The present invention relates to an aerial vehicle.
In recent years, an aerial vehicle such as a drone or an unmanned aerial vehicle (UAV) (hereinafter collectively referred to as “aerial vehicle”) has spread through the market. For example, a multicopter-type having a plurality of rotor blades can be mentioned (for example, see Patent Literature 1).
In the aerial vehicle of Patent Literature 1, the arm and the rotor occupy most of the dimensions in a horizontal direction of the airframe, which is a factor of lowering the space efficiency during storage.
Therefore, it is an object of the present invention to provide an aerial vehicle capable of efficiently reducing the horizontal dimensions of the airframe.
According to the present invention, there is provided an aerial vehicle comprising: two first frames arranged in a second direction intersecting a first direction, with the first direction being longitudinal, two second frames arranged in the first direction by overlapping the two first frames, with the second direction being longitudinal, first rotor blades mounted to both ends of the first frame, and second rotor blades mounted to both ends of the second frame, wherein the second frame is provided with a hinge part capable of folding the second frame at a midway thereof.
According to the present invention, an aerial vehicle that can efficiently reduce the horizontal dimensions of the airframe can be provided.
The contents of the embodiment of the present invention will be listed and described. An aerial vehicle according to an embodiment of the present invention has the following configuration.
An aerial vehicle comprising:
The aerial vehicle according to Item 1,
The aerial vehicle as in Item 1 or 2,
Hereinafter, a flight vehicle according to the embodiments of the present invention will be described with reference to the accompanying drawings.
As shown in
The rotary blade 2 receives an output from the motor 3 and rotates. The rotation of the rotor blade 2 generates a propulsive force for taking off the aerial vehicle 1 from the departure point, moving it horizontally, and landing it at the destination. Further, the rotary blade 2 can rotate to the right direction, stop, and rotate to the left direction.
The rotary blade 2 of the present invention has an elongated blade shape. Any number of blades (rotors) (e.g., 1, 2, 3, 4, or more blades) may be used. Further, the shape of the blade can be any shape such as a flat shape, a curved shape, a twisted shape, a tapered shape, or a combination thereof. Further, the shape of the blade can be changed (for example, stretched, folded, bent, etc.). The blades may be symmetrical (having the same upper and lower surfaces) or asymmetric (having different shaped upper and lower surfaces). The blades can be formed into a geometric shape suitable for generating dynamic aerodynamic forces (e.g., lift, thrust) as an air wheel, wing, or blade when moving in the air. The geometric shape of the blades can be appropriately selected to optimize the dynamic air characteristics of the blades, such as increasing lift and thrust and reducing drag.
The motor 3 allows the rotation of the rotary blade 2. For example, the drive unit can include an electric motor, an engine, or the like. The blade can be driven by a motor and rotate around the axis of rotation of the motor (e.g., long axis of the motor) in a clockwise and/or counterclockwise direction.
The blades can all rotate in the same direction or can rotate independently. Some of the blades rotate in one direction and the other blades rotate in the other direction. The blades can all rotate at the same rotation speed, or can rotate at different rotation speeds. The rotation speed can be automatically or manually determined based on the dimensions (for example, size, weight) and control state (speed, moving direction, etc.) of the moving body.
The frame 4 is a member that supports the corresponding motor 3 and rotary blade 2, respectively. The frame 4 may be provided with a color-developing body such as an LED to indicate the flight state, flight direction, and the like of the rotary wing aircraft. The frame 4 according to the present embodiment can be formed of a material appropriately selected from carbon, stainless steel, aluminum, magnesium, or the like, an alloy or combination thereof.
As shown in
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According to the aerial vehicle 1 of the present embodiment, by making the second frames 41 and 41 foldable, the horizontal dimension of the airframe can be efficiently reduced, and an aerial vehicle 1 that is easy to use in the field can be provided. Further, the labor required for attaching and detaching the second frames 41 and 41 can be reduced.
The above-mentioned aerial vehicle has a functional block shown in
The processing unit includes a control module configured to control the state of the aerial vehicle. For example, the control module controls a propulsion mechanism (motor, etc.) of the aerial vehicle in order to adjust the spatial arrangement, velocity, and/or acceleration of the aerial vehicle having six degrees of freedom (translational motions x, y and z, and rotational motions θx, θy and θz). The control module can control one or more of the states of the mounting unit and sensors.
The processing unit can communicate with a transreceiver configured to send and/or receive data from one or more external devices (e.g., a terminal, a display device, or other remote controller). The tranresceiver can use any suitable communication means such as wired or wireless communication. For example, the transreceiving part can use one or more of a local area network (LAN), a wide area network (WAN), infrared, wireless, WIN, point-to-point (P2P) network, telecommunication network, cloud communication, and the like. The transreceiving part can transmit and/or receive one or more of, data acquired by sensors, process results generated by the processing unit, predetermined control data, user command from a terminal or a remote controller, and the like.
Sensors according to the present embodiment may include inertial sensors (acceleration sensors, gyro sensors), GPS sensors, proximity sensors (e.g., LiDAR), or vision/image sensors (e.g., cameras).
The aerial vehicle of the present invention can be expected to be used as an aerial vehicle for delivery services, and to be used as an industrial aerial vehicle in a warehouse or a factory. In addition, the aerial vehicle of the present disclosure can be used in airplane-related industries such as multicopters and drones. Furthermore, the present invention not only can be suitably used as an aerial photography flight vehicle equipped with a camera or the like, but also can be used in various industries such as security, agriculture, and infrastructure monitoring.
The above-described embodiments are merely on examples to facilitate the understanding of the present invention, and are not intended to limit the present invention. The present invention can be changed and modified without departing from the gist thereof, and it goes without saying that the equivalents are included in the present invention.
Filing Document | Filing Date | Country | Kind |
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PCT/JP2019/040598 | 10/16/2019 | WO |
Number | Date | Country | |
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20240132235 A1 | Apr 2024 | US |