IP Library › Granted Patent US 11,753,154
Granted Patent B2
US 11,753,154 · App. 17/370,817 · Granted Sep 12, 2023

Tilt rotor aircraft noise reduction

Inventors: Matthew P. Misiorowski (Arlington, TX); Joseph H. Schmaus (Fort Worth, TX)
Assignee: Textron Innovations Inc.
B64C27/001B64C27/605B64C29/0033
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Quick Facts
Patent No.
US 11,753,154
App. No.
17/370,817
Granted
Sep 12, 2023
Kind
B2
Abstract

A control system for a multi-rotor aircraft is described that results in lower operating noise. Allowing blades to flap during flight reduces aerodynamic interference as blades pass by other aircraft components, such as wings or the fuselage. Pitch links coupled to a rotational swashplate can be used to allow flapping during flight. The swashplates can allow the canting of the rotors to change a rotational or out-of-plane angle of the blades to decrease noise.

Claims (34)

1. A control system for a tilt rotor aircraft, comprising:

two or more rotors each configured to rotate two or more blades;

a stationary swashplate on each of the two or more rotors, the stationary swashplate coupled to two or more control inputs and configured to be stationary relative to the two or more rotors, the two or more control inputs operable to adjust an angle of the stationary swashplate;

a rotational swashplate on each of the two or more rotors and located above the stationary swashplate, each rotational swashplate coupled to the two or more blades by two or more pitch links, each rotational swashplate configured to rotate with the two or more rotors, the two or more pitch links configured to adjust a pitch angle of the two or more blades; and

a computing device operable to receive input from one or more users, to manipulate the two or more control inputs and to manipulate the two or more pitch links to allow the two or more blades to flap during at least a portion of a flight, the computing device further operable to manipulate the two or more control inputs to simultaneously cant the two or more blades of each of the two or more rotors away from a fuselage comprising the tilt rotor aircraft so as to increase a distance between the two or more blades and the fuselage.

2. The control system of claim 1 wherein the stationary swashplate is operable to cant the two or more rotors and the computing device is further configured to adjust the canting of the two or more rotors in response to input from the one or more users.

3. The control system of claim 1 further comprising a scissor link coupled to each rotational swashplate.

4. The control system of claim 1 wherein the computing device is operable to cant the two or more rotors and to allow the two or more blades to flap at the same time.

5. The control system of claim 1 wherein each of the two or more pitch links are coupled to the two or more blades by a pitch horn.

6. The control system of claim 1 wherein the computing device comprises a flight control system of the tilt rotor aircraft control system.

7. The control system of claim 1 wherein the computing device is operable to manipulate the two or more pitch links to allow the two or more blades to flap while the tilt rotor aircraft is in cruise mode.

8. The control system of claim 1 wherein the computing device is operable to allow the two or more blades to flap without user input during a flight.

9. A multi-rotor aircraft comprising:

a fuselage;

two or more rotors coupled to the fuselage;

two or more blades coupled to each rotor and configured to be rotated by the two or more rotors;

a stationary swashplate on each of the two or more rotors, the stationary swashplate coupled to two or more control inputs and configured to be stationary relative to the rotation of the two or more rotors, the two or more control inputs operable to adjust an angle of the stationary swashplate and thereby adjust an out-of-plane angle of the two or more blades;

a rotational swashplate on each of the two or more rotors located above the stationary swashplate, each rotational swashplate coupled to the two or more blades by two or more pitch links, each rotational swashplate configured to rotate with the two or more blades, the two or more pitch links configured to adjust a pitch angle of the two or more blades; and

a computing device operable to receive input from one or more users, to manipulate the two or more control inputs and to manipulate the two or more pitch links to allow the two or more blades to flap during at least a portion of a flight, the computing device further operable to manipulate the two or more control inputs to simultaneously cant the two or more blades of each of the two or more rotors away from a fuselage comprising the tilt rotor aircraft so as to increase a distance between the two or more blades and the fuselage.

10. The multi-rotor aircraft of claim 9 wherein the multi-rotor aircraft comprises a tilt rotor aircraft.

11. The multi-rotor aircraft of claim 9 wherein the multi-rotor aircraft comprises four rotors.

12. The multi-rotor aircraft of claim 9 wherein the multi-rotor aircraft comprises six rotors.

13. The multi-rotor aircraft of claim 9 wherein the computing device is operable to receive input wirelessly from a remote user.

14. The multi-rotor aircraft of claim 9 further comprising a scissor link coupled to each stationary swashplate.

15. The multi-rotor aircraft of claim 9 further comprising a scissor link coupled to each rotational swashplate.

16. The multi-rotor aircraft of claim 9 wherein each of the two or more pitch links are coupled to the two or more blades by a pitch horn.

17. A method of controlling a multi-rotor aircraft, comprising:

receiving, by an aircraft control system, a request for noise reduction;

allowing, by the aircraft control system, two or more blades to flap during at least a portion of a flight, the two or more blades coupled to two or more rotors;

receiving, by the aircraft control system, a second request for noise reduction;

and

simultaneously canting, by the aircraft control system, the two or more blades of each of the two or more rotors away from a fuselage comprising the multi-rotor aircraft so as to increase a distance between the two or more blades and the fuselage.

18. The method of claim 17 wherein allowing the two or more blades to flap comprises manipulating one or more swashplates, each of the one or more swashplates coupled to one of the two or more rotors.

19. The method of claim 18 wherein manipulating the one or more swashplates comprises adjusting a rotational angle of the two or more rotors.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 22, 2022
From: BELL TEXTRON INC.
To: BELL TEXTRON RHODE ISLAND INC.
Reel/Frame 059066/0546 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 22, 2022
From: BELL TEXTRON RHODE ISLAND INC.
To: TEXTRON INNOVATIONS INC.
Reel/Frame 059066/0561 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 9, 2021
From: MISIOROWSKI, MATTHEW P.; SCHMAUS, JOSEPH H.
To: BELL TEXTRON INC.
Reel/Frame 056805/0751 →
Continuity (1)
Related Publication 20230009101A1 · Jan 12, 2023
Cited By (2)
US 12,448,121 US 12,552,526