IP Library Granted Patent US 8,590,827
Granted Patent B2
US 8,590,827 · App. 13/227,231 · Granted Nov 26, 2013

Rijke tube cancellation device for helicopters

Inventor: David Sparks (Fort Worth, TX)
Assignee: Textron Innovations Inc.
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Quick Facts
Patent No.
US 8,590,827
App. No.
13/227,231
Granted
Nov 26, 2013
Kind
B2
Abstract

An acoustic signature reduction system for application typically on an aircraft. The acoustic signature reduction system uses a controller, power supply, and a thermo-acoustic tube such as a Rijke tube or Sondhauss tube to generate a cancellation noise of equal amplitude and inverted to that of noise generated by rotor blades when rotating. Acoustic signature reduction system can use a damping valve to make an intermittent cancellation sound to match the n/rev signature of the rotor blades with respect to a given reference location. The n/rev timing is different depending on the reference location therefore a cone of silence is created. A forced air unit may also be used to modify the phase of the cancellation noise in order to move the cone of silence around the aircraft.

Claims (37)

1. An acoustic signature reduction system for an aircraft having a rotor blade compression noise, the system comprising:

a thermo-acoustic tube coupled to the aircraft, the thermo-acoustic tube having a pipe portion and one or more heating elements coupled to the pipe portion, each heating element being configured to heat air as the air flows through the pipe portion, thereby generating a cancellation noise; and

a controller operably connected to the thermo-acoustic tube for selectively adjusting the frequency, amplitude, and phase of the cancellation noise to reduce the acoustic signature of the aircraft with respect to a selective cancellation area;

wherein the cancellation area moves relative to the aircraft during flight.

2. The acoustic signature reduction system of claim 1 , wherein the aircraft is a plane, helicopter, tilt rotor aircraft, or unmanned aerial vehicle.

3. The acoustic signature reduction system of claim 1 , wherein the thermo-acoustic tube has one or more bends.

4. The acoustic signature reduction system of claim 1 , wherein the thermo-acoustic tube is coupled externally to the aircraft.

5. The acoustic signature reduction system of claim 1 , wherein the thermo-acoustic tube is coupled internally to the aircraft.

6. The acoustic signature reduction system of claim 1 , wherein the thermo-acoustic tube is rotatably coupled to the aircraft.

7. The acoustic signature reduction system of claim 1 , wherein the thermo-acoustic tube has one or more open ends.

8. The acoustic signature reduction system of claim 1 , wherein the heating element is moveable relative to the pipe portion.

9. The acoustic signature reduction system of claim 1 , wherein the controller uses wireless communications to control the thermo-acoustic tube.

10. The acoustic signature reduction system of claim 9 , wherein the controller is located remote to the aircraft, such that a person may access and control the thermo-acoustic tube without being on the aircraft.

11. The acoustic signature reduction system of claim 1 , further comprising:

a damping valve coupled to the thermo-acoustic tube for synchronizing the cancellation noise generated by the thermo-acoustic tube with that of the rotor blade compression noise as heard by an observer relative to the aircraft.

12. The acoustic signature reduction system of claim 1 , further comprising:

a forced air unit coupled to the thermo-acoustic tube for sending bursts of air into the thermo-acoustic tube to adjust the phase of the cancellation noise.

13. The acoustic signature reduction system of claim 1 , further comprising:

a screen coupled to the thermo-acoustic tube for preventing dirt, debris, and foreign objects from entering the thermo-acoustic tube.

14. An acoustic signature reduction system for an aircraft, the system comprising:

a thermo-acoustic tube coupled to the aircraft, the thermo-acoustic tube including a heating element and a pipe portion, the thermo-acoustic tube being configured to generate a cancellation noise;

a damping valve coupled to the thermo-acoustic tube for synchronizing the cancellation noise generated by the thermo-acoustic tube with that of rotor blade compression noises as heard by an observer relative to the aircraft;

a forced air unit coupled to the thermo-acoustic tube for adjusting the phase of the cancellation noise;

a controller having a user interface in communication with the thermo-acoustic tube, the damping valve, and the forced air unit, such that one or more of the phase, amplitude, and frequency of the cancellation noise can be adjusted; and

wherein the cancellation noise and rotor blade compression noise combine to produce a cancellation area wherein the rotor blade compression noise as heard by an observer is reduced;

wherein the controller continuously adjusts the cancellation noise during flight of the aircraft to maintain a reduced acoustic signature with respect to the cancellation area, the cancellation area moving with respect to the aircraft during flight.

15. The acoustic signature reduction system of claim 14 , wherein the user interface is an interactive digital device that enables the pilot to graphically see the location of the aircraft in relation to other objects, so as to select the cancellation area.

16. The acoustic signature reduction system of claim 15 , wherein the controller automatically adjusts one or more of the phase, amplitude, and frequency of the cancellation noise to compensate for relative motion between the aircraft and the cancellation area.

17. The acoustic signature reduction system of claim 14 , wherein the controller permits flight plans to be created and modified to optimize flight paths, while maintaining a reduced acoustic signature with respect to the cancellation area.

18. A method of flying an aircraft with an acoustic signature reduction system, the method comprising:

entering a cancellation area in a controller;

generating a flight plan based on the location and size of the cancellation area, such that a reduced acoustic signature is maintained in the cancellation area;

flying the aircraft along a determined flight path according to the flight plan; and

modifying the flight path based on data provided by the controller; and

generating a cancellation noise through a thermo-acoustic tube, the cancellation noise being selectively directed to the cancellation area to reduce the acoustic signature of the aircraft, the cancellation area moving relative to the aircraft during flight.

19. The method as in claim 18 , wherein the controller monitors and adjusts one or more of the phase, frequency, and amplitude of a cancellation noise as the aircraft moves relative to the cancellation area.

20. The method as in claim 18 , wherein the controller is incorporated into a flight control computer of the aircraft, such that the controller and flight control computer alter the flight plan of the aircraft without input from a pilot.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 31, 2012
From: BELL HELICOPTER TEXTRON INC.
To: TEXTRON INNOVATIONS INC.
Reel/Frame 029220/0745 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 17, 2012
From: SPARKS, DAVID
To: BELL HELICOPTER TEXTRON INC.
Reel/Frame 027881/0988 →
Continuity (1)
Related Publication 20130056581A1 · Mar 7, 2013