Aircraft with extendable components

DE602016094294T2Active Publication Date: 2025-12-03ANDURIL IND INC
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Patent Information

Application Number
DE602016094294
Authority / Receiving Office
DE · DE
Patent Type
Patents
Current Assignee / Owner
Priority Date
2016-04-06
Filing Date
2016-04-21
Publication Date
2025-12-03
Estimated Expiration
2036-04-21

AI Technical Summary

Technical Problem

Current compact unmanned aerial vehicle configurations are limited in flight range, endurance, and payload capacity, and require additional mechanisms for aerodynamic adjustments during deployment.

Method used

A telescoping wing system with trailing-edge hinged ailerons, deployable stabilizers, and a sweeping gearbox that allows for a compact storage configuration to transition into a deployed and expanded configuration, enhancing aerodynamic efficiency and payload capacity through telescoping and sweeping mechanisms.

Benefits of technology

The system improves flight endurance, payload capacity, and enables efficient deployment without external aids, allowing for a wider range of missions with optimized aerodynamic performance and controlled flight transitions.

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Description

FIELD OF DISCLOSURE

[0001] The present disclosure generally relates to unmanned aerial vehicles.BACKGROUND

[0002] Unmanned aerial vehicles may be used for a plurality of applications. Such applications comprise commercial applications including surveillance and filming, and for military applications, reconnaissance and tactical missions. In certain circumstances, compact configurations can be beneficial to enabling particular types of missions. For example, compact configurations reduce space and enable various deployment options. However, current compact configurations are limited in flight range, endurance, and payload capacity.

[0003] US2009 / 206193 discloses an apparatus for increasing an aerodynamic surface area of an aircraft, including coaxially disposed first and second elongated airfoils and an inflatable device arranged to move the first airfoil coaxially relative to the second airfoil. The second airfoil has a root end fixed to the aircraft and an opposite outboard end, and the first airfoil is arranged to move axially between a retracted position generally inboard of the outboard end of the second airfoil and a deployed position generally outboard thereof. When the movable airfoil is deployed, a latching mechanism locks it in position. The inflatable device can include a collapsible duct that is sealed at one end and coupled at a second end to an inflating source, such as a reservoir of a compressed gas or a pyrotechnic gas generator.

[0004] US2010 / 148011 discloses a telescoping structure including an alignment mechanism to keep aligned an inner structure member and outer structure member, as the members translate relative to one another to extend or retract the telescoping structure. The alignment mechanism includes multiple parts that are mechanically coupled to respective parts of the structure members. The parts of the alignment mechanism may also be used to provide force for extending or retracting the telescoping structure.

[0005] US2011 / 001016 discloses an aircraft wing including a stationary root section and a telescoping end section slideable in the span wise direction, where the loads for the root and extendable end sections are carried predominately by the airfoil composite skins. In a single-telescoping configuration the telescoping end section slides within the root section as it extends and retracts during flight, and in another, the telescoping end section slides over the root section as it extends and retracts during flight. The aircraft wing can also include a second telescoping distal end section, and can sweep back during flight, while the end sections or distal end sections are extended or retracted.

[0006] US2009 / 072094 discloses a system having deployable elements, including a deployable surface and an adaptive actuator including a polymer foam. The system comprises a vehicle including a deployable wing comprising an exterior surface. The exterior surface may be adjusted by adjusting the shape, size, position, and / or orientation of the adaptive actuator.

[0007] US6,056,237 discloses a sonotube-compatible unmanned aerial vehicle, UAV, apparatus for launch and control of the UAV. The UAV comprises modular sections including a nose section, a payload section, a wing and fuel tank section, and a powerplant section. The modular sections are attached to adjacent sections by uniform lock sealing rings and related components.BRIEF OVERVIEW

[0008] According to the presented invention there is provided a telescoping wing system according to the appended claims.

[0009] As will be detailed below, it should be understood that a single wing may be comprised of two left and right wing sections (a first section and a second section). The two wing sections may, throughout the present disclosure, be referred to as two wings or two wing segments. Accordingly, in some embodiments, the two wings may stacked against the fuselage in the first arrangement, the stacked configuration comprising a top wing and a bottom wing with the top wing vertically offset from the bottom wing in the first arrangement. In yet further embodiments, at a transition from the first arrangement to the second arrangement, the two wings may be configured to telescope to expand a wing span in the second arrangement.

[0010] Both the foregoing brief overview and the following detailed description provide examples and are explanatory only. Accordingly, the foregoing brief overview and the following detailed description should not be considered to be restrictive.BRIEF DESCRIPTION OF THE DRAWINGS

[0011] The accompanying drawings explain certain embodiments of the present disclosure. This text is included for illustrative, non-limiting, explanatory purposes of certain embodiments detailed in the present disclosure. In the drawings: FIG. 1A illustrates an unmanned aerial vehicle with deployable components in a first configuration; FIG. 1B illustrates the unmanned aerial vehicle with deployable components in a second configuration; FIG. 1C illustrates the unmanned aerial vehicle with deployable components in a third configuration; FIG. 2A illustrates a cut-away view of a sweeping gearbox coupled to an actuator; FIG. 2B illustrates a view of the sweeping gearbox; FIG. 2C illustrates another view of the sweeping gearbox and a direction of wing sweeping; FIG. 2D illustrates a set of schematic drawings for enabling the sweeping gearbox to allow wings to have dihedral and incidence when deployed and to lay flat while stowed; FIG. 3 illustrates an example of telescoping wings; FIG. 4A illustrates a fairing in a first configuration; FIG. 4B illustrates the fairing in a second configuration; FIG. 4C illustrates the fairing comprising magnets; FIG. 5A illustrates components for controlling ailerons; FIG. 5B illustrates a plurality of configurations for the ailerons; FIG. 6 illustrates one example of internal configuration of the UAVDC; and FIG. 7 is a block diagram of a system including a computing device for enabling operation of the apparatus. DETAILED DESCRIPTION

[0012] As a preliminary matter, it will readily be understood by one having ordinary skill in the relevant art that the present disclosure has broad utility and application. Furthermore, any embodiment discussed and identified as being "preferred" is considered to be part of a best mode contemplated for carrying out the embodiments of the present disclosure. Other embodiments also may be discussed for additional illustrative purposes in providing a full and enabling disclosure.

[0013] Accordingly, while embodiments are described herein in detail in relation to one or more embodiments, it is to be understood that this disclosure is illustrative and exemplary of the present disclosure, and are made merely for the purposes of providing a full and enabling disclosure.

[0014] Thus, for example, any sequence(s) and / or temporal order of steps of various processes or methods that are described herein are illustrative and not restrictive. Accordingly, it should be understood that, although steps of various processes or methods may be shown and described as being in a sequence or temporal order, the steps of any such processes or methods are not limited to being carried out in any particular sequence or order, absent an indication otherwise. Indeed, the steps in such processes or methods generally may be carried out in various different sequences and orders while still falling within the scope of the present invention. Accordingly, it is intended that the scope of patent protection is to be defined by the issued claim(s) rather than the description set forth herein.

[0015] Additionally, it is important to note that each term used herein refers to that which an ordinary artisan would understand such term to mean based on the contextual use of such term herein. To the extent that the meaning of a term used herein-as understood by the ordinary artisan based on the contextual use of such term-differs in any way from any particular dictionary definition of such term, it is intended that the meaning of the term as understood by the ordinary artisan should prevail.

[0016] Furthermore, it is important to note that, as used herein, "a" and "an" each generally denotes "at least one," but does not exclude a plurality unless the contextual use dictates otherwise. When used herein to join a list of items, "or" denotes "at least one of the items," but does not exclude a plurality of items of the list. Finally, when used herein to join a list of items, "and" denotes "all of the items of the list."

[0017] The following detailed description refers to the accompanying drawings. Wherever possible, the same reference numbers are used in the drawings and the following description to refer to the same or similar elements. While many embodiments of the disclosure may be described, modifications, adaptations, and other implementations are possible. For example, substitutions, additions, or modifications may be made to the elements illustrated in the drawings, and the methods described herein may be modified by substituting, reordering, or adding stages to the disclosed methods. Accordingly, the following detailed description does not limit the disclosure. Instead, the scope of the disclosure is defined by the appended claims. The present disclosure contains headers. It should be understood that these headers are used as references and are not to be construed as limiting upon the subjected matter disclosed under the header.

[0018] The present disclosure includes many aspects and features. Moreover, while many aspects and features relate to, and are described in, the context of unmanned aerial vehicles, embodiments of the present disclosure are not limited to use only in this context. For example, embodiments of the present disclosure may be employed on manned and unmanned aerial vehicles.I. OVERVIEW

[0019] This overview is provided to introduce a selection of concepts in a simplified form that are further described below. This overview is not intended to identify key features or essential features of the claimed subject matter. Nor is this overview intended to be used to limit the claimed subject matter's scope.

[0020] An improved unmanned aerial vehicle with deployable components (UAVDC) is provided in the various embodiments disclosed herein. Various aspects of the UAVDC lead to improvements over conventional unmanned aerial vehicles, including, but not limited to, for example, improved portability, deployment, post-deployment transition to flight control, aerodynamic efficiency and flight endurance, payload capacity, and maximized mission capability over conventional unmanned aerial vehicles. As will be detailed below, the UAVDC of the present disclosure includes a number of features that lead to the aforementioned improvements, including, but not limited to, for example, trailing-edge hinged ailerons, deployable stabilizers, gearbox, fairing, and sweeping and telescoping wing implementations.

[0021] The UAVDC may be configured in a plurality of arrangements. A first configuration may be a compact arrangement suitable in, for example, storage and launching embodiments, while a second configuration may be a deployed arrangement suitable in, for example, launch recovery and flight, and a third configuration may be an expanded configuration suitable in, for example, high-endurance flight. As will be detailed below, the UAVDC may be fully functional and operable in intermediary configurations between these three configurations to provide some of the advantages of the improved UAVDC at higher airspeeds.

[0022] FIG. 1A illustrates an example of a first configuration (e.g., compact arrangement 102). Compact arrangement 102 may enable convenient storage and transportation of the UAVDC. In addition, compact arrangement 102 may enable certain launch methods, such as a launch from, for example, a tube or a release from, for example, an aircraft's weapons / bomb bay or wing attachment.

[0023] Consistent with embodiments of the present disclosure, the UAVDC may be deployed after launch into the deployed arrangement that is suitable to survive the high aerodynamic loads of launch recovery and high-speed flight. During the flight, the UAVDC may be further deployed into the expanded arrangement that is suitable for efficient, long-endurance flight. It should be understood that the term "deploy" and "deployment" may refer to the deployable components moving from one UAVDC configuration to another.

[0024] FIG. 1B illustrates an example of a second configuration (e.g. deployed arrangement 104 ). By using a deployed arrangement 104 , embodiments may be able sustain the higher aerodynamics loads associated with flight at a high airspeed or high-g pull-up maneuvers. In this way, at least one of the intermediary configurations (e.g., the deployed arrangement 104 ) may be used in a launch recovery, wherein the UAVDC has been launched and has not slowed to an airspeed that the third configuration can sustain. Furthermore, the deployed arrangement may be able to sustain high-speed flight more efficiently than the expanded arrangement.

[0025] FIG. 1C illustrates an example of a third configuration (e.g., an expanded arrangement 105 ). By using the expanded arrangement the UAVDC may be able to achieve an increased level of aerodynamic efficiency (i.e. flight endurance) as well as an increased payload weight capacity. In various embodiments, the second configuration (e.g., deployed arrangement 104 ) and the third configuration (e.g., expanded arrangement 105 ) may be referred to as a common arrangement, but having wingspans that depend on the extent of the telescoped displacement of the wings.

[0026] As will be detailed below, during transformation from compact arrangement 102 to expanded arrangement 105, a UAVDC consistent with embodiments of the present disclosure may implement, but not be limited to, at least one of the following: wings 110 that may be configured to sweep and / or telescope, one or more trailing-edge hinged control surfaces that enable roll control ("ailerons") 120, one or more fold-away actuating stabilizers 125, one or more flexible aerodynamic fairings 130, one or more propulsion mechanisms (e.g., fold-away propeller 135 ), and a modular payload 140.

[0027] In further embodiments, the UAVDC may comprise intermediary configurations between the first configuration and second configuration or the second configuration and the third configuration. In the intermediary configurations, wings 110 may be at various stages of sweep or telescoping. It should be understood that the use of trailing-edge ailerons 120 and externally telescoped outer wing panels 310 may enable the UAVDC to continuously maintain controlled flight during transitions from the first configuration to the third configuration.

[0028] In the first configuration, prior to deployment, the aforementioned wings 110, stabilizers 125, and propeller 135 may be stowed against a fuselage 106 of the UAVDC (i.e., folded and out of the way during vehicle launch). Fairing 130 may flex to accommodate wings 110 in their stowed configuration and then be configured to flex in a way so as to accommodate a sweeping motion of wings 110. Once launched, the UAVDC may transform from the first configuration into the second configuration. In the second configuration, wings 110 may be deployed by way of an outward sweeping motion (with fairing 130 flexing in a way to enable the sweeping motion). FIG. 2C illustrates an outward sweeping motion 250. As will be further detailed below, outward sweeping motion 250 may be enabled by, but not limited to, for example, a sweeping gearbox coupled to an actuator. FIGs. 2A-2C illustrate an example of a sweeping gearbox 205 coupled to an actuator 210. Further, sweeping motion 250 of wings 110 may enable configurable wing angles to optimize aerodynamics. Fairing 130 may be designed to accommodate wings 110 in the stored configuration as well as sweeping motion 250. Further, fairing 130 may close around wings 110 in order to maintain the aerodynamic integrity of the UAVDC, as shown in FIG. 4B.

[0029] By implementing a gearbox 205 configured to sweep wings 110 as well as orient wings 110 with optimal dihedral angles 265 and angles of incidence 275, embodiments of the present disclosure may provide improvements over conventional systems. For example, in conventional systems, aircrafts that implement sweeping wings and wing angle adjustments require use of secondary mechanics to orient the wing angles. Such secondary mechanics add to weight and cost, as well as provide additional modes of failure.

[0030] Still consistent with embodiments of the present disclosure, wings 110 may further be configured to telescope (i.e., expand in length) in the third configuration. Such telescoping wings may comprise a fixed inner section and one or more substantially hollow outer sections that slide along adjacent sections to provide a longer wingspan once deployed. FIG. 3 illustrates an example of telescoping wings 110 comprising a fixed inner section 305 that attaches to fuselage 106 and an outer section 310. In further embodiments, a plurality of nested outer wing sections may be implemented. In this way, wings 110 may be stored in a compact arrangement 102 and later extend (i.e., telescope) to provide additional lift during the expanded arrangement 105. As will be detailed below, a telescoping mechanism ("telescoping means") consistent with embodiments of the present disclosure may employ, for example, a belt system 315, a scissors mechanism, or a piston mechanism to extend and / or retract the wings.

[0031] The telescoping means consistent with embodiments of the present disclosure enable a maximized wing span while maintaining roll control throughout the transition between configurations. For example, as the inner section is fixed, the outer sections may comprise a substantially hollow interior so as to enable the fixed inner section to reside within the interior of the outer section. The outer section may then slide outwards (i.e., telescopes), away from fuselage 106, thereby exposing the fixed inner section as it telescopes. The trailing-edge mounted control surfaces (e.g., ailerons 120 ) are mounted to the outer section and are therefore exposed and operable throughout the deployment and telescoping process; in this way, the wingspan of the UAVDC can expand while continually maintaining controlled flight during the transition (e.g., regardless of the outer section position relative to the inner section position).

[0032] In some embodiments, inner section 305 connects to the fuselage 106, while outer section 310 may be telescoped outward from fuselage 106. Trailing-edge ailerons 120 may connect to outer section 310 to enable roll control. In this way, trailing-edge ailerons 120 may provide roll control even when wings 110 are not extended. Trailing-edge ailerons 120 may be connected by a hinge at a rear-most point of the wing in order to maximize an internal volume of the outer section 310, which, in turn, maximizes the overall span of the wing 110 in its third configuration. In various embodiments, other configurations of wing control surfaces, such as spoilers, may be implemented.

[0033] By implementing hollow outer telescoping wing section 310 and trailing-edge hinged aileron 120, a plurality of improvements are introduced. A typical telescoping wing utilizes telescoping outer panels that are stored within the fixed inner panel, this precludes the use of ailerons mounted to the outer panels until the wing panels reach a telescoped state. Furthermore, conventional aileron implementations are configured within the wing surface itself, thereby reduce the amount of internal volume available in the wing. The reduced internal volume decreases the available depth of an interior wing section placement in a telescoping wing system, thereby leading to a smaller displacement in a telescoped configuration. In this way, conventional roll control surfaces may reduce the final length of a telescoped wing.

[0034] Attaching trailing-edge hinged ailerons 120 to the outer section 310 of the telescoping wing 110 enables the inner section 305 of telescoping wing 110 to be stowed further within the interior of outer section 310 while still providing the necessary roll control to maintain flight in the deployed arrangement, before the wings are telescoped. In turn, when wings 110 are telescoped, the displacement of the outer section 310 is increased by a range greater than that of other telescoping wing systems, thereby leading to the benefits of increased wingspan over a conventional aerial vehicle capable of compact configurations. Further still, extending outer section 310 of the telescoping wing 110 from the fuselage further enables the trailing-edge hinged ailerons 120 to provide increased roll control of the UAVDC.

[0035] Consistent with embodiments of the present disclosure, the control surfaces (e.g., trailing-edge hinged ailerons 120 ) may be operable in all of the UAVDC's configurations. That is, the control surfaces may be operable in the compact arrangement 102, the deployed arrangement 104, and in the expanded arrangement 105. Furthermore, the control surfaces may be operable during the transitionary phases between each of those arrangement.

[0036] For example, trailing-edge hinged ailerons 120 may be operable in between the first configuration (e.g., compact arrangement 102 ) and the deployed arrangement 104 (e.g., engaged in operation at approximately a 45-degree sweep) in order to provide post-launch stabilization for the UAVDC. Moreover, trailing-edge hinged ailerons 120 may be operable when the UAVDC is in the deployed arrangement 104 to provide flight control, as well as the transitionary stage between the deployed arrangement 104 and the expanded arrangement 105. Finally, trailing-edge hinged ailerons 120 may be operable in the expanded arrangement 105 to provide additional, more effective flight control.

[0037] One or more stabilizers 125 of the UAVDC may be deployed in the intermediary configurations, second configuration, and / or the third configuration. In further embodiments, stabilizers 125 may be deployed upon interfacing with air resistance. For example, when stabilizers 125 interface with an airstream, a resulting drag force may cause stabilizers 125 to move into a deployed configuration. Servos may actuate the stabilizers 125 once stabilizers 125 are deployed.

[0038] Deployable control surfaces, embodied in the present disclosure as stabilizers 125, are improved over conventional systems, for example, by enabling automatic deployment without requiring controlling components (e.g., actuators and linkages) to adjust. Further, by implementing a flexible fairing, the aerodynamic efficiencies may be improved. It should be understood that not all embodiments of the UAVDC may comprise each of the aforementioned components, while other embodiments of the UAVDC may comprise additional components, and yet other embodiments still may comprise various combinations of the embodiments described in the present disclosure.

[0039] Propeller 135 of the UAVDC may deploy upon interfacing with the air resistance. In further embodiments, springs and / or centripetal force from a rotation of propeller 135 may be implemented in deploying propeller 135.

[0040] A UAVDC consistent with embodiments of the present disclosure may be configured to receive a modular payload 140. In some embodiments, modular payload 140 may remain fixed in both the first and second configuration. By way of non-limiting example, modular payload 140 may be configured into the UAVDC, serving as a nose of fuselage 106.

[0041] Embodiments of the present disclosure may provide improvements over conventional unmanned aerial vehicles including, but not limited to the following examples: Improved aerodynamic efficiency which increases flight endurance; Increased payload capacity; Launch and transition to flight without the assistance of external aerodynamic treatments such as a parachute or balloon; and Maximized mission capability (i.e. its modular payload and reconfigurable and highly efficient airframe enable the UAVDC to efficiently perform a wider array of missions such as, for example, but not limited to, Intelligence Surveillance Reconnaissance (ISR), Signals Intelligence (SIGINT), weather, geophysical, environmental, and the like.

[0042] Both the foregoing overview and the following detailed description provide examples and are explanatory only. Accordingly, the foregoing overview and the following detailed description should not be considered to be restrictive. Further, features or variations may be provided in addition to those set forth herein. For example, embodiments may be directed to various feature combinations and sub-combinations described in the detailed description.II. CONFIGURATION

[0043] FIG. 1C illustrates an UAVDC consistent with embodiments of the present disclosure. Embodiments of the present disclosure may comprise a fuselage 106, one or more antennas 705, power source 1310, wings 110 that may be configured to sweep and / or telescope, stabilizers 125, and payload 140. Further embodiments may comprise a propulsion mechanism, such as, for example, propeller 135.

[0044] Fuselage 106 may be comprised of, but not limited to, for example, carbon fiber. Further, fuselage 106 may be comprised of, but not limited to, for example, a composite material (e.g., fiberglass, Kevlar, Spectra). In various embodiments, plastics may be used, including, but not limited to 3D printed plastics. Fuselage 106 may take an aerodynamic configuration to facilitate speed and reduced air resistance.

[0045] It should be understood that the UAVDC may be configured with various propulsion mechanisms, and that propeller 135 is just one illustrated variation. Other propulsion mechanisms may include, but are not limited to, rockets, jet engines and compressed gas jets. Moreover, in some embodiments, no propulsion may be required at all, as the UAVDC may have characteristics of a glider. In such embodiments, the UAVDC may be launched from, for example, a tube or released from, for example, an airplane within gliding range of its mission target. The various properties of the UAVDC, as described in various embodiments herein, may provide the UAVDC with sufficient flight time to accomplish its mission without requiring additional propulsion.

[0046] While propeller 135 is shown as having two propeller blades, it should be understood that more or fewer propeller blades may be utilized. For example, only a single propeller blade may be used.

[0047] Although many of the figures illustrate propeller 135 in a rear-mounted position, it should be understood that, in embodiments where a propulsion mechanism is provided, propeller 135 may be configured at different positions of the UAVDC. For example, in some embodiments, propeller 135 may mount to the front of the UAVDC instead of the rear.

[0048] Referring back to FIG. 1A, the UAVDC may have a wing arrangement comprised of a single wing with two wing sections. The wing arrangement may be segmented in a left wing section and a right wing section to enable variable sweep at approximately a lateral plane of symmetry between the left wing section and the right wing section. In some embodiments, the wing sections may be a left wing and a right wing (e.g., wings 110 ). Still consistent with embodiments of the present disclosure, however, the wing arrangement may be a single wing comprised of the two wing sections.

[0049] The wing arrangement being configurable in a first arrangement (e.g., corresponding to the first configuration of the UAVDC), a second arrangement (e.g., corresponding to the second or third configuration of the UAVDC), and a third arrangement. In the first arrangement, the left wing section and the right wing section may be stowed against the fuselage at a first sweep deployment angle. In the second arrangement, the wing arrangement may be fully deployed for flight at a second sweep deployment angle. A third arrangement may comprise the wing sections at any wing deployment angle in between the first sweep deployment angle and the second sweep deployment angle.

[0050] To enable the sweep deployment angle, the UAVDC may comprise a sweeping gearbox configured to pivot the left wing section and the right wing section to enable the wing arrangement to sweep from the first arrangement to the second arrangement at any sweep deployment angle. The UAVDC may comprise an actuator coupled to the sweeping gearbox configured to actuate the sweeping of the wing arrangement at any sweep deployment angle.

[0051] Throughout the sweeping motion, fairing 130 may be configured to change from an open configuration to a closed configuration. Fairing 130 may begin in an open configuration by flexing to allow the first wing section and the second wing section to be stowed under the fairing in the first arrangement, and move to a closed configuration to provide aerodynamic and / or environmental advantages in the second arrangement.

[0052] The wings 110 may be stowed in a launch configuration as shown in first configuration 102. In some embodiments, the launch configuration of wings 110 may comprise a vertical offset. Wings 110 may be swept to a flight configuration by sweeping gearbox 205 (e.g., a sweeping means). For example, actuator 210 attached to sweeping gearbox 205 may comprise a worm gear 220 coupled to each wing and a worm 225 coupled to worm gears 220 and configured to spread the wings in sweeping motion 250. Sweeping gearbox 205 may sit on wing mount 215. Various other means may be used in sweeping wings 110, including, but not limited to, springs. In some embodiments, wings 110 may not need to be fully swept in order to enable flight. For example, the UAVDC may be capable of flight at an angle less than full sweep.

[0053] Gearbox 205 may be configured such that wings 110 may be stored in the launch configuration with a first set of angles with respect to each other (e.g., flat with respect to each other) and with respect to the fuselage (e.g., flat with respect to the fuselage). Gearbox 205 may further be configured to cause wings 110 to be deployed with optimal incidence angles and dihedral angles in the swept configuration. This may be achieved by orienting each wing's axis of rotation as well as each wing's attachment to worm gear 220 (or "wing pivot"). As such, gearbox 205 may comprise two pivot axes around which the wings may sweep. FIG. 2D illustrates a schematic for illustrating geometry to enable a gearbox 205. For example, the axis of rotation may be oriented such that its angle in the Y-Z plane 270, as shown in reference to axes 255, may match an angle of attachment 265 to worm gear 220. Further the angle in the X-Z plane 260 may match an angle of attachment 275 to worm gear 220. With this configuration, wings 110 may be stowed flat with respect to each other and with respect to the fuselage, while deployed with optimal dihedral and incidence angles. The optimal dihedral angle may be the combination of the angle in the X-Z plane 260 and the angle of attachment 265; the optimal angle of incidence may be the combination of the angle in the X-Y plane and the angle of attachment 275. In this way, a single mechanism may both sweep wings 110 and orient wings 110 to desired dihedral angles and angles of incidence. The single mechanism for sweeping and orienting wings may reduce weight and complexity, thus increasing endurance and decreasing cost.

[0054] The UAVDC may comprise fairing 130 to reduce drag while enabling the outward sweeping motion 250 of wings 110. FIGs. 4A and 4B illustrate fairing 130 in a first configuration 1105 and a second configuration 1110, respectively. Fairing 130 may be made of a flexible material (e.g., fiberglass) such that it may bend out of the way as wings 110 sweep. In various embodiments, other materials may be used, including, but not limited to carbon fiber, Kevlar, and sheet metal. Fairing 130 may comprise wing hole cutouts 1115 to fit around wings 110's profile as wings 110 reach second configuration 1110.

[0055] As illustrated in FIG. 4A, fairing 130 in first configuration 1105 may be resting upon the sweeping wings 110 in compact arrangement 102 and undergoing tension from being held in a strained ("buckled") state. Slits 1120 may be implemented in fairing 130 to enable fairing 130 to flex adequately to accommodate sweeping wings 110 in compact arrangement 102. Upon the UAVDC entering second configuration (e.g., expanded arrangement 105), fairing 130 may flex as illustrated in FIG. 4B to close around the wing as wings 110 reach wing hole cutouts 1115. In second configuration 1110, fairing 130 may be in an unstrained state as it securely fits around wing 110 to minimize drag. If fairing 130 comprises a fibrous composite material, it may be desirable to use a fiber orientation to facilitate buckling and flexibility in the laminate (e.g. using + / -45 degree plies may exhibit greater flexibility and buckle easily in 0 and 90 degree directions).

[0056] In further embodiments, magnets 1125 may be employed to further lock fairing 130 around the swept wings 110, as shown in FIG. 4C. Magnets 1125 may be located on fuselage 106. Magnets of opposite polarity or a magnetic metal 1130 may be on fairing 130 to receive magnets 1125's magnetic attraction. In further embodiments, the location of the magnets 1125 and corresponding magnetic metal 1130 may be reversed.

[0057] As wings 110 are being swept, or, in some embodiments, after wings 110 have completely been swept, wings 110 telescope. According to the presently claimed invention, inner section 305 attaches to fuselage 106 of the UAVDC. Inner section 305 is stowed at least partially within outer section 310 during the compact first configuration. Outer section 310 comprises a substantially hollow interior. An exterior surface of interior section 305 is stowed against and interior surface of the exterior section 310. To reach the second configuration, outer section 310 slides along inner section 305 to extend outwards from the fuselage 106. As outer section 310 slides along inner section 305, an increasing portion of inner section 305 is exposed. The wingspan of wings 110 may be approximately the length of outer section 310 and the exposed portion of interior section 305. Both inner section 305 and outer section 310 may employ an aerodynamic profile to provide lift during flight. Some embodiments may utilize belt system 315 for telescoping wings 110.

[0058] Referring now to Figure 3, belt system 315 may comprise belt pulleys 325, which may attach to the inner wing section 305 ("second section"). At least one pulley 325 may be driven by an actuator 320. In further embodiments, a plurality of pulleys 325 may be driven by a plurality of actuators 320. Belt 330 may loop around pulleys 325. Notches in belt 330 may enable actuator 320 to move belt 330. One of the straight lengths 331 of belt 330 may be contained within the inner wing section 305, while the other length 332 of belt 330 may be contained in a groove on the bottom of the inner wing section 305 ("second section") that is exposed to the outer wing section 310 ("first section") prior to the telescoping of wings 110.

[0059] To enable telescoping, belt 330 may be attached to at least a portion of outer wing section 310 along length 332. In this way, actuator 320's rotation not only causes a movement of belt 330 but also a displacement of outer wing section 310 due to its attachment to belt 330. Accordingly, actuation in direction 335 would cause section 310 to be extended outward from the fuselage 106, thereby increasing the wingspan of the UAVDC. As outer section 310 travels outward, inner section 305 is simultaneously withdrawn from the interior of outer section 310, increasing the wingspan of the UAVDC. Accordingly, as wings 110 are telescoped, length 332 may become exposed but the groove may prevent the belt 330 from protruding from the bottom of the exposed inner wing section 305.

[0060] Attaching outer section 310 to length 332 may be implemented by, for example, but not limited to, a clamp, screw or adhesive. In some embodiments, belt 330 may comprise a length of fiber-reinforced rubber material. By stripping rubber from each end of the belt to expose fibers, further attachment mechanisms for attaching belt 330 to outer section 310 may be available. For example, the exposed fibers may be tied to the outer wing section 310 (e.g., to holes in outer wing section 310 ). The tied fibers may further be secured, for example, with an adhesive. In this way, ends of belt 330 may be attached to create a connected loop without the use of a coupler clamping the ends, thereby eliminating bulky parts commonly used in the art.

[0061] Consistent with embodiments of the present disclosure, belt system 315 may provide a lighter and / or a more compact mechanism for telescoping over conventional telescoping systems. In some embodiments, the telescoping of the wings may be reversed by reversing direction 335 of actuator 320 to retract wings 110. In further embodiments consistent with the present disclosure, components of belt system 315 may be reversed, such that outer wing section 310 may be affixed to fuselage 106 and inner wing section 305 may be telescoped outward. In yet further embodiments, a similar belt system may be implemented for extending a boom from fuselage 106. For example, instead of attaching belt 330 to outer wing section 310, belt 330 may attach to the boom.

[0062] According to the presently claimed invention, and referring to FIG. 5A, wings 110 comprise ailerons 120. Ailerons 120 are attached via a hinge 1215 to the trailing edge of outer section 310. In this way, ailerons 120 minimize interference with outer section 310's internal volume as compared to conventional ailerons. By optimizing outer section 310's internal volume, inner section 305 may have an optimized profile and an increased span that would otherwise be limited by the more commonly-used ailerons. For example, inner section 305 may, when stowed within the first compact configuration, overlap at least a portion of the length of the trailing edge aileron attachment to outer section 310. In this way, a ratio of the surface area between the inner section 305 and outer section 310 may be increased. Maximizing wing span can significantly increase airframe efficiency, flight endurance, and payload capacity. Hinge types that may enable such trailing edge ailerons 120 include, but are not limited to, a living hinge, or other flexure bearing.

[0063] Further, by mounting ailerons 120 to the outer section 310 extending away from fuselage 106, ailerons 120 may enable roll control throughout the wing deployment phase. This means the UAVDC may be flown with positive roll control regardless of outer section 310's position relative to inner section 305, which can be beneficial during launch and flight recovery phases where transition to stable flight can be carried out with lower structural loads on the air frame when the wings are configured in their non-telescoped position. This may also be beneficial as the span may be reduced or increased in flight, to maximize aerodynamic efficiency without losing roll control. FIG. 5A shows a configuration of components for controlling the ailerons. Each aileron 120 may be positioned by a servo 1320, as illustrated in FIG. 6, through a linkage 1210. Each servo 1320 may, in some embodiments, be positioned within outer wing section 310. In further embodiments, ailerons 120 may be operated by other means, including, but not limited to, gears or shafts. Each servo 1320 may be controlled by controller 1500

[0064] FIG. 5B illustrates possible configurations for ailerons 120, including, but not limited to, a tucked position 1230, which minimizes stowed volume, a partially folded position 1235, and a fully deployed position 1240. Servo 1320 may be operated through a control wire positioned within outer wing section 310 and inner wing section 305. The control wire may extend from fuselage 106 via inner wing section 305. An end of wing section 305 may comprise an opening through which the control wire may extend into the interior of outer wing section 310, connecting to servo 1320. In various embodiments, the wire may comprise sufficient length to accommodate the telescoping of the wings. While the wings are not telescoped, the control wire may be spooled or neatly folded within either of the wing sections.

[0065] A number of internal components may be mounted within an interior 1305 of fuselage 106. FIG. 6 illustrates one example of internal configuration of the UAVDC in which a power source 1310 may be positioned within the interior of fuselage 106. Power source 1310 may comprise, for example, a fuel tank or one or more batteries. Various components of the UAVDC may be connected to power source 1310, including, but not limited to, modular payload 140, controller 1500, sweeping gearbox actuator 210, control mechanisms for ailerons (e.g., servos 1320 ), servos 410 for stabilizers 125, a motor 1315 to drive the propeller 135, and antenna 705. Embodiments of the UAVDC comprising a propulsion device (e.g., propeller 135 ) may be powered by alternative power sources, such as, for example, an internal combustion engine. In such embodiments, a fuel source for the internal combustion engine (e.g., gas tank) may be positioned within interior 1305 of fuselage 106.

[0066] Internal components may further include, for example, but not be limited to, the following components: sweeping gearbox 205 and actuator 210 employed to sweep wings 110; control mechanisms for ailerons 120 (e.g., servos 1320 ) for operating ailerons 120 and servos 410 for operating stabilizers 125 ); a motor 1315 for driving propeller 135; driveshaft 1330 for coupling motor 1315 to propeller 135 and an on-board controller 1500 for controlling the deployment, flight, and operation of the UAVDC. The illustrated configuration of internal components is just one possible configuration, and other embodiments are possible. The interior components may be distributed to balance the weight in an optimal way for flight.III. OPERATION

[0067] The UAVDC may be fired from a tube launched from a craft or dropped from a carrier aerial vehicle. The compact arrangement 102 of the UAVDC's first configuration (as specified, for example, with reference to FIG. 1A) may enable the UAVDC to be tube-launched as, for example, a missile. In some embodiments, once dropped from a carrier aerial vehicle, the UAVDC may be aerodynamically designed (as illustrated) and with such a weight distribution that it may self-orient from a tumbling drop into a dive.

[0068] Upon launch, the stabilizers 125 and propeller 135 may deploy.

[0069] Controller 1500 (e.g., on-board computing-device) may automatically engage actuators and automatically engages the wing deployment mechanisms instantly or after a set amount of time has passed since the launch. According to the presently claimed invention, engagement occurs upon certain reading from on-board sensors (e.g., including, but not limited to, sensors deployed in modular payload 140 ). In particular, according to the presently claimed invention, wing deployment and extension is dependent on certain in-flight factors such as, for example, velocity, acceleration, and leveling of the UAVDC. Controller 1500 is configured to trigger deployment of various components upon the satisfaction of certain pre-set conditions. Such conditions may be defined prior to deployment.

[0070] Actuator 210 may drive sweeping gearbox 205 to sweep wings 110. In some embodiments, the UAVDC may be capable of controlling sustained flight once wings 110 sweep out 45 degrees. As wings 110 reach full sweep, wings 110 may move within wing hole cutouts 1115 of fairing 130, which has opened due to the strain of the sweeping motion 250, and relocked with the aid of magnets positioned within the fuselage. Accordingly, fairing 130 may automatically snap shut around the profile of wings 110 to improve aerodynamics. Magnets 1125 may further lock fairing 130 around wings 110.

[0071] As wings 110 begin sweeping, or after wings 110 are fully swept, wings 110 may begin telescoping. For example, belt system 315 may pull outer section 310 along inner section 305 to telescope wings 110. The wing sweep angles and telescoped positions may further be dynamically adjusted in flight.

[0072] Further, in embodiments where deployable, modular payload 140 may deploy from its first arrangement to its second arrangement. For example, modular payload 140 may comprise a plurality of sensing devices better situated for performance at a deployed position (e.g., an extended boom). Such deployment may occur upon the post-launch stabilization segment of the UAVDC's flight.

[0073] In some embodiments, the operator may control the operation of the UAVDC during the mission. For example, the operator may be able to control the flight components, including, but not limited to, the wing deployment mechanisms (e.g., sweeping gearbox 205, actuator 210, and belt system 315 ), propeller 135, stabilizers 125, ailerons 120, and further deployable components. In other embodiments, on-board controller 1500 may be pre-configured with mission control data.

[0074] Embodiments of the UAVDC may be used for a plurality of missions including, but not limited to, data capture, payload deployment, and providing a telecommunications relay. In addition to communicating for flight control, embodiments of the UAVDC may be controlled in data capture and transmission. In further embodiments, the UAVDC may enable the operator to release modular payload 140.

[0075] The mission may be terminated by flying the UAVDC to a recapture location where it may be recovered. Further, the UAVDC may terminate a mission by crash landing. For example, the UAVDC may be flown into rocks or a hard surface in order to destroy functional components. In further embodiments, the UAVDC may be equipped with an explosive device such that it may be self-destructed upon mission completion.IV. ON-BOARD SYSTEM ARCHITECTURE

[0076] The UAVDC may comprise, but not be limited to, an on-board computing module. The computing module may be in operative configuration and communication with, for example, but not be limited to, modular payload 140, sweeping gearbox actuator 210, control mechanisms for ailerons 120 (e.g., servos 1320), servos for stabilizers 125, a motor 1315 to drive the propeller 135, power source 1310, global positioning system, various telemetry sensors, and antenna. Further, the computing device may be in operative communication with another computing device consistent with the description herein, and may comprise, but not be limited to, a desktop computer, laptop, a tablet, or mobile telecommunications device. Such remote devices may be used to control and / or configure on-board computing module (e.g., deployment conditions, mission controls, and the like).

[0077] Moreover, the UAVDC may be in operative communication with a centralized server, such as, for example, a cloud computing service. Although operation has been described to be performed, in part, by a controller 1500, it should be understood that, in some embodiments, different operations may be performed by different networked elements in operative communication with controller 1500.

[0078] Embodiments of the present disclosure may comprise a system having a memory storage and a processing unit. The processing unit may be coupled to the memory storage.

[0079] FIG. 15 is a block diagram of a system including controller 1500. Consistent with an embodiment of the disclosure, the aforementioned memory storage and processing unit may be implemented in a computing device, such as controller 1500 of FIG. 15. Any suitable combination of hardware, software, or firmware may be used to implement the memory storage and processing unit. For example, the memory storage and processing unit may be implemented with controller 1500 or any of other UAVDC devices and components 1518, in combination with controller 1500. Other UAVDC devices and components 1518 may comprise, for example, but not be limited to, modular payload 140, sweeping gearbox actuator 210, control mechanisms for ailerons 120 (e.g., servos 1320 ), servos for stabilizers 125, a motor 1315 to drive the propeller 135, power source 1310, global positioning system, various telemetry sensors, and antenna. The aforementioned system, device, and processors are examples and other systems, devices, and processors may comprise the aforementioned memory storage and processing unit, consistent with embodiments of the disclosure.

[0080] With reference to FIG. 15, a system consistent with an embodiment of the disclosure may include a computing device, such as controller 1500. In a basic configuration, controller 1500 may include at least one processing unit 1502 and a system memory 1504. Depending on the configuration and type of computing device, system memory 1504 may comprise, but is not limited to, volatile (e.g. random access memory (RAM)), non-volatile (e.g. read-only memory (ROM)), flash memory, or any combination. System memory 1504 may include operating system 1505, one or more programming modules 1506, and may include a program data 1507. Operating system 1505, for example, may be suitable for controlling controller 1500's operation. In one embodiment, programming modules 1506 may include flight control application 1520. Furthermore, embodiments of the disclosure may be practiced in conjunction with a graphics library, other operating systems, or any other application program and is not limited to any particular application or system. This basic configuration is illustrated in FIG. 15 by those components within a dashed line 1508.

[0081] Controller 1500 may have additional features or functionality. For example, controller 1500 may also include additional data storage devices (removable and / or non-removable) such as, for example, magnetic disks, optical disks, or tape. Such additional storage is illustrated in FIG. 15 by a removable storage 1509 and a non-removable storage 1510. Computer storage media may include volatile and nonvolatile, removable and non-removable media implemented in any method or technology for storage of information, such as computer readable instructions, data structures, program modules, or other data. System memory 1504, removable storage 1509, and non-removable storage 1510 are all computer storage media examples (i.e., memory storage.) Computer storage media may include, but is not limited to, RAM, ROM, electrically erasable read-only memory (EEPROM), flash memory or other memory technology, CD-ROM, digital versatile disks (DVD) or other optical storage, magnetic cassettes, magnetic tape, magnetic disk storage or other magnetic storage devices, or any other medium which can be used to store information and which can be accessed by controller 1500. Any such computer storage media may be part of device 1500. Controller 1500 may also be operative with input device(s) 1512 such as a keyboard, a mouse, a pen, a sound input device, a touch input device, etc. Input device(s) 1512 may be used to, for example, manually access and program controller 1500. Output device(s) 1514 such as a display, speakers, a printer, etc. may also be included. The aforementioned devices are examples and others may be used.

[0082] Controller 1500 may also contain a communication connection 1516 that may allow device 1500 to communicate with other UAVDC devices and components 1518 (e.g., antenna 705 ), such as over an encrypted network in a distributed computing environment. Communication connection 1516 is one example of communication media. Communication media may typically be embodied by computer readable instructions, data structures, program modules, or other data in a modulated data signal, such as a carrier wave or other transport mechanism, and includes any information delivery media. The term "modulated data signal" may describe a signal that has one or more characteristics set or changed in such a manner as to encode information in the signal. By way of example, and not limitation, communication media may include wired media such as a wired network or direct-wired connection, and wireless media such as acoustic, radio frequency (RF), infrared, and other wireless media. The term computer readable media as used herein may include both storage media and communication media.

[0083] As stated above, a number of program modules and data files may be stored in system memory 1504, including operating system 1505. While executing on processing unit 1502, programming modules 1506 (e.g., controller application 1520) may perform processes including, for example, one or more of stages or portions of stages of method 1400 as described above. Controller application 1520 may be configured to operate UAVDC devices and components 1518 and receive instructions from, for example, communications connections module 1516. The aforementioned process is an example, and processing unit 1502 may perform other processes.

[0084] While certain embodiments of the disclosure have been described, other embodiments may exist. Furthermore, although embodiments of the present disclosure have been described as being associated with data stored in memory and other storage mediums, data can also be stored on or read from other types of computer-readable media, such as secondary storage devices, like hard disks, solid state storage (e.g., USB drive), or a CD-ROM, a carrier wave from the Internet, or other forms of RAM or ROM. Further, the disclosed methods' stages may be modified in any manner, including by reordering stages and / or inserting or deleting stages, without departing from the disclosure.

Claims

1. A telescoping wing (110) system for an aerial vehicle comprising: an inner section (305) configured to be stowed within an interior of an outer section (310, 310's) in a first configuration (102), wherein the inner section (305) is configured to be attached to a fuselage (106) of the aerial vehicle; a telescoping mechanism configured to, after determination by a controller (1500) that a pre-set condition has been satisfied, automatically extend the outer section (310) along a length of the inner section (305) to increase a wingspan in a second configuration (105); and a control surface (120) attached to a trailing-edge of the outer section (310), wherein the control surface (120) attaches to the outer section (310) via a hinge (420) mounted on an external surface of the trailing-edge.

2. The telescoping wing (110) system of claim 1, wherein the pre-set condition comprises a set amount of time having passed after a detected launch.

3. The telescoping wing (110) system of claim 1, wherein a length of an exposed portion of the inner section (305) increases as the outer section (310) is displaced by at least a portion of the length between a first end of the inner section (305) and a second end of the inner section (305), and wherein displacement of the outer section (310) along the length of the exposed portion of the inner section (305) is suitable to extend the wingspan of the aerial vehicle by approximately the length of the exposed portion of the inner section (305) to form an increased wingspan having at least a portion comprised of approximatively the length of the outer section (310) and the length of the exposed portion of the inner section (305).

4. The telescoping wing (110) system of claim 1, wherein the inner section (305) and the outer section (310) are configured, in the first configuration (102), to be stowed against a fuselage (106) of the aerial vehicle; wherein the inner section (305) and the outer section (310) are configured, in the first configuration (102), to be deployed at an angle relative to the fuselage (106) of the aerial vehicle; and wherein the inner section (305) and the outer section (310) are configured to transition from the first configuration (102) to the second configuration (105).

5. The telescoping wing (110) system of claim 1, wherein the telescoping wing (110) system is configured to dynamically adjust wing (110) sweep angle after satisfaction of the pre-set condition.

6. The telescoping wing (110) system of claim 1, wherein the outer section (310, 310's) is dynamically adjustable after the wingspan is in the second configuration (105).

7. The telescoping wing (110) system of claim 1, wherein the telescoping mechanism comprises a belt system (315).

8. The telescoping wing (110) system of claim 7, wherein the belt (330) system is attached to the outer section (310) to increase the wingspan to the second configuration (105).

9. The telescoping wing (110) system of claim 1, wherein the outer section (310) comprises at least one flight control mechanism, the flight control mechanism comprising the control surface (120).

10. The telescoping wing (110) system of claim 9, wherein the at least one flight control mechanism provides increased roll control after extending the outer section (310).

11. The telescoping wing (110) system of claim 9, wherein the control surface (120) comprises trailing-edge hinged ailerons (120).

12. The telescoping wing (110) system of claim 9, wherein the at least one flight control mechanism maintains roll control as the outer section (310) extends along the inner section (305).

13. The telescoping wing (110) system of claim 1, wherein the outer section (310) extends to an intermediate position between the first configuration (102) and the second configuration (105) to decrease drag generated by the telescoping wing (110) system.