Hybrid fixed angle rotor unmanned aerial vehicle with vertical takeoff and landing capability

The hybrid UAV design with controlled rotor deflection and center of gravity placement addresses flight instability and efficiency issues, ensuring stable VTOL and cruise flight modes through a hybrid fixed and rotary wing configuration.

JP2025179171APending Publication Date: 2025-12-09エスアイエー フィクサー-エアロ
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Patent Information

Application Number
JP2025146635
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2025-09-04
Publication Date
2025-12-09

AI Technical Summary

Technical Problem

Existing UAV designs face challenges in achieving stable transitions between vertical take-off and landing (VTOL) and horizontal cruise flight modes, with issues of flight instability, structural complexity, weight, and reduced efficiency due to inactive rotors, particularly in urban environments and uneven terrains.

Method used

A hybrid fixed and rotary wing UAV design featuring elongated arcuate drivetrain members, forward and aft rotor arrays, and a rear horizontal stabilizer, with controlled rotor deflection angles and a center of gravity placement to ensure stability, along with an autopilot system for seamless mode transitions.

Benefits of technology

The design provides enhanced stability and efficiency during VTOL and cruise flight, reducing weight and complexity while maintaining aerodynamic performance and enabling autonomous operation.

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Abstract

To provide a hybrid unmanned aerial vehicle (UAV) having vertical take-off and landing (VTOL) capabilities.SOLUTION: Specifically, the disclosure relates to a stable hybrid fixed angle rotor arrays UAV having VTOL capabilities with hovering capabilities using rotors and cruising using fixed wing.SELECTED DRAWING: Figure 1A
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Description

[Technical Field]

[0001] The present disclosure is directed to hybrid unmanned aerial vehicles (UAVs) with vertical take-off and landing (VTOL) capabilities. Specifically, the present disclosure is directed to hybrid fixed and rotary wing UAVs with VTOL capabilities. [Background technology]

[0002] Currently, UAVs are being developed to complete a wide range of specialized tasks, such as combat, surveillance, delivery, search and rescue operations, industrial surveying and inspection, construction, mining, stockpiling, photogrammetry, aerial photography, cinematography and video, live streaming, news gathering, multispectral analysis, vegetation, biological plant protection, asset perimeter inspection, power line and pipeline inspection, intercepting other UAVs, geodesy and mapping, and others.

[0003] Typically, these UAVs were developed as multi-purpose transport platforms to carry variable cargo and / or payloads. However, any specific application of a UAV depends on specific functional conditions and requirements, which in turn are determined by the UAV's primary design solution (Design for X, or DFX). Among the requirements that determine a UAV's DFX are factors such as flight time, cruising altitude, payload type and weight, and hovering capability.

[0004] However, many types of applications for UAVs require level cruise flight over significant distances, along with VTOL capability, which is particularly important when no dedicated runway is available and accommodating such a runway is not possible due to the absence of clear landing space, for example, in urban environments, ships, drilling platforms, over very uneven terrain, etc.

[0005] In the art, there are known several structural types of convertible aircraft used in manned aviation, which differ in the principles of flight in the various modes. In particular, so-called "convertiplanes" are known, which consist of two rotor systems - climb and cruise - each of which operates in only one mode. The disadvantages of the aforementioned designs are the relatively high weight of the propulsion units and the reduced aerodynamic characteristics caused by the additional drag generated by the inactive rotors.

[0006] Similarly, there are known so-called "tilt rotors" that provide variable flight modes by rotating (tilting) their rotors from a vertical position to a horizontal configuration for horizontal cruise flight, and there are also known aircraft that provide variable flight modes by rotating the wing sections to which the rotors are attached.

[0007] The disadvantages of the above-mentioned UAV structures are flight instability in transitional modes, the structural complexity of the drive train providing the spinning (tilting) rotor or wing sections, and the high weight. The above-mentioned structures also scale poorly because with an increase in mass-dimensional characteristics, the pitch, roll, and torque moments of the rotor increase, which must be overcome structurally in relation to the vertical flight plane.

[0008] Similarly, there are known so-called "tail-sitter" VTOLs that are also used in UAVs, but which generally have small relative payload capacities and are difficult to operate in high crosswind conditions during takeoff, landing, and hovering.

[0009] That is, the common disadvantages of the above-mentioned designs can be summarized as a) instability of aircraft flight when transitioning from vertical cruise flight mode to horizontal cruise flight mode and vice versa, b) difficulty in balancing the aircraft's center of gravity, c) complexity of control, and d) low reliability.

[0010] An example of the above solution is disclosed in WO 2015 / 115913 A1 entitled "Multipurpose Aircraft", which has a twin fuselage arrangement with forward and aft structural panels located between the fuselage, the forward structural panel including a storage compartment and a nacelle with an engine. The described forward structural panel is part of a fixed wing that assists in balancing the aircraft's lift.

[0011] Furthermore, the aircraft design of US D822579 includes a cabin with attached left and right wing consoles, left and right longitudinal beams attached to the cabin by forward projecting struts and connected together by airfoil elements behind the cabin, and a motor with push rotors located on the back of the cabin, where each longitudinal beam includes a row of four rotors for hovering mode, a vertical stabilizer located on the back of the beam behind the cabin, and landing gear. A disadvantage of the aircraft shown is that it includes two groups of rotors—one push rotor located on the back of the cabin to provide horizontal cruise flight for the aircraft, and two rows of rotors located on the left and right beams to provide hovering mode for the aircraft, thus increasing the weight of the aircraft and reducing energy efficiency and range.

[0012] Similarly, US9,296,478B2, entitled "Aircraft Having At Least Two Aircraft Fusels and a Structural Member Having an Arrangement Having At Least Two Wing Sections Unconnected to Each Other," includes a structural member arrangement having at least two unconnected wing sections, and a second wing, wherein the connection regions of the structural member arrangement and the second wing are arranged to be offset relative to each other at least in an XZ plane on an aircraft-fixed coordinate system. The aircraft described in US9,296,478B2 is a full-fledged passenger aircraft that provides horizontal cruise flight without vertical takeoff and landing capabilities.

[0013] These and other shortcomings of existing technology are sought to be addressed herein. Summary of the Invention

[0014] overview In various exemplary implementations, disclosed are hybrid unmanned aerial vehicles (UAVs) with vertical take-off and landing (VTOL) capabilities. Specifically, provided are exemplary implementations of hybrid fixed and rotary wing UAVs with VTOL capabilities with increased stability.

[0015] In an exemplary implementation, provided herein is a pair of elongated arcuate drivetrain members, each having a base end and an apex end, each defining base, intermediate, and apex inflection points; a fuselage; a structural member defining a longitudinal axis, having a top surface and a base surface, with a pair of side ends extending laterally from the fuselage and connected to each of the elongated arcuate drivetrain members at each side end; a pair of second wings operatively connected to each elongated arcuate drivetrain member and extending laterally therefrom, each second wing operatively connected to the structural member; a rear horizontal inverted airfoil section having top and base surfaces spanning the gap between the pair of elongated arcuate drivetrain members, the side ends connected to the pair of elongated arcuate drivetrain members at the apex inflection points; and, optionally, a stabilizing crossbar having a pair of side ends connected to corresponding elongated arcuate drivetrain members at base inflection points, the stabilizing crossbar supporting each elongated drivetrain member. and an unmanned aerial vehicle (UAV) system configured for vertical take-off and landing (VTOL), including an aircraft having a stabilizing crossbar, the drivetrain member further including a first VTOL rotor extending apically from the base inflection point and a second VTOL rotor extending proximally from the elongated arcuate drivetrain member between the intermediate inflection point and the apex inflection point.

[0016] In another example implementation, provided herein is an autonomous VTOL UAV including: a first autopilot module that sends and receives UAV rotor control signals; a second autopilot module that receives fixed-wing control signals; an integrator module; and an onboard central processing module (CPM) in communication with the first autopilot module, the second autopilot module, and the integrator module, the CPM including at least one processor and further in communication with a non-transitory memory device that stores a set of executable instructions thereon, the CPM being configured to, when executing, cause the at least one processor to automatically: send and receive the rotor control signals; receive the fixed-wing control signals; calculate, using the integrator module, control signals to be applied to the VTOL UAV; and apply the calculated control signals to the VTOL UAV rotor controls.

[0017] These and other features of the hybrid fixed and rotary wing UAV with VTOL capabilities system, method and program will become apparent from the following detailed description when read in conjunction with the figures and examples, which are illustrative and not limiting. [Brief explanation of the drawings]

[0018] For a better understanding of the system, method and program for a hybrid fixed and rotary wing UAV with VTOL capabilities, reference is made to the accompanying examples and figures regarding exemplary implementations thereof, wherein: [Figure 1A] FIG. 1A illustrates a top perspective view and FIG. 1B illustrates a bottom perspective view of an exemplary implementation of a UAV with VTOL capabilities; [Figure 1B] FIG. 1A illustrates a top perspective view and FIG. 1B illustrates a bottom perspective view of an exemplary implementation of a UAV with VTOL capabilities; [Figure 2] FIG. 2 illustrates one of a pair of drive train members; [Figure 3] FIG. 3A illustrates a top perspective view of a structural member element, and FIG. 3B illustrates an enlarged portion; [Figure 4-1] FIG. 4A shows a top perspective view of a fuselage element of a UAV, FIG. 4B illustrates a bottom perspective view thereof, and FIG. 4C illustrates a gondola portion of the fuselage without a cover member; [Figure 4-2] FIG. 4A shows a top perspective view of a fuselage element of a UAV, FIG. 4B illustrates a bottom perspective view thereof, and FIG. 4C illustrates a gondola portion of the fuselage without a cover member; [Figure 5] FIG. 5A illustrates an inverted airfoil of a UAV, and FIG. 5B illustrates a YZ cross-sectional view taken along line CC of FIG. 5A: [Figure 6A] FIG. 6A illustrates a side view of a UAV in a horizontal cruise flight mode position, and FIG. 6B illustrates a UAV hovering during vertical takeoff and landing; [Figure 6B] FIG. 6A illustrates a side view of a UAV in a horizontal cruise flight mode position, and FIG. 6B illustrates a UAV hovering during vertical takeoff and landing; [Figure 7] FIG. 7 illustrates a top perspective view of another exemplary implementation of a UAV with VTOL capabilities without the stabilizing crossbar and autopilot radiator illustrated in FIG. DETAILED DESCRIPTION OF THE INVENTION

[0019] Detailed Description Provided herein are exemplary implementations of systems, methods, and programs for hybrid fixed and rotary wing UAVs with VTOL capabilities. In certain exemplary implementations, the disclosed hybrid fixed and rotary wing UAVs with VTOL capabilities can be configured to hover. The UAV has a seamless transition between the hover flight mode and the horizontal cruise flight mode, providing improved controllability. The seamless transition between the hover flight mode and the horizontal cruise flight mode is achieved, for example, by rotors mounted in two arrays with fixed angle deflection, where one array on the front rotor is mounted in an upward (apical) direction and the next array on the rear rotor is mounted in a downward (basal) direction, and the center of gravity of the UAV is located at the intersection of the diagonals of the rotor axes. The location of the center of gravity of the UAV and the value of the rotor deflection angle are determined by the formulas provided herein.

[0020] As illustrated in the exemplary implementation in FIGS. 1A and 1B, a forward wing arrangement with a first rotor array and an aft horizontal stabilizer with a second rotor(s) array (i.e., an inverted airfoil) influence two reacting thrust components such that the airlift area of ​​the forward wing arrangement is greater than the lift generated by the aft horizontal stabilizer airlift area, creating a self-stabilizing aerodynamic system. In the illustrated arrangement, control of the UAV increases nose pitch while reducing downward thrust by using a functional elevator with a dedicated drive (the aft rotor array). In the context of this disclosure, the term "rotor" is used to include rotors, propellers, and any other suitable rotating blade or blade-type structure that imparts force to the aircraft through interaction with the surrounding medium, whether air or fluid. A multi-rotor UAV 10 may include multiple subsystems, such as an avionics subsystem, a power generator subsystem, and one or more electronic speed controllers (ESCs) driving motors that drive one or more rotors (e.g., propellers). In some exemplary implementations, the drive motor is "connectable" to the rotor / propeller, i.e., the drive motor is adapted to a structure that allows it to be connected to the rotor / propeller.

[0021] Thus, provided is a hybrid UAV with VTOL capabilities having two separate load-bearing longitudinal elements, at least one forward horizontal wing arrangement, an aft horizontal stabilizer, a multi-rotor propulsion unit, and a fuselage for payload and other equipment. In certain exemplary implementations, the forward wing arrangement includes left and right separate wing sections without a center wing section mounted on the outboard sides of the load-bearing longitudinal drivetrain elements. Furthermore, the load-bearing longitudinal drivetrain elements are optionally connected to each other by at least one lateral crossbar stiffener.

[0022] In the context of this disclosure, the term "lateral stiffener," or "stabilizing crossbar," refers to a rod, bar, or beam, or structure operable to provide lateral stiffness for the forward wing arrangement. The element is included optionally, and its inclusion will depend on certain factors, such as payload weight, expected atmospheric conditions, etc. As illustrated in FIG. 1B , the arcuate, flared, V-shaped crossbar is sized so that the apex of the V-shaped stabilizer is located directly below the center of gravity of the UAV, thus providing additional stability to the UAV. Similarly, in the context of this disclosure, the term "longitudinal element," or "elongated, arcuate drivetrain member," refers to a load-bearing element operable to provide structural stiffness and for mounting equipment or for the tail. The term "drivetrain" refers to the mechanical and electrical components that interconnect the rotors mounted on the elongated, arcuate drivetrain members to a power source.

[0023] In the context of this disclosure, the term "operable" means that a system and / or device and / or program, or particular element or step, is fully functional, sized, adapted and calibrated; includes elements of, and meets applicable operability requirements for performing the described functions when activating, coupling, implementing, operating, affecting, realizing, or when an executable program is executed by at least one processor associated with the system and / or device. In the context of systems and circuits, the term "operable" means that the system and / or device is fully functional, sized, adapted and calibrated; includes elements of, and meets applicable operability requirements for performing the described functions when activating, coupling, implementing, operating, affecting, realizing, or when an executable program is executed by at least one processor associated with the system and / or device. or circuitry is fully functional and calibrated; includes logic for applicable operability requirements to perform the described functions when executed by at least one processor, and has the necessary hardware and firmware and circuitry to satisfy the requirements.

[0024] In another exemplary implementation, the multi-rotor propulsion unit includes at least four rotors (interchangeable rotors). The rotors may be positioned in at least two arrays, with a first array positioned forward of the forward wing arrangement and a second array positioned forward from the horizontal stabilizer. The rotors are deflected at a fixed deflection angle β. 110 , β 120 The rotors are mounted on longitudinal drivetrain elements at a predetermined gap from the leading edge of the forward wing arrangement and below the low pressure zone of the aft horizontal stabilizer. The rotation axes of the first row of rotors are oriented upward, and the rotation axes of the second row of rotors are oriented downward.

[0025] Additionally, the UAV further includes a rear horizontal stabilizer (or rear horizontal inverted airfoil) comprised of a spoiler and, optionally, in certain exemplary implementations, an elevator with a drive. The spoiler is inverted and operable to create a downward aerodynamic force (downward thrust). Furthermore, the air gap between the airfoil and the rotor tip is sized and adapted to minimize distortion of the airflow created by the rotor, the fixed wing assembly, and the airflow above and below the rear horizontal inverted airfoil.

[0026] For example, as further illustrated in FIG. 6B , the center of gravity of the UAV during vertical takeoff and landing is located directly below the intersection of diagonal lines drawn through the axes of rotation of the rotors in each elongated arcuate drivetrain member, but rather than forming a pyramid, is located on each side of the fuselage, thereby creating two intersecting components of thrust that act to stabilize the UAV in VTOL mode.

[0027] 6A and 6B, the fixed rotor deflection angle is operable to provide flight stability in both hovering and horizontal cruising flight of the UAV. The stability provided by the disclosed UAV system is determined by the following equation:

[0028]

number

[0029] (In the formula: -P 1ν , P 2ν is the vertical thrust component of the front 110, 110' and rear 120, 120' rotors; - LI, L2 are the moment arms placed between the axes of the vertical thrust components and the center of gravity (COG); -β 110 , β 120 H - normal rotor thrust P 1ν , P 2ν is an estimate of the design deflection angle of the rotor; and - k is a design factor).

[0030] As shown, during hover mode, stability is achieved by the forward 110, 111 at the intersection on the UAV. 10' and rear 120, 120' rotor thrust vector convergence, Meanwhile, the COG of the UAV is located below the intersection point as shown in Figure 6B.

[0031] In certain exemplary implementations, the fuselage further includes an autopilot system and a gondola, for example, for mounting imaging module equipment or for storing another payload.

[0032] It is contemplated that the disclosed UAVs may be scaled up to be manned aircraft operable to carry personnel, passengers and crew, and payloads.

[0033] A more complete understanding of the components and devices disclosed herein can be obtained by reference to the accompanying drawings. These figures (also referred to herein as "FIG.") are merely schematic diagrams for convenience and ease of demonstrating the present disclosure, and therefore are not intended to illustrate the relative sizes and dimensions of those devices or components, their relative size relationships, and / or to define or limit the scope of example implementations. Although specific terms are used in the following description for clarity, these terms are intended to refer only to the specific structures of example implementations selected for illustration in the drawings, and are not intended to define or limit the scope of the present disclosure in relation to the remainder of the specification. In the drawings and the following description below, like number designations should be understood to refer to components of like function. Similarly, cross-sectional views are referenced on a conventional Cartesian coordinate system with X, Y, and Z axes, such that the Y axis points forward and backward, the X axis points left and right, and the Z axis points up and down.

[0034] 1A-5B, there is shown a pair of elongated arcuate drivetrain members 100, 100′, each having a proximal end 101, 101′ and an apical end 102, 102′, optionally connected by a base pad 1010, 1010′, each defining a proximal 1001 (see, e.g., FIG. 2 ), an intermediate 1002, and an apical 1003 inflection point; a body 200; a pair of side end caps 3001, 3002 having a top surface 3003 and a base surface 3004, extending laterally from the body 200 and connected to lateral sections 3006, 3007, each connected at each side end cap 3001, 3002 to each of the elongated arcuate drivetrain members 100, 100′, along a longitudinal axis X; L 3A, 3B ), which includes an unmanned aerial vehicle (UAV) system configured for vertical take-off and landing (VTOL), including an aircraft 10 including a structural member 300 (see, e.g., FIGS. 3A and 3B ) defining a second wing 100, 400′. Also illustrated is a pair of second wings 400, 400′ operably coupled to and extending laterally from each elongated arcuate drivetrain member 100, 100′, each second wing 400, 400′ being operably coupled to the structural member 300 via, e.g., at least one tube 319A, 329A operable to couple components through apertures 1009A, 1009A′, e.g., having openings 1008 (1008′) (see, e.g., FIG. 2 ) defining the second wing 400, 400′ in each elongated arcuate drivetrain member 100, 100′.

[0035] The UAV 10 further includes a rear horizontal inverted wing section 500 having a leading edge 5003 and a trailing edge 5004, with a top surface 5001 and a base surface 5002 spanning the gap between the pair of elongated arcuate drivetrain members 100, 100' and side ends 5005, 5005' connected to the pair of elongated arcuate drivetrain members 100, 100' at or near an apex inflection point 1003 (e.g., mounting pad 1006, see FIG. 1B). Also shown is an optional stabilizing crossbar 130 having a pair of side ends 1300, 1300′ (see, e.g., FIGS. 1A and 1B ) connected to a corresponding elongated arcuate drivetrain member 100, 100′ at or near a base inflection point 1001, where each elongated drivetrain member 100, 100′ further includes a first VTOL rotor 110, 110′ and intermediate inflection points 1002, 1003 extending apically from the base inflection point 1001, 1001′. 7, in certain circumstances, the stabilizing crossbar 130 is not incorporated into the system, thus reducing the weight of the UAV (i.e., increasing its range).

[0036] Additionally, as illustrated in FIG. 2, each elongated arcuate drivetrain member 100, 100′ further includes a dorsal vertical stabilizer (vertical airfoil) 105, 105′ extending dorsally from a mid-inflection point 1002, 1002′ to an apical inflection point 1003, 1003′, and a ventral horizontal stabilizer 106, 106′ disposed between the apical inflection point 1003, 1003′ and the apical end 102, 102′. Additionally, and as illustrated in FIG. 2, each elongated arcuate drivetrain member 100, 100′ is further operable to form a horizontal ground plane 101, 101′, 103′, 103′ during horizontal cruise flight and a horizontal plane 103, 102, 102′, 103′ during VTOL flight (e.g., as illustrated in FIG. 6B). See reference 1002, 1002' and includes support members 103, 103' having proximal ends 1031, 1031' (e.g., pads) extending proximally from intermediate inflection points 1002, 1002'. The elongated arcuate drivetrain members 100, 100' may be one-piece lightweight hollow body structures made, for example, from polypropylene, ABS plastic, or carbon fiber / Kevlar composites.

[0037] As further illustrated, the rotors 110, 110', 120, 120' are deflected at a predetermined angle β during takeoff so that a projected diagonal formed by the rotation axis of each rotor 110, 120, 110', 120' between the planes 103, 102, 102', 103' intersects perpendicularly with the center of gravity of the UAV. 110 , β 120 In an exemplary implementation, the first VTOL rotor 110, 110′ and the second VTOL rotor 120, 120′ are each deflected from perpendicular to the elongated arcuate drivetrain member 100, 100′ at a predetermined deflection angle β 110 , β 120 β 120 can be, for example, between about 45° and about 47°, while β 110 may be, for example, between about 41° and about 43°, where the second VTOL rotor 120, 120′ is deflected by the deflection angle β of the first VTOL rotor 110, 110′. 110 Larger deflection angle β 120 Extending from the elongated arcuate drivetrain member at 1004, 1005, 1004', 1005'. Furthermore, depending on various parameters such as VTOL altitude, payload weight, atmospheric conditions, etc., the rotor blades may be interchangeable, for example, from a 25.4 cm diameter with an approximately 11.4 cm step in one exemplary implementation to a rotor having a blade diameter of approximately 28 cm with an approximately 11.4 cm step. As further illustrated in FIG. 2, each rotor 110, 110', 120, 120' mounts on a corresponding mounting pad 1004, 1005, 1004', 1005'.

[0038] 2-3B, an (aerodynamically contoured) structural member 300 is illustrated having side end caps 3001, 3002 having leading and trailing edges 3008, 3009 that further define a central region 310, and a pair of lateral sections 3006, 3007 that taper from the central region 310, while the top surface 3100 of the central region 310 further defines a forward portion 3101 and aft portion 3102, which further defines an opening 3103 operable to house equipment and communicate with the fuselage cover 210 (see, e.g., FIG. 4A). As illustrated in FIG. 3A, the forward portion 3101 and aft portion 3102 are elevated above the top surface 3003 of the structural member 300 to form a predetermined topology. Also illustrated in FIG. 3B is aperture 3105 operable to provide access to structural member 300 for connection of various elements, such as a pressure sensor, etc. (311, see e.g., FIG. 1A), e.g., a downward-facing LIDAR 350 (see e.g., FIG. 1B).

[0039] As further illustrated in FIGS. 2, 3A, and 3B, each end cap 3001, 3002, in certain exemplary implementations, may be configured to couple the second wing section 400, 400′ through apertures 1009A, 1009B, 1009A′, 1009B′. The end caps 3001, 3002 are operable to receive the tubes 319A, 319B, 329A, 329B, which are sized, fitted, and configured to accommodate the retainers 321A, 321B, 322A, 322B (e.g., screws, detents, etc.) that couple the structural member 300 to the respective elongated drive train members 100, 100′. As further shown, each end cap 3001, 3002 further defines an opening 3021, 3022 configured to allow passage, for example, wiring, between the second wing 400, 400′ and the fuselage 200.

[0040] 4A-4C, there is illustrated a fuselage 200 including a proximally opening cover member 210; and a gondola 220, which together form a nacelle. As illustrated, the base-opening cover member 210 having a forward end 2101 and an aft end 2102 includes a nose section 211, a canopy section 212, and a backing section 213 that together define a lip 2105, the lip 2105 forming an opening sized and adapted to accommodate the topology of the central region 310 formed by the forward portion 3101 and the aft portion 3102 of the structural member 300 between the cover member 210 and the gondola 220, while the gondola 220 has an apex-opening forward portion 2206 that forms a payload chamber, the aft portion 2205 being separated from the forward portion 2206 by a bulkhead 2207 (not shown); and includes a rearward-opening aft portion 2202 that forms a compartment 2205 operable to accommodate a power unit 260.

[0041] Also shown in FIG. 4B is an optional opening 221 that can be used to allow the imaging module 700 to observe the ground. Also illustrated in FIG. 4B is a means 222 for connecting a gondola 220 having a base surface 2204 to the lateral stabilizing bar 130 (see, e.g., FIG. 1A). The connecting means can be any suitable means, such as screws, rods, detents, cable ties, etc. As further illustrated in FIG. 4C, the gondola 220 having a front end 2201, an aft end 2202, a base surface 2204, and a top surface 2203 having sidewalls 2208 is configured, in certain exemplary implementations, to have an upper deck 228 and a lower deck 229 separated by a step 2285. The top-opening front section 2206 further illustrates a payload 240 (here a camera clamp, but could be other payload types) having a power unit release lever 226 and a modem 227 operable to communicate with a ground control station, in certain exemplary implementations. The lower deck 229 further shows an autopilot module 230 having a cooling radiator 250 coupled thereto, as well as a coupling means 2291i operable to couple the gondola 220 to the central portion 310 of the structural member 300. A charging port 2601 is also shown, as well as leads 2600 to the power unit 260, as well as a closure clasp 223. Meanwhile, the autopilot 230 provides autonomous flight capabilities. In certain other exemplary implementations, the UAV may be remotely controlled, eliminating the need for the radiator 250, as further illustrated in FIG. 7.

[0042] 5A and 5B, an aft horizontal inverted airfoil section 500 is illustrated having a negative angle of attack between about -1.0° and -5.0°, e.g., between about -2° and about -3°. As illustrated, in certain exemplary implementations, the span (S 500 ) and chord length (Ch 500) can be manipulated to improve the stability of the UAV and may depend on design parameters such as rotor blade length (to prevent flow distortion), maintaining an optimal air gap, and fixed wing assembly comprised of structural member 300 and second wing 400, 400′, and their spans.

[0043] In an exemplary implementation, the disclosed UAV is used as an autonomous UAV with VTOL capabilities. Accordingly, provided herein are systems for transmitting and receiving UAV rotor control signals. a first autopilot module that transmits (or operates to receive) fixed-wing control signals; a second autopilot module that receives fixed-wing control signals; an integrator module; and an onboard central processing module (CPM) in communication with the first autopilot module, the second autopilot module, and the integrator module, the CPM including at least one processor, further in communication with a non-transitory memory device that stores a set of executable instructions thereon, the CPM being configured, when executing, to cause the at least one processor to automatically: transmit and receive the rotor control signals; receive the fixed-wing control signals; calculate, using the integrator module, control signals to be applied to the VTOL UAV; and apply the calculated control signals to the VTOL UAV rotor controls. As a result, the VTOL UAV comprises a pair of elongated arcuate drivetrain members 100, 100', each having a base end 101, 101' and a top end 102, 102', each defining a base 1001, 1001', an intermediate 1002, 1002', and a top end 1003, 1003' inflection point; a fuselage 200; a top surface 3006 and a base surface 3007; and a pair of side ends 3001, 3002 extending laterally from the fuselage 200 and coupled at each side end 3001, 3002, respectively, to each of the elongated arcuate drivetrain members 100, 100'. LA pair of second wings 400, 400′ are operatively coupled to and extend laterally from each elongated arcuate drivetrain member 100, 100′, each second wing 400, 400′ being aligned with a longitudinal axis X of the structural member 300. Laft horizontal inverted airfoil section 500 has a top surface 5001 and a base surface 5002 that span the gap between the pair of elongated arcuate drivetrain members 100, 100', and has side ends 5005, 5005' connected to the pair of elongated arcuate drivetrain members 100, 100' at apex inflection points 1003, where each of second wings 400, 400' is operatively connected to the pair of elongated arcuate drivetrain members 100, 100' (e.g., through a pair of tubes operable to be received in apertures 1009A, 1009B and 1009A', 1009B' (see, e.g., FIG. 2 )). ', e.g., defined in elongated arcuate members 100, 100') and coupled together (with tubes 321A, 321B, 321A', 321B', 322A, 322B, 322A', 322B' [not shown]) to structural member 300 [see, e.g., FIG. 2 ], structural member 300, a pair of second wings 400, 400' form a fixed wing assembly such that the fixed wing assembly, and aft horizontal inverted airfoil section 500 are operable to transmit a plurality of control signals. In certain exemplary implementations, the plurality of fixed wing assembly control signals include at least one of pressure, temperature, wind speed over the fixed wing, pitch angle, roll angle, and yaw angle, some of which may be transmitted using antennas 141, 142, for example. Depending on the task, the UAV 10 may further optionally include a stabilizing crossbar 130 having a pair of side ends 1300, 1300′ coupled to corresponding elongated arcuate drivetrain members 100, 100′ at a base inflection point 1001 (see, e.g., FIG. 2 , 1007), wherein each elongated drivetrain member 100, 100′ further includes a first VTOL rotor 110, 110′ extending apically from the base inflection point 1001, 1001′ and a second VTOL rotor 120, 120′ extending proximally from the elongated arcuate drivetrain member 100, 100′ between an intermediate inflection point 1002, 1002′ and an apical inflection point 1003, 1003′, the first 110, 110′ and second 120, 120′ rotors operable to receive a plurality of rotor control signals. Optionally, the plurality of rotor control signals include at least one of pressure, temperature, ground speed, revolutions per minute (RPM), and altitude.

[0044] An optional stabilizing bar 130 is shown having antennas 141, 142 coupled thereto that are operable to transmit signals as needed to the autopilot (e.g., 230, see FIG. 4C).

[0045] The UAV system disclosed herein may be a computerized system further including a central processing module (CPM), a display module, and a user interface module. The display module may include a display element and may include any type of element that acts as a display. A typical example is a liquid crystal display (LCD). For example, an LCD includes transparent electrode plates disposed on both sides of a liquid crystal. However, there are many other forms of displays, such as OLED displays and bi-stable displays. New display technologies are also constantly being developed. Therefore, the term display should be interpreted broadly and not associated with a single display technology. The display module may also be mounted on the printed circuit board (PCB) of the electronic device and placed within a protective housing, where the display module is protected from damage by a glass or plastic plate disposed on the display element and attached to the housing.

[0046] The term “communicate” (and its derivatives, e.g., a first component “communicates with” or “is communicating with” a second component) and grammatical variations thereof are used to indicate a structural, functional, mechanical, electrical, optical, or fluid relationship, or any combination thereof, between two or more components or elements. As such, the fact that one component is said to be in communication with a second component is not intended to exclude the possibility that additional components may exist between the first and second components and / or may be operatively associated with or involved in the first and second components. Furthermore, the term “electronic communication” means that one or more components of the multi-mode optoelectronic observation and targeting system with cross-platform integration capabilities described herein are in wired or wireless communication or in internet communication such that electronic signals and information can be exchanged between the components.

[0047] Similarly, the term "module" is understood to encompass a tangible entity that is physically constructed, specially configured (e.g., wired), or temporarily (e.g., transitorily) configured (e.g., programmed) to operate in a particular manner or to perform some or all of the operations described herein. Considering examples in which modules are temporarily configured, each of the modules need not be instantiated at any one moment. For example, if the modules include a general-purpose hardware processor configured using software, the general-purpose hardware processor may be configured as each different module at different times. The software may thus configure the hardware processor, for example, to be a component of a particular module at one moment and a component of a different module at a different moment. In one embodiment, the electronic control unit of the disclosed and claimed system is an electronic control module (ECM).

[0048] As used herein, the term "computer-readable medium" has its ordinary meaning and also refers to any medium that participates in providing instructions to a processor for execution. Such media may take many forms, including but not limited to, non-volatile media and volatile media. Non-volatile media may be, for example, optical or magnetic disks, such as storage devices. Volatile media includes dynamic memory, such as main memory.

[0049] The memory devices used in the methods, programs, and systems described herein can be any of a variety of types of memory or storage devices. The term "memory device" includes installation media, such as CD-ROMs, floppy disks, or tape drives; DRAM, DDR RAM, SRAM, EDO RA, etc. The term "memory device" is intended to encompass computer system memory or random access memory, such as RAM, Rambus RAM, or magnetic media, e.g., hard drives, optical storage, or non-volatile media, such as ROM, EPROM, and FLASH. A memory device may include other types of memory, or combinations thereof. Furthermore, the memory medium may be located in a first computer (e.g., a UAV onboard CPM) that executes the program, and / or in a second, different computer (or microcontroller, e.g., a ground control unit) that connects to the first computer via a network, such as a cellular network, satellite, wireless network, or combinations thereof (mesh network). In the latter case, the second computer may further provide the program instructions to the first computer for execution. The term "memory device" also includes two or more memory devices that may reside in different locations, e.g., in different computers connected via a network.

[0050] As used herein, the term "comprising" and its derivatives are intended to be open-ended terms that specify the presence of stated features, elements, components, groups, integers, and / or steps, but do not exclude the presence of other unrecited features, elements, components, groups, integers, and / or steps. The foregoing also applies to words of similar meaning, such as the terms "including," "having," and their derivatives.

[0051] The terms "a," "an," and "the" used herein do not denote limitations of quantity and should be construed to cover both the singular and the plural unless otherwise indicated herein or clearly contradicted by context. As used herein, the suffix "(s)" is intended to include both the singular and the plural of the term it modifies, thereby including one or more of that term (e.g., stack(s) includes one or more stacks). References throughout this specification to "one exemplary implementation," "another exemplary implementation," "exemplary implementation," etc., when present, mean that a particular element (e.g., a feature, structure, and / or characteristic) described in connection with that exemplary implementation is included in at least one exemplary implementation described herein and may or may not be present in other exemplary implementations. Furthermore, it should be understood that the described elements may be combined in any suitable manner in the various exemplary implementations.

[0052] Unless otherwise specifically stated, and as will be apparent from the discussion, it is recognized that throughout this specification, discussions utilizing terms such as "processing," "loading," "communicating," "detecting," "calculating," "determining," "analyzing," "applying," and the like refer to the operations and / or processes of a computer or computing system, or similar electronic computing device, that manipulates and / or transforms data as and to physical manifestations thereof.

[0053] For purposes of the present invention, terms of direction or position such as "top," "bottom," "upper," "lower," "side," "front," "frontal," "forward," "rear," "backward," "dorsal," "following," "up," "down," "left," "right," "horizontal," "vertical," "upward," "downward," "outer," "inner," "exterior," "interior," "middle," etc., are used merely for convenience in describing various embodiments of the present invention. For example, the orientation of the embodiments shown in Figures 1-6 may be inverted or flipped, rotated 90 degrees in any direction, etc.

[0054] Accordingly, and in exemplary implementations, provided herein are a pair of endoscopic catheters, each having a proximal end and an apical end, each defining a proximal, intermediate, and apical inflection point. a fuselage; a structural member defining a longitudinal axis having an upper surface and a base surface, a pair of side ends extending laterally from the fuselage and connected at each side end to each of the elongated arcuate drivetrain members; a pair of second wings operatively connected to each elongated arcuate drivetrain member and extending laterally therefrom; a pair of second wings having apex and base surfaces spanning a gap between the pair of elongated arcuate drivetrain members, the side ends extending laterally from the pair of elongated arcuate drivetrain members at an apex inflection point; and optionally, a stabilizing crossbar having a pair of side ends connected to corresponding elongated arcuate drivetrain members at base inflection points, each elongated drivetrain member further including a first VTOL rotor extending apically from the base inflection point and a second VTOL rotor extending proximally from the elongated arcuate drivetrain member between an intermediate inflection point and an apex inflection point. An unmanned aerial vehicle (UAV) system configured for a VTOL (Vehicle on Lift) system, wherein (i) each elongated arcuate drivetrain member further includes a dorsal vertical stabilizer extending from an intermediate inflection point to an apical inflection point and a ventral horizontal stabilizer disposed between the apical inflection point and the apical end, (ii) further includes a support member extending proximally from the intermediate inflection point operable to form a horizontal ground plane, and (iii) the first VTOL rotor and the second VTOL rotor each have a predetermined deflection away from vertical. (iv) the structural member further defines a central region and a pair of lateral sections tapering from the central region (i.e., becoming narrower with increasing distance), (v) the upper surface of the central region further defines a front and a rear portion, the rear portion further defining an opening, and (vi) the fuselage comprises: a cover member open in a proximal direction;and a gondola (together forming a nacelle), (vii) a proximally-opening cover member including a nose section, a canopy section, and a backing section which together define a lip, the lip forming an opening sized and adapted to receive a structural member between the proximally-opening cover member and the gondola, (viii) the gondola including: an aft-opening aft section forming a compartment operable to receive a power unit; an apex-opening forward section forming a payload chamber, the aft section separated from the forward section by a bulkhead, and (ix) the aft horizontal inverted airfoil section has a negative angle of attack between -1° and -5°;

[0055] In another example implementation, provided herein is an autonomous VTOL UAV, including: a first autopilot module that sends and receives (in other words, is operable to send and receive) UAV rotor control signals; a second autopilot module that receives fixed-wing control signals; an integrator module; and an onboard central processing module (CPM) in communication with the first autopilot module, the second autopilot module, and the integrator module, the CPM including at least one processor, further in communication with a non-transitory memory device that stores a set of executable instructions thereon, the CPM being configured, when executing, to cause the at least one processor to automatically: send and receive the rotor control signals; receive the fixed-wing control signals; calculate, using the integrator module, control signals to be applied to the VTOL UAV; and apply the calculated control signals to the VTOL UAV rotor controls, wherein: (x) the VTOL The UAV comprises: a pair of elongated arcuate drivetrain members each having a base end and an apex end, each defining base, middle, and apex inflection points; a fuselage; a structural member defining a longitudinal axis having a top surface and a base surface, a pair of lateral ends extending laterally from the fuselage and connected to each of the elongated arcuate drivetrain members at each lateral end; a pair of second wings operatively connected to each elongated arcuate drivetrain member and extending laterally therefrom, each second wing further operatively connected to a structural member; and a rear horizontal inverted airfoil section having apex and base surfaces spanning a gap between the pair of elongated arcuate drivetrain members and having lateral ends connected to the pair of elongated arcuate drivetrain members at apex inflection points, wherein the structural member, the pair of second wings, and the rear horizontal inverted airfoil section form a fixed wing, and the fixed wing the wing comprises a rear horizontal inverted airfoil section operable to transmit a plurality of control signals; and optionally a stabilizing crossbar having a pair of side ends connected to a corresponding elongated arcuate drivetrain member at a base inflection point, each elongated drivetrain member further including a first VTOL rotor extending apically from the base inflection point and a second VTOL rotor extending proximally from the elongated arcuate drivetrain member between an intermediate inflection point and an apex inflection point, the first and second rotors operable to transmit and receive a plurality of rotor control signals. (xi) each elongated arcuate drivetrain member further (optionally) includes a dorsal vertical stabilizer extending from an intermediate inflection point to an apical inflection point, and (optionally) a ventral horizontal stabilizer disposed between the apical inflection point and the apical end; (xii) and a support member extending proximally from the intermediate inflection point operable to form a horizontal ground plane; (xiii) the first VTOL rotor and the second VTOL rotor each extend from the elongated arcuate drivetrain member at a predetermined deflection angle off vertical, and the second VTOL rotor (xiv) the structural member further defines a central region and a pair of lateral regions tapering from the central region; an upper surface of the central region further defines a front portion and a rear portion, the rear portion further defining an opening; and (xv) the plurality of fixed wing control signals include at least one of pressure, temperature, wind speed over the fixed wing, pitch angle, roll angle, and yaw angle. ) the fuselage includes: a proximally-opening cover member; and a gondola, (xvi) the proximally-opening cover member includes a nose section, a canopy section, and a backing section that together define a lip, the lip forming an opening sized and adapted to receive a structural member between the proximally-opening cover member and the gondola, and (xvii) the gondola includes: a rearwardly-opening aft section forming a compartment operable to receive a power unit, the compartment having an upper deck surface;an autopilot element including a first autopilot module, a second autopilot module, an integrator module, a communications module, and a navigation module; and an apically-opening forward section forming a payload chamber, the aft section separated from the forward section by a bulkhead, and (xviii) the aft horizontal inverted airfoil section having a negative angle of attack between -1° and -5°;

[0056] While the present invention has been described in detail and with reference to specific exemplary implementations thereof, it will be apparent to those skilled in the art that various changes and modifications can be made therein without departing from the spirit and scope thereof. Thus, this disclosure is intended to cover the modifications and variations of this invention provided they come within the scope of the appended claims and their equivalents.

Claims

1. a. a pair of elongated arcuate drivetrain members each having a proximal end and an apical end, each defining proximal, intermediate, and apical inflection points; b. body; c. a structural member defining a longitudinal axis having a top surface and a base surface, a pair of lateral ends extending laterally from the fuselage and connected at each lateral end to each of the elongated arcuate drivetrain members; d. A pair of second wings operatively connected to and extending laterally from each elongated arcuate drive train member: e. a rear horizontal inverted airfoil section having apex and base surfaces spanning the gap between the pair of elongated arcuate drivetrain members and having lateral ends connected to the pair of elongated arcuate drivetrain members at apex inflection points; and f. Optionally, a stabilizing crossbar having a pair of side ends connected to corresponding elongated arcuate drivetrain members at a base inflection point, each elongated drivetrain member further including a first VTOL rotor extending apically from the base inflection point and a second VTOL rotor extending proximally from the elongated arcuate drivetrain member between an intermediate inflection point and an apical inflection point.

1. An unmanned aerial vehicle (UAV) system configured for vertical take-off and landing (VTOL), comprising an aircraft including:

2. 10. The UAV system of claim 1, wherein each elongated arcuate drivetrain member further includes a dorsal vertical stabilizer extending from a medial inflection point to an apical inflection point, and a ventral horizontal stabilizer disposed between the apical inflection point and the apical end.

3. 3. The UAV of claim 2, wherein each elongated arcuate drivetrain member further includes a support member extending proximally from the intermediate inflection operable to define a horizontal base surface.

4. 4. The UAV of claim 3, wherein the first VTOL rotor and the second VTOL rotor each extend from the elongated arcuate drivetrain member at a predetermined deflection angle off vertical, and the second VTOL rotor extends from the elongated arcuate drivetrain member at a deflection angle greater than the deflection angle of the first VTOL rotor.

5. The UAV of claim 1 , wherein the structural member further defines a central region and a pair of side sections tapering from the central region.

6. The UAV of claim 5 , wherein the top surface of the central region further defines a front portion and a rear portion, the rear portion further defining an opening.

7. The torso is: a. a proximally opening cover member; and b. Gondola 2. The UAV of claim 1, comprising:

8. 8. The UAV of claim 7, wherein the base-opening cover member includes a nose section, a canopy section, and a backing section that together define a lip, the lip forming an opening sized and adapted to accommodate a structural member between the base-opening cover member and the gondola.

9. The gondola: a. a rearwardly opening rear section forming a compartment operable to house a power unit; b. an apically open front section forming a payload chamber, the rear section being separated from the front section by a bulkhead; The UAV of claim 8, comprising:

10. The UAV of claim 1 , wherein the aft horizontal inverted airfoil section has a negative angle of attack between −1° and −5°.

11. a. a first autopilot module that receives and transmits UAV rotor control signals; b. a second autopilot module that receives the fixed-wing control signals; c. an integrator module; and d. an on-board central processing module (CPM) in communication with the first autopilot module, the second autopilot module, and the integrator module, the CPM including at least one processor, further in communication with a non-transitory memory device storing thereon a set of executable instructions that, when executed, cause the at least one processor to automatically: i. transmitting and receiving said rotor control signals; ii. receiving the fixed-wing control signal; iii. Using the integrator module to calculate control signals to be applied to a VTOL UAV; and iv. A CPM configured to apply the calculated control signals to the VTOL UAV rotor controls. and autonomous VTOL UAVs, including:

12. VTOL UAVs: a. a pair of elongated arcuate drivetrain members each having a proximal end and an apical end, each defining proximal, intermediate, and apical inflection points; b. body; c. a structural member defining a longitudinal axis having a top surface and a base surface, a pair of lateral ends extending laterally from the fuselage and connected at each lateral end to each of the elongated arcuate drivetrain members; d. a pair of second wings operatively connected to and extending laterally from each elongated arcuate drivetrain member, each second wing further operatively connected to a structural member; e. an aft horizontal inverted airfoil section having apex and base surfaces spanning a gap between the pair of elongated arcuate drivetrain members and lateral ends connected to the pair of elongated arcuate drivetrain members at apex inflection points, wherein the structural member, the pair of second wings, and the aft horizontal inverted airfoil section form a fixed wing, the fixed wing operable to transmit a plurality of control signals; and f. optionally, a stabilizing crossbar having a pair of side ends connected to corresponding elongated arcuate drivetrain members at a base inflection point, each elongated drivetrain member further including a first VTOL rotor extending apically from the base inflection point and a second VTOL rotor extending proximally from the elongated arcuate drivetrain member between an intermediate inflection point and an apical inflection point, the first and second rotors operable to transmit and receive a plurality of rotor control signals; 12. The autonomous VTOL UAV of claim 11, comprising:

13. 13. The autonomous VTOL UAV system of claim 12, wherein each elongated arcuate drivetrain member further includes a dorsal vertical stabilizer extending from a mid-inflection point to an apical inflection point, and a ventral horizontal stabilizer disposed between the apical inflection point and the apical end.

14. 14. The autonomous VTOL UAV system of claim 13, wherein each elongated arcuate drivetrain member further includes a support member extending proximally from the intermediate inflection operable to define a horizontal base surface.

15. 15. The autonomous VTOL UAV system of claim 14, wherein the first VTOL rotor and the second VTOL rotor each extend from the elongated arcuate drivetrain member at a predetermined deflection angle off vertical, the second VTOL rotor extends from the elongated arcuate drivetrain member at a greater deflection angle than the first VTOL rotor, and the plurality of rotor control signals include at least one of pressure, temperature, ground speed, revolutions per minute (RPM), and altitude.

16. a. the structural member further defines a central region and a pair of lateral regions tapering from the central region; b. the top surface of the central region further defines a front portion and a rear portion, the rear portion further defining an opening; c. the plurality of fixed wing control signals include at least one of pressure, temperature, wind speed over the fixed wing, pitch angle, roll angle, and yaw angle; 13. The autonomous VTOL UAV system of claim 12.

17. The torso is: a. a proximally opening cover member; and b. Gondola 13. The UAV of claim 12, comprising:

18. 18. The UAV of claim 17, wherein the base-opening cover member includes a nose section, a canopy section, and a backing section that together define a lip, the lip forming an opening sized and adapted to accommodate a structural member between the base-opening cover member and the gondola.

19. The gondola: a. a rearwardly opening rear section forming a compartment operable to house a power unit, the compartment having an upper deck surface; b. Autopilot elements including a first autopilot module, a second autopilot module, an integrator module, a communications module, and a navigation module; and c. an apically open front section forming a payload chamber, the rear section being separated from the front section by a bulkhead; 20. The UAV of claim 18, comprising:

20. The UAV of claim 1 , wherein the aft horizontal inverted airfoil section has a negative angle of attack between −1° and −5°.