Vertical takeoff and landing (VTOL) unmanned aerial vehicle (UAV)

US10054958B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-10054958-B2
Application numberUS-201514695693-A
CountryUS
Kind codeB2
Filing dateApr 24, 2015
Priority dateMay 8, 2014
Publication dateAug 21, 2018
Grant dateAug 21, 2018

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

One example embodiment includes a vertical takeoff and landing (VTOL) unmanned aerial vehicle (UAV). The VTOL UAV includes a flight control system configured to provide avionic control of the VTOL UAV in a hover mode and in a level-flight mode. The VTOL UAV also includes a body encapsulating an engine and the flight control system. The VTOL UAV further includes a propeller disk coupled to the engine and configured to provide vertical thrust in the hover mode and to provide horizontal thrust for flight during the level-flight mode.

First claim

Opening claim text (preview).

What is claimed is: 1. A vertical takeoff and landing (VTOL) unmanned aerial vehicle (UAV) comprising: a flight control system configured to provide avionic control of the VTOL UAV in a hover mode and in a level-flight mode, wherein the flight control system is configured to takeoff and land the VTOL UAV in the hover mode and to implement mission objectives in the level-flight mode; a body encapsulating an engine and the flight control system, the body being configured as a collapsible flying-wing and comprising landing posts on an aft-section of the body; a propeller disk located on a fore-section of the body and coupled to the engine and configured to provide vertical thrust in the hover mode and to provide horizontal thrust for flight during the level-flight mode; and a plurality of retractable wings, coupled to the body of the VTOL UAV, each configured to fold toward a side of the body, the plurality of retractable wings being in a retracted state in at least a portion of the hover mode and in an extended state in the level-flight mode to provide aerodynamic lift in the level-flight mode. 2. The vehicle of claim 1 , wherein the propeller disk comprises a pair of contra-rotating propellers axially-fixed along a central axis of the body. 3. The vehicle of claim 1 , further comprising a first control flap and a second control flap that are each coupled to the body and are respectively offset equally and oppositely with respect to a central axis of the body and substantially entirely within a propeller wash of the propeller disk that is defined by a diameter of the propeller disk, the first and second control flaps being controlled by the flight control system to provide rotation and lateral motion control of the VTOL UAV during the hover mode. 4. The vehicle of claim 1 , wherein the side is a first side, the plurality of retractable wings are each configured to fold toward the first side of the body to accommodate placement of a payload on a second side of the body that is opposite the first side of the body. 5. The vehicle of claim 1 , wherein the plurality of retractable wings each comprise a control flap configured to provide avionic directional control in the level-flight mode. 6. The vehicle of claim 1 , wherein the flight control system comprises: a communications transceiver configured to transmit and receive communications signals via an antenna; a control input/output (I/O) system configured to transmit and receive I/O signals to control input and output components associated with the VTOL UAV; and a processor configured to implement mission objectives based on the communications signals and the I/O signals. 7. The vehicle of claim 6 , further comprising a memory configured to store at least one of a mission protocol and autonomous control parameters, such that the VTOL UAV is activated to takeoff, perform the mission objectives, and land, respectively, in an autonomous manner based on the at least one of the stored mission protocol and the autonomous control parameters. 8. The vehicle of claim 6 , wherein the communications signals comprise flight control signals that are transmitted from an external control station and are received by the communication transceiver, such that the VTOL UAV is configured to takeoff, perform the mission objectives, and land, respectively, based on the received flight control signals. 9. A method for controlling a vertical takeoff and landing (VTOL) unmanned aerial vehicle (UAV), the method comprising: activating an engine to rotate a propeller disk located on a fore-section of a body of the VTOL UAV to provide vertical thrust in a hover mode of the VTOL UAV corresponding to a substantially vertical orientation of the VTOL UAV to takeoff and land the VTOL UAV in the hover mode; changing an orientation of the VTOL UAV from the substantially vertical orientation to a substantially horizontal orientation at a second predetermined altitude that is greater than the first predetermined altitude via at least one of engine speed and control flaps that are coupled to the body and respectively offset equally and oppositely with respect to a central axis of the body of the VTOL UAV substantially entirely within a propeller wash of the propeller disk that is defined by a diameter of the propeller disk to implement mission objectives in a level-flight mode, wherein the body is configured as a collapsible flying-wing and comprises landing posts on an aft-section of the body; controlling the engine to rotate the propeller disk to provide horizontal thrust in a level-flight mode of the VTOL UAV corresponding to the substantially horizontal orientation of the VTOL UAV; and folding each of a plurality of retractable wings, coupled to the body, toward a side of the body, the plurality of retractable wings being in a retracted state in at least a portion of the hover mode and in an extended state in the level-flight mode to provide aerodynamic lift in the level-flight mode. 10. The method of claim 9 , wherein the propeller disk comprises a pair of contra-rotating propellers axially-fixed to a fore-section of and along a central axis of the body. 11. The method of claim 9 , wherein the side is a first side, wherein extending the plurality of retractable wings comprises unfolding the plurality of retractable wings from the first side of the body to accommodate placement of a payload on a second side of the body that is opposite the first side of the body. 12. The method of claim 9 , further comprising accessing at least one of mission protocol and autonomous control parameters from a memory, such that the VTOL UAV is activated to perform the takeoff procedure, to perform mission objectives, and to land, respectively, in an autonomous manner based on the accessed at least one of the mission protocol and the autonomous control parameters. 13. The method of claim 9 , further comprising receiving flight control signals via a communications transceiver, the flight control signals being transmitted from an external control station, such that the VTOL UAV is configured to perform the takeoff procedure, to perform mission objectives, and to land, respectively, based on the received flight control signals. 14. The method of claim 9 , further comprising: changing an orientation of the VTOL UAV from the substantially horizontal orientation to the substantially vertical orientation; decreasing the engine speed to switch from the level-flight mode to the hover mode with a decreasing altitude; retracting the plurality of wings to the body at the first predetermined altitude in the hover mode; and landing the VTOL UAV on a landing pad via landing posts on an aft-section of the body opposite the propeller disk. 15. The method of claim 9 , further comprising controlling the control flaps to provide at least one of rotation about a central axis of the body of the VTOL UAV and lateral motion of the body of the unmanned VTOL in a direction that is orthogonal with respect to the central axis. 16. A vertical takeoff and landing (VTOL) unmanned aerial vehicle (UAV) comprising: a flight control system configured to provide avionic control of the VTOL UAV in a hover mode for takeoff and landing procedures of the VTOL UAV and in a level-flight mode for a mission procedure of the VTOL UAV; a body encapsulating an engine and the flight control system and comprising a plurality of retractable wings being configured in a flying-wing configuration, the plurality of retractable wings each folding toward a side of a body of the VTOL UAV and being in a retracted state in at least a portion of the hover mod

Assignees

Inventors

Classifications

  • Arrangement or disposition on aircraft · CPC title

  • having its flight directional axis vertical when grounded · CPC title

  • B64C3/546Primary

    by foldable elements · CPC title

  • Adjustable control surfaces or members, e.g. rudders (trimming stabilising surfaces B64C5/10) · CPC title

  • Units of two or more coaxial propellers · CPC title

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What does patent US10054958B2 cover?
One example embodiment includes a vertical takeoff and landing (VTOL) unmanned aerial vehicle (UAV). The VTOL UAV includes a flight control system configured to provide avionic control of the VTOL UAV in a hover mode and in a level-flight mode. The VTOL UAV also includes a body encapsulating an engine and the flight control system. The VTOL UAV further includes a propeller disk coupled to the e…
Who is the assignee on this patent?
Creasman Son F, Northrop Grumman Systems Corp
What technology area does this patent fall under?
Primary CPC classification B64C3/546. Mapped technology areas include Operations & Transport.
When was this patent published?
Publication date Tue Aug 21 2018 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 1 related publication on this page (citations in our corpus or others sharing the same primary CPC).