structure of the supporting block 8 and the obstruction light body 4, which guarantees the stable installation of the obstruction light body 4.
[0041] Solar panel 11: The solar panel 11 is arranged in a ring shape on the top slant edge of the solar power generation device 3, used to absorb solar energy and convert it into electrical energy, and its design helps to improve the power generation efficiency of the solar power generation device 3;
[0042] Connecting hole two 12: The connecting hole two 12 is arranged in a ring array on the top of the solar power generation device 3, and is matched with the connecting hole 9 of the support block 8 through the adapter screw, so as to realize the reliable connection of the solar power generation device 3 and the support block 8;
[0043] Matching cylinder 13: The matching cylinder 13 is located inside the solar power generation device 3, corresponding to the sleeve joint of the support block 8, enhancing the connection stability of the solar power generation device 3 and the support block 8, and providing support for the internal structure;
[0044] Supporting rod 14: The supporting rod 14 is arranged in an inclined structure, one circle is arranged inside the solar power generation device 3 and welded with the outside of the matching cylinder 13, which plays a role in supporting and reinforcing the matching cylinder 13, and guarantees the structural stability of the solar power generation device 3;
[0045] Connecting plate 15: The connecting plate 15 is located at the middle position of the wind turbine 2, matched with the installation base 1, and the side wall is provided with a power module 16 and a wind direction detection module 18, and is also provided with a matching hole 19 and an outer gear ring 20 for connection and transmission;
[0046] Power module 16: The power module 16 is installed on the side wall of the connecting plate 15, and is connected with the fan blade 17 away from the connecting plate 15, providing power for the rotation of the fan blade 17, and promoting the wind turbine 2 to convert wind energy into electrical energy;
[0047] Fan blade 17: The fan blade 17 is installed on the side away from the connecting plate 15 of the power module 16 and rotates under the drive of the power module 16, which is a key component for the wind turbine 2 to convert wind energy into electrical energy, and its rotation drives the generator to generate electricity;
[0048] Wind direction detection module 18: The wind direction detection module 18 is installed on the side wall of the connecting plate 15, and is distributed correspondingly with the power module 16, used to detect the surrounding wind direction, and transmit the data to the internal control system, to realize the intelligent adjustment of the angle of the wind turbine 2;
[0049] Matching hole 19: The matching hole 19 is opened in the inside of the connecting plate 15, corresponding to the matching rod 7, playing a key role in the process of connecting the support block 8 and the wind turbine 2, and guaranteeing the close connection between the components;
[0050] Outer gear ring 20: The outer gear ring 20 is welded at the bottom of the connecting plate 15, and is engaged with the gear block of the output shaft at the top of the rotating device 5 for transmission, and under the drive of the rotating device 5, the angle adjustment of the wind turbine 2 is realized, and the power generation efficiency is improved.
[0051] Working principle: according to the diagram, the low-altitude intelligent aviation obstacle light is correctly installed, and the low-altitude intelligent aviation obstacle light is stably supported by the installation base 1 to ensure stable operation of each component, the solar power generation device 3 utilizes the circular table type structure, the solar panels 11 distributed in the form of annular on the top bevel fully absorb solar energy, and the solar energy is converted into electric energy and stored up to supply power for the obstacle light body 4, the wind turbine 2 detects the surrounding wind direction in real time during the power generation process, and the detection data is transmitted to the internal control system, the control system analyzes and processes the received data, and feedback is made through the rotating device 5, the rotating device 5 is installed in the fixed cavity 6 at the bottom end of the installation base 1, the gear block welded to the output shaft of the rotating device 5 is engaged with the outer gear ring 20 of the bottom connecting plate 15 of the wind turbine 2, when the control system issues an instruction, the gear block of the rotating device 5 rotates, drives the outer gear ring 20, and makes the wind turbine 2 rotate to the best windward surface, at this time, the power module 16 on the side wall of the middle connecting plate 15 of the wind turbine 2 drives the fan blade 17 to rotate, and converts the wind energy into electric energy, the obstacle light body 4 is fixedly connected with the support block 8 on the top of the installation base 1 through the connecting column 10, the matching rod 7 at the bottom of the support block 8 cooperates with the wind turbine 2, and the stability of the obstacle light body 4 is ensured, when the solar power generation device 3 and the wind turbine 2 generate electric energy, power support is provided for the obstacle light body 4, so that the obstacle light body 4 can flash warning according to the preset mode, in the whole working process, each component cooperates to realize efficient utilization of solar energy and wind energy, and the warning demand for the aircraft is met.
[0052] Although the embodiments of the utility model have been shown and described, it can be understood by those skilled in the art that various changes, modifications, replacements and variations can be made to these embodiments without departing from the principles and spirits of the utility model, the range of the utility model is defined by the appended claims and its equivalents.
Claims
1. A low-altitude intelligent aviation obstacle light, comprising a mounting base (1), a wind power generator (2), a solar power generation device (3), an obstacle light body (4) and a rotating device (5), characterized in that: The top of the mounting base (1) is provided with a solar power generation device (3), the top of the solar power generation device (3) is connected with the top of the mounting base (1) through an adapter screw, and the center of the top of the mounting base (1) is provided with an obstacle light body (4) which is fixedly connected with the top of the mounting base (1), and the bottom of the solar power generation device (3) is provided with a wind driven generator (2) which is rotatably connected with the mounting base (1), and the inside of the bottom end of the mounting base (1) is provided with a rotating device (5), and the output shaft of the rotating device (5) is engaged with the bottom of the wind driven generator (2).
2. The low altitude intelligent aviation obstacle light according to claim 1, characterized in that: The bottom of the mounting base (1) is a rectangular box structure, and the inside of the mounting base (1) is provided with a fixed cavity (6), the top center of the fixed cavity (6) is provided with a connecting hole (9) which is connected with the output shaft of the rotating device (5), the top of the mounting base (1) is provided with a support block (8), the top side of the support block (8) is provided with a group of annularly arranged connecting holes (9), and the top of the support block (8) is provided with a connecting column (10) which is fixedly connected with the bottom of the obstacle light body (4), and the bottom of the support block (8) is provided with a matching rod (7) which is connected with the wind driven generator (2).
3. The low altitude intelligent aviation obstacle light of claim 1, wherein: The overall outline of the solar power generation device (3) is a circular truncated cone, and the top inclined edge of the solar power generation device (3) is provided with a group of solar panels (11) which are annularly distributed, and the top of the solar power generation device (3) is provided with a group of annularly arranged connecting holes (12) which are connected with the connecting holes (9) through adapter screws, and the inside of the solar power generation device (3) is provided with a matching cylinder (13) which is connected with the support block (8), and the inside of the solar power generation device (3) is provided with a group of inclined support rods (14) which are welded with the outside of the matching cylinder (13).
4. The low altitude intelligent aviation obstacle light of claim 2, wherein: The middle position of the wind driven generator (2) is provided with a connecting plate (15) which is connected with the mounting base (1), and the side wall of the connecting plate (15) is provided with a power module (16), and the side of the power module (16) away from the connecting plate (15) is provided with a fan blade (17), and the side wall of the connecting plate (15) is provided with a wind direction detection module (18) which is axially symmetrically distributed with the power module (16).
5. The low altitude intelligent aerodrome light of claim 4, wherein: The inside of the connecting plate (15) is provided with a matching hole (19) which is connected with the matching rod (7), and the bottom of the connecting plate (15) is welded with an outer gear ring (20).
6. The low altitude intelligent aerodrome light of claim 2, wherein: The rotating device (5) is fixedly connected with the inside top end of the fixed cavity (6) through an adapter screw, and the top output shaft of the rotating device (5) is welded with a gear block which is engaged with the outer gear ring (20).