IP Library Patent Application 16409605
Patent Application
App. No. 16/409,605

Differential Rotor Speed Resonance Avoidance System

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Quick Facts
Patent No.
US None
App. No.
16/409,605
Abstract

An aircraft having a differential rotor speed resonance avoidance system. The aircraft includes an airframe having structural elements subject to resonant vibration at critical frequencies. A thrust array is coupled to the airframe. The thrust array includes at least four rotor systems distributed about the airframe, each rotor system operable over a range of rotor speeds. A flight control system is operably associated with the thrust array and is configured to independently control the rotor speed of each rotor system. While preserving flight dynamics during flight operations, the flight control system selectively increases the rotor speed of some of the rotor systems by a speed delta and decreases the rotor speed of others of the rotor systems by the speed delta to avoid generating excitation frequencies by the rotor systems at the critical frequencies.

Claims (37)

1 . An aircraft having a differential rotor speed resonance avoidance system, the aircraft comprising:

an airframe including structural elements subject to resonant vibration at critical frequencies;

a thrust array coupled to the airframe, the thrust array including at least four rotor systems distributed about the airframe, each rotor system operable over a range of rotor speeds; and

a flight control system operably associated with the thrust array and configured to independently control the rotor speed of each rotor system;

wherein, while preserving flight dynamics during flight operations, the flight control system selectively increases the rotor speed of some of the rotor systems by a speed delta and decreases the rotor speed of others of the rotor systems by the speed delta to avoid generating excitation frequencies by the rotor systems at the critical frequencies.

2 . The aircraft as recited in claim 1 wherein the at least four rotor systems further comprise a forward-port rotor system, a forward-starboard rotor system, an aft-port rotor system and an aft-starboard rotor system.

3 . The aircraft as recited in claim 1 wherein the at least four rotor systems further comprise six rotor systems including a forward-port rotor system, a forward-starboard rotor system, a mid-port rotor system, a mid-starboard rotor system, an aft-port rotor system and an aft-starboard rotor system.

4 . The aircraft as recited in claim 1 wherein the rotor systems further comprise ducted rotor systems or open rotor systems.

5 . The aircraft as recited in claim 1 wherein the structural element subject to resonant vibration are selected from the group consisting of fuselage structure, wing structure, tail structure or rotor system structure.

6 . The aircraft as recited in claim 1 wherein the rotor systems further comprise rotor blades selected from the group consisting of fixed pitch rotor blades or variable pitch rotor blades.

7 . The aircraft as recited in claim 1 wherein the speed delta further comprises a first speed delta and a second speed delta; and

wherein the flight control system increases the rotor speed of at least two rotor systems by the first speed delta, decreases the rotor speed of at least two rotor systems by the first speed delta, increases the rotor speed of at least one rotor system by the second speed delta and decreases the rotor speed of at least one rotor system by the second speed delta to avoid generating excitation frequencies by the rotor systems at the critical frequencies.

8 . The aircraft as recited in claim 1 wherein the speed delta further comprises a resonance avoidance component and a pitch component.

9 . The aircraft as recited in claim 1 wherein the speed delta further comprises a resonance avoidance component and a roll component.

10 . The aircraft as recited in claim 1 wherein the speed delta further comprises a resonance avoidance component and a yaw component.

11 . The aircraft as recited in claim 1 wherein, during differential rotor speed resonance avoidance operations, total lateral forces remain unchanged, thereby preserving flight dynamics.

12 . The aircraft as recited in claim 1 wherein, during differential rotor speed resonance avoidance operations, total fore/aft forces remain unchanged, thereby preserving flight dynamics.

13 . The aircraft as recited in claim 1 wherein, during differential rotor speed resonance avoidance operations, total altitude forces remain unchanged, thereby preserving flight dynamics.

14 . The aircraft as recited in claim 1 wherein, during differential rotor speed resonance avoidance operations, total pitch moments remain unchanged, thereby preserving flight dynamics.

15 . The aircraft as recited in claim 1 wherein, during differential rotor speed resonance avoidance operations, total roll moments remain unchanged, thereby preserving flight dynamics.

16 . The aircraft as recited in claim 1 wherein, during differential rotor speed resonance avoidance operations, total yaw moments remain unchanged, thereby preserving flight dynamics.

17 . The aircraft as recited in claim 1 wherein the critical frequencies are preprogrammed into the flight control system.

18 . The aircraft as recited in claim 1 further comprising:

a vibration sensor system position on the aircraft; and

a vibration analyzing engine configured to receive vibration data from the vibration sensor system during flight and to identify critical frequencies for the flight control system.

19 . An aircraft having a differential rotor speed resonance avoidance system, the aircraft comprising:

an airframe including structural elements subject to resonant vibration at critical frequencies;

a thrust array coupled to the airframe, the thrust array including a forward-port rotor system, a forward-starboard rotor system, an aft-port rotor system and an aft-starboard rotor system; and

a flight control system operably associated with the thrust array and configured to independently control the rotor speed of each rotor system;

wherein, during flight operations, the flight control system selectively increases the rotor speed of some of the rotor systems by a speed delta and decreases the rotor speed of others of the rotor systems by the speed delta to avoid generating excitation frequencies by the rotor systems at the critical frequencies; and

wherein, during differential rotor speed resonance avoidance operations, total lateral forces remain unchanged, total fore/aft forces remain unchanged, total altitude forces remain unchanged, total pitch moments remain unchanged, total roll moments remain unchanged and total yaw moments remain unchanged, thereby preserving flight dynamics.

20 . An aircraft having a differential rotor speed resonance avoidance system, the aircraft comprising:

an airframe including structural elements subject to resonant vibration at critical frequencies;

a thrust array coupled to the airframe, the thrust array including a forward-port rotor system, a forward-starboard rotor system, a mid-port rotor system, a mid-starboard rotor system, an aft-port rotor system and an aft-starboard rotor system; and

a flight control system operably associated with the thrust array and configured to independently control the rotor speed of each rotor system;

wherein, during flight operations, the flight control system selectively increases the rotor speed of the forward and aft rotor systems on a first side of the aircraft by a first speed delta, decreases the rotor speed of the forward and aft rotor systems on a second side of the aircraft by the first speed delta, decreases the rotor speed of the mid rotor system on the first side of the aircraft by a second speed delta and increases the rotor speed of the mid rotor system on the second side of the aircraft by the second speed delta, to avoid generating excitation frequencies by the rotor systems at the critical frequencies; and

wherein, during differential rotor speed resonance avoidance operations, total lateral forces remain unchanged, total fore/aft forces remain unchanged, total altitude forces remain unchanged, total pitch moments remain unchanged, total roll moments remain unchanged and total yaw moments remain unchanged, thereby preserving flight dynamics.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 18, 2021
From: BELL TEXTRON INC.
To: TEXTRON INNOVATIONS INC.
Reel/Frame 055640/0671 →
CHANGE OF NAME Recorded Oct 31, 2019
From: BELL HELICOPTER TEXTRON INC.
To: BELL TEXTRON INC.
Reel/Frame 050900/0673 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 10, 2019
From: KNOLL, JONATHAN A.; CHOI, JOUYOUNG JASON; PARHAM, THOMAS CLEMENT, JR.
To: BELL HELICOPTER TEXTRON INC.
Reel/Frame 049146/0030 →