Unmanned aerial vehicle hangar
By using wind and light energy to convert into electrical energy in the drone hangar for charging, the problem of poor energy saving effect of using AC power in the prior art is solved, and energy saving of the drone hangar is achieved.
Patent Information
- Application Number
- CN202422272698.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-14
- Publication Date
- 2025-07-25
- Estimated Expiration
- 2034-09-14
AI Technical Summary
The existing drone hangar uses alternating current from the State Grid to charge the drone, which has poor energy saving effect.
Power generators are used to receive external wind and/or light energy, convert them into electrical energy and store them in storage devices, used for charging drones, and avoid using alternating current from the national power grid.
By using wind and light energy to charge, electricity consumption is saved and the energy utilization efficiency of drone hangars is improved.
Smart Images

Figure CN223148741U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of unmanned aerial vehicles, and particularly relates to an unmanned aerial vehicle hangar. Background Art
[0002] In recent years, with the rapid development of the Internet and the Internet of Things, unmanned aerial vehicle products have been widely used in many fields of modern society, such as related industries like forestry, power grids, sea areas, surveying and mapping, etc. Unmanned aerial vehicles can complete tasks such as reconnaissance, detection, and inspection. For example, they can be used in scenarios where no one has visited for a long time but where unmanned aerial vehicle operations are required, and can monitor and inspect fixed areas, etc.
[0003] In the prior art, when an unmanned aerial vehicle completes tasks such as reconnaissance, detection, or inspection, an unmanned aerial vehicle hangar is needed to store the unmanned aerial vehicle to ensure that the unmanned aerial vehicle is not damaged by the outside world, and enable the unmanned aerial vehicle to take the hangar as the center and perform operations such as monitoring and inspecting the surrounding area. At the same time, the hangar can realize the full-automatic takeoff, landing, charging, battery replacement, payload, etc. of the unmanned aerial vehicle. However, the existing charging methods of unmanned aerial vehicle hangars basically use alternating current from the national power grid to charge the unmanned aerial vehicle, which does not respond to the national policy of energy conservation and has poor energy-saving effects. Summary of the Utility Model
[0004] Therefore, the technical problem to be solved by the utility model is to overcome the defect that the existing unmanned aerial vehicle hangar uses alternating current from the national power grid to charge the unmanned aerial vehicle, resulting in poor energy-saving effects.
[0005] For this purpose, the utility model provides an unmanned aerial vehicle hangar, including:
[0006] A library body, the library body is adapted to be arranged on the ground, and the library body has an installation platform, and the installation platform is arranged at one end of the library body away from the ground;
[0007] A power storage component, including a power generation component and a power storage component, the power generation component and the power storage component are electrically connected, the power generation component is arranged on the installation platform, the power storage component is arranged in the library body, and under the action of an external force, the power storage component is adapted to be electrically connected to the unmanned aerial vehicle in the library body;
[0008] Wherein, the power generation component is adapted to receive external wind energy and / or light energy to convert the received wind energy and / or light energy into electric energy, and the power generation component is also adapted to transport the converted electric energy into the power storage component for storage to supply power to the unmanned aerial vehicle in the library body for charging.
[0009] Optionally, for the above-mentioned unmanned aerial vehicle hangar, the power generation component is a rose-shaped power generation component; and / or, the power generation component is a photovoltaic panel.
[0010] Optionally, for the above-mentioned drone hangar, when the library body is arranged on the ground, the installation platform is arranged parallel to the horizontal plane.
[0011] Optionally, for the above-mentioned drone hangar, the library body has a storage cavity for storing drones, and the power storage component is arranged in the storage cavity.
[0012] Optionally, for the above-mentioned drone hangar, the power storage assembly further includes a plurality of connecting pieces. One end of any one of the connecting pieces is electrically connected to the power generation component, and the other end is electrically connected to the power storage component to electrically connect the power generation component and the power storage component.
[0013] Optionally, for the above-mentioned drone hangar, when any one of the connecting pieces electrically connects the power generation component and the power storage component, the connecting piece is adapted to be attached to the inner wall of the storage cavity.
[0014] Optionally, for the above-mentioned drone hangar, the power storage assembly further includes a plurality of adapter pieces. One end of any one of the adapter pieces is electrically connected to the power storage component, and the other end is adapted to be electrically connected to the drone in the storage cavity under the action of an external force.
[0015] Optionally, for the above-mentioned drone hangar, it further includes a rotating piece. One end of the rotating piece is rotatably arranged on the installation platform, and the other end is connected to the power generation component, so that under the action of an external force, the rotating piece drives the power generation component to rotate.
[0016] Optionally, for the above-mentioned drone hangar, the rotating piece has a receiving cavity communicated with the storage cavity. When one end of the connecting piece is electrically connected to the power generation component, the connecting piece is arranged in the receiving cavity and extends into the storage cavity through the receiving cavity to be electrically connected to the power storage component.
[0017] Optionally, for the above-mentioned drone hangar, the rotating piece includes a main body and a connecting portion connected to each other. The connecting portion is arranged on the installation platform, the main body is rotatably connected to the connecting portion, and the cross-sectional dimension of the connecting portion is larger than the cross-sectional dimension of the main body.
[0018] The technical solution provided by the present utility model has the following advantages:
[0019] 1. The drone hangar provided by the utility model is equipped with a power storage component on the warehouse body. Among them, the warehouse body can be set on the ground, and an installation platform is provided at one end of the warehouse body away from the ground. The installation platform can be used to install the power storage component. The power storage component specifically includes a power generation component and a power storage component. The power generation component and the power storage component are electrically connected. The power generation component is set on the installation platform, and the power storage component is set inside the warehouse body. Under the action of external force, the power storage component can be electrically connected to the drone inside the warehouse body so that the power storage component can charge the drone. The power generation component can receive the wind energy from the outside world, convert the received wind energy into electrical energy, and at the same time, the power generation component can also transport the converted electrical energy to the power storage component for storage, so that the power storage component has enough electrical energy to charge the drone, and thus it can avoid using the alternating current of the national power grid to charge the drone in the drone hangar, which is beneficial to saving electrical energy. Of course, the power generation component can also receive the light energy from the outside world, convert the received light energy into electrical energy, and at the same time, the power generation component can also transport the converted electrical energy to the power storage component for storage, so that the power storage component has enough electrical energy to charge the drone, which is also beneficial to saving electrical energy. Description of the Drawings
[0020] In order to more clearly illustrate the specific embodiments of the present utility model or the technical solutions in the prior art, the following will briefly introduce the drawings required for use in the description of the specific embodiments or the prior art. Obviously, the drawings in the following description are some embodiments of the present utility model. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.
[0021] Figure 1 It is a schematic structural diagram of the drone hangar provided in the embodiment of the present utility model;
[0022] Description of the reference numerals:
[0023] 1 - Warehouse body; 11 - Installation platform;
[0024] 21 - Power generation component; 22 - Power storage component; 23 - Connecting piece;
[0025] 3 - Rotating piece; 31 - Body; 32 - Connecting part. Detailed Embodiments
[0026] The following will clearly and completely describe the technical solutions of the present utility model in conjunction with the drawings. Obviously, the described embodiments are some, but not all, of the embodiments of the present utility model. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present utility model.
[0027] In the description of the present utility model, it should be noted that the orientation or positional relationship indicated by the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present utility model and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present utility model. In addition, the terms "first" and "second" are only used for descriptive purposes and cannot be construed as indicating or implying relative importance.
[0028] In the description of the present utility model, it should be noted that unless otherwise clearly specified and defined, the terms "installed", "connected", and "connected" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present utility model can be understood according to specific circumstances.
[0029] In addition, the technical features involved in different embodiments of the present utility model described below can be combined with each other as long as they do not conflict with each other.
[0030] Embodiment
[0031] This embodiment provides a drone hangar, as Figure 1 shown, which includes a library body 1 and a power storage component. The library body 1 is adapted to be arranged on the ground, and the library body 1 has an installation platform 11, and the installation platform 11 is arranged at one end of the library body 1 away from the ground; the power storage component includes a power generation member 21 and a power storage member 22, the power generation member 21 and the power storage member 22 are electrically connected, the power generation member 21 is arranged on the installation platform 11, the power storage member 22 is arranged inside the library body 1, and under the action of an external force, the power storage member 22 is adapted to be electrically connected to the drone inside the library body 1; wherein, the power generation member 21 is adapted to receive external wind energy and / or light energy to convert the received wind energy and / or light energy into electric energy, and the power generation member 21 is also adapted to transport the converted electric energy into the power storage member 22 for storage to supply power to the drone inside the library body 1 for charging.
[0032] The drone hangar with the above structure is provided with a power storage component on the library body 1. Among them, the library body 1 can be set on the ground, and an installation platform 11 is provided at one end of the library body 1 away from the ground. The installation platform 11 can be used to install the power storage component. The power storage component specifically includes a power generation component 21 and a power storage component 22. The power storage component 22 is a storage battery in this embodiment. The power generation component 21 and the power storage component 22 are electrically connected. The power generation component 21 is arranged on the installation platform 11, and the power storage component 22 is arranged in the library body 1. Under the action of external force, the power storage component 22 can be electrically connected to the drone in the library body 1 so that the power storage component 22 can charge the drone. The power generation component 21 can receive the external wind energy and convert the received wind energy into electrical energy. At the same time, the power generation component 21 can also transmit the converted electrical energy to the power storage component 22 for storage, so that the power storage component 22 has enough electrical energy to charge the drone, and thus it is possible to avoid using the alternating current of the national power grid to charge the drone in the drone hangar, which is beneficial to saving electrical energy.
[0033] Of course, the power generation component 21 can also receive the external light energy and convert the received light energy into electrical energy. At the same time, the power generation component 21 can also transmit the converted electrical energy to the power storage component 22 for storage, so that the power storage component 22 has enough electrical energy to charge the drone, which is also beneficial to saving electrical energy.
[0034] Specifically, the installation platform 11 can also be a part of the platform extended from one end of the library body 1 away from the ground. The extended part of the platform can be supported by several support rods, so that the power generation component 21 can be installed on the installation platform 11, and the power generation component 21 can convert the external wind energy or light energy into electrical energy.
[0035] The drone hangar provided in this embodiment, as Figure 1 shown, the power generation component 21 is a rose-type power generation component 21; and / or, the power generation component 21 is a photovoltaic panel.
[0036] For the drone hangar with the above structure, by setting the power generation component 21 as a rose-type generator, the power generation component 21 can convert the external wind energy into electrical energy, and by setting the power generation component 21 as a photovoltaic panel, the power generation component 21 can convert the external light energy into electrical energy.
[0037] It should be noted that a rose-type generator and a photovoltaic panel can also be installed on the installation platform 11 at the same time, so that the drone hangar can convert the external wind energy and light energy into electrical energy at the same time.
[0038] The drone hangar provided in this embodiment, as Figure 1 shown, when the library body 1 is set on the ground, the installation platform 11 is arranged parallel to the horizontal plane.
[0039] For the drone hangar with the above structure, when the storage body 1 is set on the ground through the installation platform 11, it is set parallel to the horizontal plane. Thus, when the power generation component 21 is installed on the installation platform 11, the generator will not tilt, which is conducive to improving the installation stability of the power generation component 21.
[0040] The drone hangar provided in this embodiment, as Figure 1 shown, the storage body 1 has a storage cavity for storing drones, and the power storage component 22 is arranged in the storage cavity.
[0041] For the drone hangar with the above structure, through the storage cavity opened on the storage body 1, the storage cavity can store drones, and the power storage component 22 is arranged in the storage cavity. Thus, when the drone is stored in the storage cavity, the power storage component 22 can be electrically connected to the drone and charge the drone in the storage cavity.
[0042] The drone hangar provided in this embodiment, as Figure 1 shown, the power storage assembly further includes a plurality of connecting members 23. One end of any connecting member 23 is electrically connected to the power generation component 21, and the other end is electrically connected to the power storage component 22 to electrically connect the power generation component 21 and the power storage component 22.
[0043] For the drone hangar with the above structure, by providing that the power storage assembly further includes a plurality of connecting members 23, the connecting members 23 are connecting cables in this embodiment. One end of each connecting member 23 is electrically connected to the power generation component 21, and the other end is electrically connected to the power storage component 22. Thus, when the power generation component 21 converts external wind energy and / or light energy into electrical energy, the connecting members 23 can transport the electrical energy converted by the power generation component 21 into the power storage component 22 for storage, thereby realizing the transmission of electrical energy.
[0044] The drone hangar provided in this embodiment, as Figure 1 shown, when any connecting member 23 electrically connects the power generation component 21 and the power storage component 22, the connecting member 23 is adapted to be attached to the inner wall of the storage cavity.
[0045] For the drone hangar with the above structure, by attaching all the connecting members 23 to the inner wall of the storage cavity, when all the connecting members 23 electrically connect the power generation component 21 and the power storage component 22, the connecting members 23 can electrically connect the power generation component 21 and the power storage component 22 along the inner wall of the storage cavity and do not occupy the space in the storage cavity, thereby leaving enough parking space for the drones stored in the storage cavity.
[0046] The drone hangar provided in this embodiment, as Figure 1 shown, the power storage assembly further includes a plurality of adapter members. One end of any adapter member is electrically connected to the power storage component 22, and the other end is adapted to be electrically connected to the drone in the storage cavity under the action of an external force.
[0047] For the drone hangar with the above structure, by providing a power storage component which further includes a number of adapters. In this embodiment, the adapters are charging cables. One end of each adapter is electrically connected to the power storage member 22, and the other end can be electrically connected to the drone stored in the storage cavity under the action of an external force. Thus, when the drone is stored in the storage cavity, the end of the adapter away from the power storage member 22 can be electrically connected to the drone under the action of an external force, and further the power storage member 22 can charge the drone through the adapter.
[0048] The drone hangar provided in this embodiment, as Figure 1 shown, further includes a rotating member 3. One end of the rotating member 3 is rotatably arranged on the mounting platform 11, and the other end is connected to the power generation member 21, so that under the action of an external force, the rotating member 3 drives the power generation member 21 to rotate.
[0049] For the drone hangar with the above structure, through the rotating member 3 provided between the power generation member 21 and the mounting platform 11. In this embodiment, the rotating member 3 is a rotating rod. One end of the rotating member 3 is rotatably arranged on the mounting platform 11, and the other end is connected to the power generation member 21. Thus, under the action of an external force, the rotating member 3 can drive the power generation member 21 to rotate relative to the mounting platform 11. Further, when the external wind direction changes, the rotating member 3 can drive the power generation member 21 to face the wind direction, so that the power generation member 21 can convert more wind energy into electrical energy, which is beneficial to improving the electrical energy conversion efficiency of the power generation member 21.
[0050] The drone hangar provided in this embodiment, as Figure 1 shown, the rotating member 3 has a receiving cavity communicated with the storage cavity. When one end of the connecting member 23 is electrically connected to the power generation member 21, the connecting member 23 is arranged in the receiving cavity and extends into the storage cavity through the receiving cavity to be electrically connected to the power storage member 22.
[0051] For the drone hangar with the above structure, by providing that the rotating member 3 has a receiving cavity communicated with the storage cavity. When one end of the connecting member 23 needs to be electrically connected to the power generation member 21, one end of the connecting member 23 can extend into the receiving cavity to be electrically connected to the power generation member 21, and the other end of the connecting member 23 can pass through the receiving cavity and the storage cavity to be electrically connected to the power storage member 22. Thus, it is avoided that the connecting member 23 is directly electrically connected to the power generation member 21 in the outside world, and when the rotating member 3 drives the power generation member 21 to rotate, it can be avoided that the connecting member 23 is wound around the power generation member 21, resulting in the breakage of the connecting member 23. By arranging the connecting member 23 in the receiving cavity, when the rotating member 3 drives the power generation member 21 to rotate, the connecting member 23 can rotate in the receiving cavity and will not be wound around the power generation member 21.
[0052] The drone hangar provided in this embodiment, as Figure 1As shown, the rotating member 3 includes a main body 31 and a connecting portion 32 which are connected to each other. The connecting portion 32 is arranged on the mounting platform 11. The main body 31 is rotatably connected to the connecting portion 32, and the cross-sectional dimension of the connecting portion 32 is larger than that of the main body 31.
[0053] For the drone hangar with the above structure, by setting that the rotating member 3 includes the main body 31 and the connecting portion 32, and the connecting portion 32 is a connecting block in this embodiment. Among them, the connecting portion 32 is arranged on the mounting platform 11, and the main body 31 is rotatably connected to the connecting portion 32 to realize the function that the rotating member 3 can rotate relative to the mounting platform 11. In addition, the cross-sectional dimension of the connecting portion 32 is larger than that of the main body 31. Thus, when the main body 31 is rotatably arranged on the mounting platform 11 through the connecting portion 32, the main body 31 can increase the connection area with the mounting platform 11 through the connecting portion 32, thereby improving the installation stability of the rotating member 3.
[0054] For the drone hangar provided by the present utility model, through the power storage component arranged on the storage body 1. Among them, the storage body 1 can be arranged on the ground, and a mounting platform 11 is arranged at one end of the storage body 1 away from the ground. The mounting platform 11 can be used to mount the power storage component. The power storage component specifically includes a power generation member 21 and a power storage member 22. The power generation member 21 and the power storage member 22 are electrically connected. The power generation member 21 is arranged on the mounting platform 11, and the power storage member 22 is arranged in the storage body 1. And under the action of an external force, the power storage member 22 can be electrically connected to the drone in the storage body 1 so that the power storage member 22 can charge the drone. The power generation member 21 can receive the wind energy from the outside and convert the received wind energy into electric energy. At the same time, the power generation member 21 can also transport the converted electric energy into the power storage member 22 for storage, so that the power storage member 22 has enough electric energy to charge the drone, thereby avoiding using the alternating current of the national power grid to charge the drone in the drone hangar, which is beneficial to saving electric energy. Of course, the power generation member 21 can also receive the light energy from the outside and convert the received light energy into electric energy. At the same time, the power generation member 21 can also transport the converted electric energy into the power storage member 22 for storage, so that the power storage member 22 has enough electric energy to charge the drone, which is also beneficial to saving electric energy.
[0055] Obviously, the above embodiments are only examples clearly described and not limitations on the implementation manners. For those of ordinary skill in the art, other different forms of changes or variations can be made on the basis of the above description. It is not necessary and impossible to enumerate all the implementation manners here. And the obvious changes or variations derived therefrom are still within the protection scope of the creative utility model.
Claims
1. An unmanned aerial vehicle hangar, characterized in that, Comprising: A library body (1), the library body (1) being adapted to be disposed on the ground, and the library body (1) having a mounting platform (11), the mounting platform (11) being disposed at one end of the library body (1) away from the ground; A power storage assembly, including a power generation member (21) and a power storage member (22), the power generation member (21) and the power storage member (22) being electrically connected, the power generation member (21) being disposed on the mounting platform (11), the power storage member (22) being disposed within the library body (1), and under the action of an external force, the power storage member (22) being adapted to be electrically connected to a drone within the library body (1); Wherein, the power generation member (21) is adapted to receive external wind energy and / or light energy to convert the received wind energy and / or light energy into electrical energy, and the power generation member (21) is further adapted to deliver the converted electrical energy into the power storage member (22) for storage to charge the drone within the library body (1).
2. The drone hangar according to claim 1, wherein The power generation member (21) is a rose-shaped power generation member (21); and / or, the power generation member (21) is a photovoltaic panel.
3. The drone hangar according to claim 2, wherein, When the library body (1) is disposed on the ground, the mounting platform (11) is disposed parallel to the horizontal plane.
4. The drone hangar according to claim 3, characterized in that, The library body (1) has a storage cavity for storing the drone, and the power storage member (22) is disposed within the storage cavity.
5. The drone hangar according to claim 4, characterized in that, The power storage assembly further includes a plurality of connecting members (23), one end of any one of the connecting members (23) being electrically connected to the power generation member (21), and the other end being electrically connected to the power storage member (22) to electrically connect the power generation member (21) and the power storage member (22).
6. The drone hangar according to claim 5, characterized in that, When any one of the connecting members (23) electrically connects the power generation member (21) and the power storage member (22), the connecting member (23) is adapted to adhere to the inner wall of the storage cavity.
7. The drone hangar according to claim 6, wherein, The power storage assembly further includes a plurality of adapter members, one end of any one of the adapter members being electrically connected to the power storage member (22), and the other end being adapted to be electrically connected to the drone within the storage cavity under the action of an external force.
8. The drone hangar according to claim 7, wherein, It further includes a rotating member (3), one end of the rotating member (3) being rotatably disposed on the mounting platform (11), and the other end being connected to the power generation member (21) so that under the action of an external force, the rotating member (3) drives the power generation member (21) to rotate.
9. The drone hangar according to claim 8, wherein, The rotating member (3) has a receiving cavity communicated with the storage cavity. When one end of the connecting member (23) is electrically connected to the power generation member (21), the connecting member (23) is disposed within the receiving cavity and extends into the storage cavity through the receiving cavity to be electrically connected to the power storage member (22).
10. The drone hangar according to claim 9, wherein, The rotating member (3) includes a main body (31) and a connecting portion (32) connected to each other, the connecting portion (32) being disposed on the mounting platform (11), the main body (31) being rotatably connected to the connecting portion (32), and the cross-sectional dimension of the connecting portion (32) being larger than the cross-sectional dimension of the main body (31).