IP Library › Granted Patent US 11,649,037
Granted Patent B2
US 11,649,037 · App. 16/820,231 · Granted May 16, 2023

Low latency pitch adjustable rotors

Inventor: Thomas Skyler Sartorius (Long Beach, CA)
Assignee: The Boeing Company
B64C11/303B64C11/06B64C11/301B64C11/32B64C11/44
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Quick Facts
Patent No.
US 11,649,037
App. No.
16/820,231
Granted
May 16, 2023
Kind
B2
Abstract

Low latency pitch adjustable rotors are disclosed. A disclosed example rotor includes a rotor hub to rotate about a rotational axis, rotor blades coupled to the rotor hub, the rotor blades being pitch adjustable and having corresponding pitch angles, and a reaction hinge operatively coupled between the rotor hub and the rotor blades, the reaction hinge to move relative to the rotor hub in response to an angular acceleration or deceleration of the rotor hub to adjust the pitch angles.

Claims (36)

1. A rotor comprising:

a rotor hub to rotate about a rotational axis;

at least one actuator;

rotor blades having respective longitudinal axes, the rotor blades including respective tabs positioned in the rotor hub and at a same longitudinal position of the longitudinal axes, the tabs operatively coupled to the at least one actuator, the rotor blades being pitch adjustable and having corresponding pitch angles based on displacement of the tabs; and

a sensor communicatively coupled to the at least one actuator, the sensor to detect an angular acceleration or deceleration of the rotor hub, wherein the at least one actuator is configured to adjust the pitch angles based on the detected angular acceleration or deceleration of the rotor hub.

2. The rotor as defined in claim 1 , wherein the at least one actuator is to move at least one of the rotor blades in response to a change in torque.

3. The rotor as defined in claim 1 , further including an additional sensor to measure an orientation of at least one of the rotor blades, wherein the actuator moves the at least one of the rotor blades based on the orientation.

4. The rotor as defined in claim 1 , wherein the actuator is at least partially disposed within a cavity of the rotor hub.

5. The rotor as defined in claim 1 , wherein the actuator is directed by a controller to adjust the pitch angles based on the detected angular acceleration or deceleration of the rotor hub.

6. The rotor as defined in claim 1 , wherein the tabs are arranged as pairs on opposing radial sides of the respective longitudinal axes of the rotor blades.

7. The rotor as defined in claim 1 , further including lift analyzer circuitry to:

calculate an amount of lift to be generated by the rotor; and

based on the calculated amount of lift, determine an angular acceleration to be applied to the rotor.

8. The rotor as defined in claim 1 , further including thrust analyzer circuitry to:

calculate an amount of thrust to be generated by the rotor; and

based on the thrust calculation, determine an angular acceleration to the be applied to the rotor, wherein the at least one actuator is to adjust the pitch angles further based on the determined acceleration.

9. The rotor as defined in claim 1 , wherein the at least one actuator is configured to adjust the pitch angles to counteract a fluttering motion of the rotor blades.

10. The rotor as defined in claim 1 , wherein the rotor includes a cover panel to be removably couplable to the rotor hub for access to an internal volume of the rotor hub.

11. The rotor as defined in claim 1 , further including a second actuator, wherein the at least one actuator and the second actuator are coordinated to adjust the pitch angles.

12. The rotor as defined in claim 1 , wherein the at least one actuator is a piezo-electric actuator.

13. The rotor as defined in claim 1 , wherein the at least one actuator is a linear actuator.

14. The rotor as defined in claim 1 , wherein the at least one actuator is configured to adjust the pitch angles to non-acceleration steady state pitch angles.

15. The rotor as defined in claim 1 , wherein the at least one actuator is a solenoid.

16. A method of operating a rotor, the method comprising:

changing an amount of torque applied to a rotor hub operatively coupled to rotor blades, the rotor blades having respective longitudinal axes, the rotor blades including respective tabs positioned in the rotor hub and at a same longitudinal position of the longitudinal axes, the tabs operatively coupled to at least one actuator, the rotor blades being pitch adjustable and having corresponding pitch angles based on displacement of the tabs, the rotor hub to spin about a rotational axis; and

adjusting, with the at least one actuator, the pitch angles of the rotor blades based on signals from a sensor, the sensor to detect an angular acceleration or deceleration of the rotor hub from the change in the amount of torque.

17. The method as defined in claim 16 , further including:

measuring, via a sensor, an orientation of at least one of the rotor blades; and

causing the actuator to change the pitch angle of the at least one of the rotor blades based on the measured orientation.

18. The method as defined in claim 16 , further including:

determining, via instructions executed by at least one processor, a desired thrust or lift of the rotor; and

causing the actuator to change the pitch angle of the at least one of the rotor blades based on the determined desired thrust or lift.

19. The method as defined in claim 16 , wherein moving the actuator relative to the rotor hub includes moving the actuator within a cavity of the rotor hub.

20. A non-transitory machine readable medium comprising instructions, which when executed, cause a processor to at least:

determine, based on output from a sensor, an angular acceleration or deceleration of a rotor hub coupled to rotor blades, the rotor blades having a respective longitudinal axis, the rotor blades including respective tabs positioned in the rotor hub and at a same longitudinal position of the longitudinal axis, the tabs operatively coupled to at least one actuator, the rotor blades being pitch adjustable and having at least one corresponding pitch angle based on displacement of the tabs; and

cause the at least one actuator to adjust the at least one pitch angle based on the determined angular acceleration or deceleration of the rotor hub.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 17, 2020
From: SARTORIUS, THOMAS SKYLER
To: THE BOEING COMPANY
Reel/Frame 052136/0745 →
Continuity (2)
Provisional Application 62818832 · Mar 15, 2019
Related Publication 20200331585A1 · Oct 22, 2020