IP Library Granted Patent US 11,142,311
Granted Patent B2
US 11,142,311 · App. 16/154,342 · Granted Oct 12, 2021

VTOL aircraft for external load operations

Inventors: John Richard McCullough (Weatherford, TX); Paul K. Oldroyd (Azle, TX)
Assignee: Textron Innovations Inc.
B64C29/02B64C11/46B64C39/024B64C39/08B64C2201/021B64C2201/088B64C2201/104B64C2201/108B64C2201/128
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Quick Facts
Patent No.
US 11,142,311
App. No.
16/154,342
Granted
Oct 12, 2021
Kind
B2
Abstract

An aircraft operable to transition between thrust-borne lift in a VTOL orientation and wing-borne lift in a biplane orientation. The aircraft includes an airframe having first and second wings with first and second pylons extending therebetween. The first and second wings each having first and second outboard nacelle stations. A two-dimensional distributed thrust array is attached to the airframe. The thrust array including a plurality of outboard propulsion assemblies coupled to the first and second outboard nacelle stations of the first and second wings. A flight control system is coupled to the airframe and is operable to independently control each of the propulsion assemblies. A cargo hook module is coupled to the airframe. The cargo hook module is operable for external load operations.

Claims (37)

1. An aircraft operable to transition between thrust-borne lift in a VTOL orientation and wing-borne lift in a biplane orientation, the aircraft comprising:

an airframe having first and second wings having wingtips and first and second pylons extending between the first and second wings inboard of the wingtips, the first and second wings each having first and second outboard nacelle stations positioned outboard of the first and second pylons proximate the wingtips, the airframe having a longitudinal axis and a lateral axis in the VTOL orientation;

a two-dimensional distributed thrust array attached to the airframe, the thrust array including a plurality of outboard propulsion assemblies coupled to the first and second outboard nacelle stations proximate the wingtips of the first and second wings;

a flight control system coupled to the airframe and operable to independently control each of the propulsion assemblies; and

a cargo hook module coupled to the airframe, the cargo hook module operable for external load operations;

wherein, in the VTOL orientation, the first wing is forward of the cargo hook module and the second wing is aft of the cargo hook module; and

wherein, in the biplane orientation, the first wing is below the cargo hook module and the second wing is above the cargo hook module.

2. The aircraft as recited in claim 1 wherein the cargo hook module is coupled between the first and second pylons.

3. The aircraft as recited in claim 1 wherein the cargo hook module further comprises a fixed cargo hook.

4. The aircraft as recited in claim 1 wherein the cargo hook module further comprises a winch mounted cargo hook.

5. The aircraft as recited in claim 1 wherein the cargo hook module further comprises a remote cargo hook.

6. The aircraft as recited in claim 1 wherein the outboard propulsion assemblies are thrust vectoring propulsion assemblies.

7. The aircraft as recited in claim 1 wherein the outboard propulsion assemblies are omnidirectional thrust vectoring propulsion assemblies.

8. The aircraft as recited in claim 7 wherein, in the VTOL orientation and in a level flight attitude with both the longitudinal axis and the lateral axis extending in a horizontal plane, the flight control system is operable to translate the aircraft responsive to controlling the speed and the thrust vector of each of the outboard propulsion assemblies.

9. The aircraft as recited in claim 7 wherein, in the VTOL orientation and in an inclined flight attitude with at least one of the longitudinal axis and the lateral axis extending out of a horizontal plane, the flight control system is operable to translate the aircraft responsive to controlling the speed and the thrust vector of each of the outboard propulsion assemblies.

10. The aircraft as recited in claim 7 wherein, in the VTOL orientation and in an inclined flight attitude with at least one of the longitudinal axis and the lateral axis extending out of a horizontal plane, the flight control system is operable to maintain hover stability responsive to controlling the speed and the thrust vector of each of the outboard propulsion assemblies.

11. The aircraft as recited in claim 1 wherein the first and second wings each have first and second inboard nacelle stations; and

wherein the thrust array further includes a plurality of inboard propulsion assemblies coupled to the first and second inboard nacelle stations of the first and second wings.

12. The aircraft as recited in claim 11 wherein the outboard propulsion assemblies are omnidirectional thrust vectoring propulsion assemblies and the inboard propulsion assemblies are non thrust vectoring propulsion assemblies.

13. The aircraft as recited in claim 11 wherein the inboard propulsion assemblies are longitudinal thrust vectoring propulsion assemblies and the outboard propulsion assemblies are lateral thrust vectoring propulsion assemblies.

14. The aircraft as recited in claim 11 wherein the outboard propulsion assemblies are longitudinal thrust vectoring propulsion assemblies and the inboard propulsion assemblies are lateral thrust vectoring propulsion assemblies.

15. The aircraft as recited in claim 11 wherein the first and second pylons each have an inboard nacelle station; and

wherein the thrust array further includes an inboard propulsion assembly coupled to each of the inboard nacelle stations of the first and second pylons.

16. The aircraft as recited in claim 15 wherein the outboard propulsion assemblies are omnidirectional thrust vectoring propulsion assemblies and the inboard propulsion assemblies are non thrust vectoring propulsion assemblies.

17. The aircraft as recited in claim 1 wherein the first and second pylons each have an inboard nacelle station; and

wherein the thrust array further includes an inboard propulsion assembly coupled to each of the inboard nacelle stations of the first and second pylons.

18. The aircraft as recited in claim 17 wherein the outboard propulsion assemblies are omnidirectional thrust vectoring propulsion assemblies and the inboard propulsion assemblies are non thrust vectoring propulsion assemblies.

19. An aircraft operable to transition between thrust-borne lift in a VTOL orientation and wing-borne lift in a biplane orientation, the aircraft comprising:

an airframe having first and second wings having wingtips and first and second pylons extending between the first and second wings inboard of the wingtips, the first and second wings each having first and second inboard nacelle stations positioned proximate the first and second pylons and first and second outboard nacelle stations positioned outboard of the first and second pylons proximate the wingtips, the first and second pylons each having an inboard nacelle station, the airframe having a longitudinal axis and a lateral axis in the VTOL orientation;

a two-dimensional distributed thrust array attached to the airframe, the thrust array including a plurality of non thrust vectoring inboard propulsion assemblies and a plurality of omnidirectional thrust vectoring outboard propulsion assemblies, the inboard propulsion assemblies coupled to the inboard nacelle stations of the wings and the pylons, the outboard propulsion assemblies coupled to the outboard nacelle stations proximate the wingtips of the wings;

a flight control system coupled to the airframe and operable to independently control each of the propulsion assemblies; and

a cargo hook module coupled between the first and second pylons, the cargo hook module operable for external load operations;

wherein, in the VTOL orientation, the first wing is forward of the cargo hook module and the second wing is aft of the cargo hook module; and

wherein, in the biplane orientation, the first wing is below the cargo hook module and the second wing is above the cargo hook module.

20. The aircraft as recited in claim 19 wherein, in the VTOL orientation and in a level flight attitude with both the longitudinal axis and the lateral axis extending in a horizontal plane, the flight control system is operable to translate the aircraft responsive to controlling the speed and the thrust vector of each of the outboard propulsion assemblies;

wherein, in the VTOL orientation and in an inclined flight attitude with at least one of the longitudinal axis and the lateral axis extending out of the horizontal plane, the flight control system is operable to translate the aircraft responsive to controlling the speed and the thrust vector of each of the outboard propulsion assemblies; and

wherein, in the VTOL orientation and in an inclined flight attitude with at least one of the longitudinal axis and the lateral axis extending out of the horizontal plane, the flight control system is operable to maintain hover stability responsive to controlling the speed and the thrust vector of each of the outboard propulsion assemblies.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 5, 2019
From: BELL HELICOPTER TEXTRON INC.
To: TEXTRON INNOVATIONS INC.
Reel/Frame 050922/0223 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 8, 2018
From: MCCULLOUGH, JOHN RICHARD; OLDROYD, PAUL K.
To: BELL HELICOPTER TEXTRON INC.
Reel/Frame 047096/0409 →
Continuity (4)
Continuation In Part 15972431 · May 7, 2018
Continuation In Part 15606242 · May 26, 2017
Continuation In Part 15200163 · Jul 1, 2016
Related Publication 20190031339A1 · Jan 31, 2019
Cited By (1)
US 12,195,180