IP Library Granted Patent US 11,338,914
Granted Patent B2
US 11,338,914 · App. 16/435,547 · Granted May 24, 2022

Differential thrust vectoring system

Inventors: Kirk Landon Groninga (Keller, TX); Daniel Bryan Robertson (Southlake, TX)
Assignee: Textron Innovations Inc.
B64C27/80B64C5/06B64C11/001B64C13/24B64C27/20B64C27/52B64C27/57B64C27/58B64C29/0033F16H1/28
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Quick Facts
Patent No.
US 11,338,914
App. No.
16/435,547
Granted
May 24, 2022
Kind
B2
Abstract

A differential thrust vectoring system including a first thruster rotation assembly configured to rotate a first thruster relative of an aircraft, a second thruster rotation assembly configured to rotate a second thruster of an aircraft, and an actuator. The system is configured such that actuation of the actuator causes disparate rotation about the tilt axis of the first and second thrusters.

Claims (43)

1. A differential thrust vectoring system, comprising:

a first spindle configured to be coupled for common rotation about a tilt axis with a first thruster;

a second spindle configured to be coupled for common rotation about the tilt axis with a second thruster;

a planetary gear system coupled between the first spindle and the second spindle, the planetary gear system comprising:

a ring gear coupled for common rotation with either the first spindle or the second spindle;

a non-rotatable sun gear; and

a plurality of planetary gears coupled for common rotation with whichever of the first spindle and the second spindle that is not coupled for common rotation with the ring gear; and

an actuator configured to be coupled between the first spindle and an airframe;

wherein the differential thrust vectoring system is configured such that actuation of the actuator would cause disparate rotation about the tilt axis of the first spindle and the second spindle.

2. The differential thrust vectoring system of claim 1 , wherein the actuator is either a linear actuator or a rotary actuator.

3. The differential thrust vectoring system of claim 1 , wherein the actuator is configured to move between a first position, wherein a first thrust vector of the first thruster is substantially parallel to a second thrust vector of the second thruster, to a second position, wherein the first thrust vector is askew to the second thrust vector.

4. An aircraft, comprising:

a fuselage;

an airframe;

a first thruster having a first thrust vector;

a second thruster having a second thrust vector; and

a differential thrust vectoring system, comprising:

a first spindle coupled for common rotation about a tilt axis with the first thruster;

a second spindle coupled for common rotation about the tilt axis with the second thruster;

a planetary gear system coupled between the first spindle and the second spindle, the planetary gear system being configured such that when the actuator is in a forward-flight position the first thrust vector and the second thrust vector are substantially parallel and when the actuator is in a hover position the first thrust vector and the second thrust vector are skewed; and

an actuator coupled between the first spindle and the airframe;

wherein the differential thrust vectoring system is configured such that actuation of the actuator would cause rotation about the tilt axis of the first spindle and the second spindle; and

wherein the actuator is configured to assume the hover position in failure.

5. The aircraft of claim 4 , further comprising:

a main rotor;

wherein an angle between the first thrust vector and the second thrust vector are configured to counter a torque effect of the main rotor.

6. The aircraft of claim 5 , further comprising:

a vertical stabilizer configured to counter the torque effect of the main rotor during forward flight.

7. The aircraft of claim 4 , wherein the first thruster and the second thruster comprise ducted fans.

8. The aircraft of claim 4 , wherein the actuator is either a linear actuator or a rotary actuator, and the actuator is one of pneumatic, hydraulic, electric, and electromagnetic.

9. The aircraft of claim 4 , wherein the first spindle and the second spindle are configured to transmit at least one of mechanical, electrical, and hydraulic power therethrough.

10. The aircraft of claim 4 , wherein the differential thrust vectoring system is configured such that failure of the actuator will result in the first thrust vector and the second thrust vector assuming a predetermined skewed relationship.

11. A differential thrust vectoring system, comprising:

a first spindle configured to be coupled for common rotation about a tilt axis with a first thruster;

a second spindle configured to be coupled for common rotation about the tilt axis with a second thruster;

a planetary gear system coupled between the first spindle and the second spindle, the planetary gear system comprising:

a non-rotatable ring gear;

a plurality of planetary gears coupled for common rotation with either the first spindle or the second spindle; and

a sun gear coupled for common rotation with whichever of the first spindle and the second spindle that is not coupled for common rotation with the plurality of planetary gears; and

an actuator configured to be coupled between the first spindle and an airframe;

wherein the differential thrust vectoring system is configured such that actuation of the actuator would cause disparate rotation about the tilt axis of the first spindle and the second spindle.

12. The differential thrust vectoring system of claim 11 , wherein the actuator is either a linear actuator or a rotary actuator.

13. The differential thrust vectoring system of claim 11 , wherein the actuator is configured to move between a first position, wherein a first thrust vector of the first thruster is substantially parallel to a second thrust vector of the second thruster, to a second position, wherein the first thrust vector is askew to the second thrust vector.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 22, 2022
From: BELL TEXTRON INC.
To: BELL TEXTRON RHODE ISLAND INC.
Reel/Frame 059683/0567 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 22, 2022
From: BELL TEXTRON RHODE ISLAND INC.
To: TEXTRON INNOVATIONS INC.
Reel/Frame 059683/0722 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 10, 2019
From: GRONINGA, KIRK LANDON; ROBERTSON, DANIEL BRYAN
To: BELL HELICOPTER TEXTRON INC.
Reel/Frame 049418/0593 →
Continuity (1)
Related Publication 20200385110A1 · Dec 10, 2020
Cited By (1)
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