Air vehicle
The aircraft design reduces air resistance by minimizing the frontal projected area during forward flight, enhancing speed and fuel efficiency through a backward tilt and horizontal frame configuration.
Patent Information
- Application Number
- JP2025128512
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2025-07-31
- Publication Date
- 2025-10-14
AI Technical Summary
Existing aircraft designs that obtain horizontal thrust by tilting the aircraft body during forward flight increase horizontal resistance, leading to reduced speed performance and fuel efficiency.
Aircraft design with a lift generating unit, frame, and mounting portion that minimizes the frontal projected area during forward flight by tilting the aircraft backward during hovering and maintaining a horizontal frame position during forward flight, with rotors fixed to reduce air resistance.
Improves speed performance and fuel efficiency by reducing air resistance through optimized frontal area configuration during forward flight.
Smart Images

Figure 2025156467000001_ABST
Abstract
Description
[Technical Field]
[0001] The present disclosure relates to air vehicles. [Background technology]
[0002] In recent years, flying objects such as drones and unmanned aerial vehicles (UAVs) (hereinafter collectively referred to as "flying objects") have become widespread. For example, there is a multicopter type having multiple rotors (see, for example, Patent Document 1). [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2013-129301 Summary of the Invention [Problem to be solved by the invention]
[0004] In the aircraft of Patent Document 1, horizontal thrust is obtained by tilting the aircraft body during forward flight. However, tilting the aircraft body increases the horizontal resistance in the direction of travel, which leads to reduced speed performance and fuel efficiency.
[0005] Therefore, an object of the present disclosure is to provide an aircraft that can efficiently improve speed performance and fuel efficiency. [Means for solving the problem]
[0006] The flying vehicle according to the present disclosure comprises: An air vehicle capable of forward flight and hovering, A lift generating unit; a frame that holds the lift generating unit; a mounting portion provided on the frame and configured to accommodate an object to be mounted; The frontal projected area of the frame and the mounting section during forward flight is smaller than the frontal projected area of the frame and the mounting section during hovering. [Effects of the Invention]
[0007] According to the present disclosure, an aircraft capable of efficiently improving speed performance and fuel efficiency can be provided. [Brief explanation of the drawings]
[0008] [Figure 1] 1 is a plan view of an aircraft according to an embodiment. FIG. [Figure 2] FIG. 2 is a front view of the flying vehicle according to the embodiment. [Figure 3] FIG. 2 is a side view of the aircraft according to the embodiment. [Figure 4] FIG. 10 is a side view showing a modified example of the flying object according to the embodiment. [Figure 5] FIG. 2 is a side view showing the hovering state of the flying object according to the embodiment. [Figure 6] FIG. 2 is a diagram showing the projected area of the front of the aircraft during forward flight. [Figure 7] FIG. 2 is a diagram showing the projection area of the front of the aircraft during hovering. [Figure 8] FIG. 2 is an exemplary functional block diagram of an air vehicle. DETAILED DESCRIPTION OF THE INVENTION
[0009] The contents of one embodiment of the present disclosure will be described below. An aircraft according to one embodiment of the present disclosure has, for example, the following configuration. [Item 1] An air vehicle capable of forward flight and hovering, A lift generating unit; a frame that holds the lift generating unit; a mounting portion provided on the frame and configured to accommodate an object to be mounted; The frontal projected area of the frame and the mounting unit during forward flight is smaller than the frontal projected area of the frame and the mounting unit during hovering. Flying vehicle. [Item 2] The aircraft according to item 1, the lift generating unit includes a rotor, a support portion for supporting the rotor at an end of the frame; The support portion fixes the rotor blade so that it cannot rotate. [Item 3] The aircraft according to item 2, The support portion fixes the rotor so that the rotation axis of the rotor is in the forward direction of the aircraft and inclined relative to the frame. [Item 4] The aircraft according to any one of items 1 to 3, When the aircraft is hovering, the aircraft assumes a posture tilted backward relative to the horizontal. [Item 5] The aircraft according to any one of items 1 to 4, During the forward flight of the aircraft, the lift generating section generates lift in the forward and upward directions, The flying vehicle is in a position where the frame is horizontal. [Item 6] The aircraft according to any one of items 1 to 5, The mounting portion has a connection portion that is connected to the frame and is rotatable at least in the forward and backward directions relative to the frame. [Item 7] Item 6. The aircraft according to item 6, The connection unit has an attitude control mechanism that controls the attitude of the mounting unit.
[0010] <Details of implementation form> Hereinafter, an aircraft according to an embodiment of the present disclosure will be described with reference to the drawings.
[0011] <Details of one embodiment of the present disclosure> FIG. 1 is a plan view of an aircraft 1 according to one embodiment. FIG. 2 is a front view of the aircraft 1 according to this embodiment. FIG. 3 is a side view of the aircraft 1 according to this embodiment. As shown in FIGS. 1 to 3, the aircraft 1 according to this embodiment is an aircraft that can fly forward or hover, for example. The aircraft 1 includes, for example, rotors 2 (lift generating units), a motor 3 for rotating the rotors 2, and a frame 4 that holds the rotors 2 and to which the motor 3 is attached. In this embodiment, the forward and backward direction of the aircraft 1 is defined as the Y-axis direction, the left and right direction (or horizontal direction) as the X-axis direction, and the up and down direction (or vertical direction) as the Z-axis direction. Here, the +Y direction of the aircraft 1 is defined as the forward direction.
[0012] The rotor 2 rotates upon receiving output from the motor 3. The rotation of the rotor 2 generates a thrust force for the aircraft 1. The rotor 2 is an example of a lift generating unit. For example, in the case of a multicopter system, each of the multiple rotors is controlled to rotate clockwise or counterclockwise, or to stop, thereby enabling the aircraft 1 to move up and down and horizontally, as well as turn and rotate in the yaw axis direction.
[0013] The rotor 2 of the present disclosure may have any number of blades (rotors) (e.g., one, two, three, four, or more blades). The blades may have any shape, such as flat, curved, twisted, tapered, or a combination thereof. The blades may have a fixed or variable shape (e.g., retractable, foldable, bent, etc.). The blades may be symmetrical or asymmetrical (having upper and lower surfaces with different shapes). Symmetrical here means that the upper and lower surface shapes are symmetrical relative to the chord line of the blade. Asymmetrical means that the blades are not symmetrical. Thus, the blades may be formed into an airfoil, a wing, or any other geometric shape suitable for generating aerodynamic forces (e.g., lift, thrust) as the blade moves through the air. The blade geometry may be selected appropriately to optimize the blade's aerodynamic characteristics, such as increasing lift and thrust and reducing drag. Furthermore, the rotor 2 may be of a push type, a pull type, or a combination thereof.
[0014] The motor 3 causes the rotor 2 to rotate. In other words, the motor 3 is an example of a drive unit. For example, the drive unit of the rotor 2 may be an engine or the like instead of a motor. The blades can be driven by the motor and rotate, for example, clockwise and / or counterclockwise around the motor's rotation axis (e.g., the motor's longitudinal axis). Alternatively, the propeller (rotor 2) that constitutes the blades may have a drive shaft to which output is transmitted from the motor's power shaft via a pulley or the like, and the blades may rotate around the drive shaft.
[0015] The rotation of each blade can also be controlled independently. For example, in a multicopter aircraft, some blades rotate in one direction and others in the other direction. The blades can all rotate at the same rotation speed, or they can rotate at different rotation speeds. The rotation speed can be determined automatically or manually based on the dimensions of the vehicle (e.g., size, weight) or the control state (speed, direction of movement, etc.).
[0016] The frame 4 is a member that supports the corresponding motors 3 and rotors 2. The frame 4 may be provided with color-emitting devices such as LEDs to indicate the flight state and direction of the rotorcraft. The frame 4 according to this embodiment can be made of a material appropriately selected from carbon, carbon fiber resin, glass fiber resin, stainless steel, aluminum, aluminum alloy, magnesium, magnesium alloy, etc., or a combination of these.
[0017] 1 and 2, the frame 4 includes a first frame 40 and a second frame 41. In the example shown in Fig. 1, the second frames 41 are arranged side by side between the first frames 40, which are arranged side by side in approximately parallel relation. The first frame 40 and the second frame 41 are connected by a known method such as a joint or caulking.
[0018] 1, the first frames 40, 40 are arranged at a predetermined interval along the X direction with the Y direction as the longitudinal direction. Rotating blades 2 are attached to both ends of the first frames 40, 40 via motors 3.
[0019] As shown in FIG. 1, the second frames 41, 41 are arranged side by side at a predetermined interval along the Y direction, with the X direction being the longitudinal direction.
[0020] In this embodiment, connection points between the two first frames 40, 40 and the two second frames 41, 41 are defined as V1 to V4. The frame 4 includes a third frame 42 that extends in the X direction from the first frame 40, starting from between vertices V1 and V2 on the first frame 40, and a fourth frame 43 that extends in the X direction from the first frame 40 in the opposite direction to the third frame 42, starting from between vertices V3 and V4 on the first frame 40. A rotor 2 is attached to an end of the third frame 42 via a motor 3. A rotor 2 is attached to an end of the fourth frame 43 via a motor 3.
[0021] As shown in FIG. 3 , a motor mount 31 that supports the rotor 2 and motor 3 is provided at each end of the frame 4. The motor mount 31 is an example of a support portion. The motor mount 31 is provided so that the rotation axis RA of the rotor 2 is inclined relative to the front of the aircraft 1 and the frame 4. For example, the motor mount 3 may have a tapered shape that narrows from the end of the frame 4 toward the longitudinal direction of the frame 4. The motor mount 31 according to this embodiment is fixed at the end of the frame 4. In other words, the motor mount 31 fixes the rotor 2 to the frame 4 so that it cannot rotate. In other words, the rotor 2 itself does not rotate relative to the frame 4.
[0022] The mounting unit 5 is, for example, a mechanism for mounting and holding a load (loading object) 51. A battery 50 may be mounted on the mounting unit 5. The mounting unit 5 is provided on the frame 4 and stores the load 51. The batteries 50 are arranged side by side in the X direction with the load 51 in between. The number of batteries 50 to be mounted is not particularly limited. In a plan view, the mounting unit 5 may have not only a rectangular portion with vertices V1 to V4, but also a rectangular portion that protrudes from this rectangular portion in the -Y direction.
[0023] The mounting portion 5 may be fixed to the frame 4 so as not to be rotatable. Alternatively, the mounting portion 5 may have a mechanism that allows it to rotate relative to the frame 4.
[0024] 4, the mounting unit 5 has a hinge (connecting portion) 52 that connects the housing of the mounting unit 5 to the frame 4. The mounting unit 5 is configured to be rotatable in the pitch direction relative to the frame 4, with the hinge 52 as a fulcrum. Note that the limit of the angle by which the mounting unit 5 rotates relative to the frame 4 via the hinge 52 is not particularly limited.
[0025] By providing such hinge 52, for example, as shown in FIG. 4, even when the aircraft 1 hovers from the ground Gr in a backward tilted attitude, the orientation of the payload 51 can be kept horizontal so that the cargo 51 does not tilt. This allows the cargo 51 to be held in a stable state even during flight and delivered to the destination. Note that the hinge 52 in this embodiment rotates the payload 5 only in the forward / backward direction (i.e., the pitch direction), which is the same direction as the direction of travel. However, the hinge 52 may also rotate the payload 5 in the left / right direction (the roll direction and / or the yaw direction).
[0026] Here, the hinge 52 may have a mechanism that actively controls the attitude of the mount 5 using a motor or the like, for example, like a gimbal. This makes it possible to control the attitude of the mount 5 during flight. This further reduces the wobble (natural vibrations, etc.) of the mount 5, allowing for more stable delivery of the cargo 51. Note that the hinge 52 may be configured to be connected to the cargo 51 instead of the mount 5.
[0027] The shape and / or mechanism of the mounting unit 5 is not particularly limited as long as it can store and hold the luggage 51. Furthermore, the mechanism that maintains the position and tilt of the luggage 51 mounted on the mounting unit 5 may be, for example, a tilt mechanism that tilts and moves the luggage 51. Furthermore, as described above, the mounting unit 5 does not necessarily have to have a structure that allows it to rotate with respect to the frame 4.
[0028] In this embodiment, the aircraft 1 does not have landing legs in order to reduce weight. Therefore, in this embodiment, the mount 5 functions as the landing legs when the aircraft 1 lands. In other embodiments, landing legs may be provided on the frame 4, the mount 5, etc. as appropriate.
[0029] Fig. 5 is a side view showing the flying state of the flying body 1 according to this embodiment during hovering. Note that Fig. 3 is also a side view showing the flying state of the flying body 1 according to this embodiment during horizontal flight. As shown in Fig. 5, when the flying body 1 is hovering, the flying body 1 assumes a posture in which it tilts backward so that the lift generated by the rotor 2 is directed upward.
[0030] On the other hand, as shown in Figure 3, when the aircraft 1 is flying horizontally, the frame 4 is horizontal and the rotation axis RA of the rotor 2 faces in the Y-axis direction and diagonally upward. At this time, the lift obtained from the rotor 2 consists of a forward component and an upward component. This allows, for example, the aircraft 1 to move horizontally in the air while keeping the attitude of the mount 5 horizontal.
[0031] 6 and 7 are diagrams for comparing the frontal projected area of the aircraft during forward flight and the frontal projected area of the aircraft during hovering. Here, the frontal projected area refers to the area of the projected region of the frame 4 and the mounting unit 5 when the aircraft 1 is viewed from the front in the horizontal direction (i.e., viewed in the Y-axis direction). This frontal projected area is obtained by capturing images of the front of the aircraft 1 from the horizontal direction during horizontal flight and hovering, and calculating the area of the portion of the captured image occupied by the frame 4 and the mounting unit 5 based on the actual size of the aircraft 1. The area enclosed by the thick dashed line in FIG. 6 indicates the projected region S1 of the aircraft during forward flight. The area enclosed by the thick dashed line in FIG. 7 indicates the projected region S2 of the aircraft during hovering. The frame 4 and the mounting unit 5 account for the majority of the components of the aircraft 1 and are a major cause of air resistance during flight.
[0032] 6 and 7, in the aircraft 1 of this embodiment, the projection area S1 during forward flight is narrower than the projection area S2 during hovering. That is, in the aircraft 1 of this embodiment, the frontal projected area during forward flight is smaller than the frontal projected area during hovering.
[0033] In conventional aircraft, when the rotors are fixed to the frame, the rotors are facing upward when the frame is horizontal. As a result, the aircraft tilts forward in the pitch direction during forward flight. When the aircraft tilts forward, the projection area of the aircraft's mounting section and frame from the front increases. In other words, in conventional aircraft, the projection area is larger during forward flight than during hovering. In this case, the aircraft is likely to experience greater air resistance from the front.
[0034] On the other hand, when flying forward, the flying vehicle 1 according to this embodiment has a smaller projected area from the front than when hovering. This reduces the air resistance experienced from the front of the aircraft 1. In other words, the configuration of the flying vehicle 1 according to this embodiment can efficiently improve speed performance and fuel efficiency during forward flight.
[0035] The above-described aircraft 1 has, for example, the functional blocks shown in FIG. 8. Note that the functional blocks in FIG. 8 are a minimum reference configuration, and the functional blocks of the aircraft 1 according to this embodiment are not limited to this example. The flight controller is a so-called processing unit. The processing unit may have one or more processors, such as a programmable processor (e.g., a central processing unit (CPU)). The processing unit has a memory (not shown) and can access the memory. The memory stores logic, code, and / or program instructions that the processing unit can execute to perform one or more steps. The memory may include, for example, a separable medium such as an SD card or random access memory (RAM), or an external storage device. Data acquired from a camera or sensors may be directly transmitted to and stored in the memory. For example, still and video data captured by a camera or the like is recorded in an internal or external memory.
[0036] The processing unit includes a control module configured to control the state of the air vehicle. For example, the control module may have six degrees of freedom (translational x, y, and z, and rotational θ x , θ y and θz The control module controls the propulsion mechanism (e.g., motors) of the vehicle to adjust the spatial arrangement, speed, and / or acceleration of the vehicle. The control module can control one or more of the onboard components and the state of the sensors.
[0037] The processing unit can communicate with a transceiver configured to transmit and / or receive data from one or more external devices (e.g., a terminal, a display device, or other remote controller). The transceiver can use any suitable communication means, such as wired or wireless communication. For example, the transceiver can utilize one or more of a local area network (LAN), a wide area network (WAN), infrared, radio, WiFi, a point-to-point (P2P) network, a telecommunications network, cloud communication, etc. The transceiver can transmit and / or receive one or more of data acquired by sensors, processing results generated by the processing unit, predetermined control data, user commands from a terminal or a remote controller, etc.
[0038] The sensors according to this embodiment may include inertial sensors (acceleration sensors, gyro sensors), GPS sensors, proximity sensors (e.g., lidar), or vision / image sensors (e.g., cameras).
[0039] The aircraft disclosed herein is expected to be used as an aircraft for logistics and as an industrial aircraft in warehouses and factories. The aircraft disclosed herein can also be used in aircraft-related industries, such as multicopters and drones. Furthermore, the present disclosure can also be suitably used as an aircraft for aerial photography equipped with a camera or the like. This technology can also be used in various industries, such as security, agriculture, and infrastructure monitoring.
[0040] The above-described embodiments are merely examples for facilitating understanding of the present technology, and are not intended to limit the present technology. It goes without saying that the present technology can be modified and improved without departing from the spirit thereof, and that the present technology includes equivalents thereof. [Explanation of symbols]
[0041] 1. Aircraft 2 Rotor (lift generating part) 3 motors 4 frames 5 Mounting section 31 Motor mount (support part) 51 Baggage (items to be loaded) 52 Hinge (connection) S1 Projected area of the front of the aircraft during forward flight S2 Projected area of the aircraft's front when hovering
Claims
1. An air vehicle capable of forward flight and hovering, A lift generating unit; a frame that holds the lift generating unit; a mounting portion provided on the frame and configured to accommodate an object to be mounted; The frontal projected area of the frame and the mounting unit during forward flight is smaller than the frontal projected area of the frame and the mounting unit during hovering. Flying vehicle.
2. The flying vehicle according to claim 1, the lift generating unit includes a rotor, a support portion for supporting the rotor at an end of the frame; The support portion fixes the rotor blade so that it cannot rotate.
3. The flying vehicle according to claim 2, The support portion fixes the rotor so that the rotation axis of the rotor is in the forward direction of the aircraft and inclined relative to the frame.
4. The flying object according to any one of claims 1 to 3, When the aircraft is hovering, the aircraft assumes a posture tilted backward relative to the horizontal.
5. The flying object according to any one of claims 1 to 4, During the forward flight of the aircraft, the lift generating section generates lift in the forward and upward directions, The flying vehicle is in a position where the frame is horizontal.
6. The flying object according to any one of claims 1 to 5, The mounting portion has a connection portion that is connected to the frame and is rotatable at least in the forward and backward directions relative to the frame.
7. 7. The flying vehicle according to claim 6, The connection unit has an attitude control mechanism that controls the attitude of the mounting unit.
Citation Information
Patent Citations
Small unmanned aircraft
JP2013129301A