IP Library › Granted Patent US 12,421,864
Granted Patent B2
US 12,421,864 · App. 18/081,862 · Granted Sep 23, 2025

Controlling excitation loads associated with open rotor aeronautical engines

Inventors: Amit Zutshi (Mason, OH); Rafal Sarba (Warsaw, PL); James Ryan Reepmeyer (Montgomery, OH); Stefan Joseph Cafaro (Chapel Hill, NC); Inenhe Mohammed Khalid (West Chester, OH); Daniel Edward Mollmann (Cincinnati, OH); Arjan Johannes Hegeman (Cincinnati, OH)
Assignees: GENERAL ELECTRIC COMPANY; GENERAL ELECTRIC COMPANY POLSKA SP. Z O.O.
F01D17/16B64D27/10
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Quick Facts
Patent No.
US 12,421,864
App. No.
18/081,862
Granted
Sep 23, 2025
Kind
B2
Abstract

An open rotor engine includes a core engine, a plurality of guide vanes positioned within or extending from the core engine; and a pitch change assembly operably coupled to the plurality of guide vanes. The pitch change assembly includes one or more actuators configured to change a pitch angle of respective ones of the plurality of guide vanes, and a plurality of linkage arms that are respectively movable by actuation of at least one of the one or more actuators. The plurality of linkage arms are directly or indirectly coupled to a corresponding one of the plurality of guide vanes. The plurality of linkage arms may have a length that differs from one another, and such length may orient a displacement or a range of motion of the respective linkage arm to an envelope of rotation about a guide vane axis that differs as between the plurality of guide vanes.

Claims (30)

1. An open rotor aeronautical engine comprising:

a core engine;

an unducted fan assembly rotatably driven by the core engine;

an unducted guide vane assembly including a plurality of guide vanes extending outwardly from the core engine;

a pitch change assembly operably coupled to the plurality of guide vanes, the pitch change assembly comprising:

one or more actuators configured to change a pitch angle of respective ones of the plurality of guide vanes to augment or compensate for an excitation load; and

a plurality of linkage arms that are respectively movable by actuation of at least one of the one or more actuators, wherein respective ones of the plurality of linkage arms are directly or indirectly coupled to a corresponding one of the plurality of guide vanes,

wherein respective ones of the plurality of linkage arms have a length that differs from at least another one of the plurality of linkage arms respectively corresponding to another one of the plurality of guide vanes, wherein the length of a respective one of the plurality of linkage arms orients a displacement or a range of motion of the respective one of the plurality of linkage arms to an envelope of rotation of the corresponding one of the plurality of guide vanes about a guide vane axis, wherein the envelope of rotation of the corresponding one of the plurality of guide vanes differs from the envelope of rotation of at least another one of the plurality of guide vanes;

a sensor configured to provide sensor data indicative of the excitation load acting upon the open rotor aeronautical engine, wherein the sensor comprises an angle of attack sensor; and

an electronic controller, wherein the electronic controller is configured to actuate the one or more actuators to a first position during a cruise flight condition and to actuate the one or more actuators to a second position during a climbing flight condition, a descending flight condition, or a takeoff flight condition,

wherein the plurality of guide vanes comprises a first guide vane and a second guide vane, wherein the first guide vane and the second guide vane are located at inversely disposed circumferential positions.

2. The open rotor aeronautical engine of claim 1 , wherein at a first position of the one or more actuators, the plurality of guide vanes have a uniform pitch angle as between respective ones of the plurality of guide vanes, and wherein at a second position of the one or more actuators, the plurality of guide vanes have a non-uniform pitch angle as between respective ones of the plurality of guide vanes.

3. The open rotor aeronautical engine of claim 1 , wherein at a first position of the one or more actuators, the plurality of guide vanes have a first non-uniform pitch angle as between respective ones of the plurality of guide vanes, and wherein at a second position of the one or more actuators, the plurality of guide vanes have a second non-uniform pitch angle as between respective ones of the plurality of guide vanes.

4. The open rotor aeronautical engine of claim 1 , wherein the pitch change assembly comprises:

a unitary actuator assembly, wherein the one or more actuators respectively comprise a unitary actuator directly or indirectly coupled to a corresponding one of the plurality of guide vanes, the unitary actuator being movable to change the pitch angle of the corresponding one of the plurality of guide vanes.

5. The open rotor aeronautical engine of claim 1 , wherein the pitch change assembly comprises:

an ensemble actuator assembly comprising the one or more actuators and a unison ring, wherein the unison ring is movable by actuating the one or more actuators to collectively change the pitch angle of respective ones of the plurality of guide vanes;

wherein the plurality of linkage arms extend between the unison ring and the corresponding one of the plurality of guide vanes.

6. The open rotor aeronautical engine of claim 5 , wherein the pitch change assembly comprises:

a plurality of unitary actuators, wherein respective ones of the plurality of unitary actuators are disposed between a corresponding one of the plurality of linkage arms and a corresponding one of the plurality of guide vanes.

7. The open rotor aeronautical engine of claim 1 , wherein the first guide vane has a first circumferential position corresponding to a horizontally leftward orientation, wherein the second guide vane has a second circumferential position corresponding to a horizontally rightward orientation, wherein the first circumferential position is between a seven o'clock position and an eleven o'clock position, and wherein the second circumferential position is between a one o'clock position and a five o'clock position, and wherein the first guide vane has a first geometry and the second guide vane has a second geometry that is different than the first geometry.

8. The open rotor aeronautical engine of claim 7 , wherein the first circumferential position is a nine o'clock position; and wherein the second circumferential position is a three o'clock position, and wherein the first geometry and the second geometry are configured to partially offset or compensate for the excitation load, wherein the excitation load is an asymmetric load.

9. The open rotor aeronautical engine of claim 1 , wherein the first guide vane has a first circumferential position and the second guide vane has a second circumferential position, and wherein the first circumferential position differs from the second circumferential position by π-radians+/−(⅓)-π-radians, and wherein the first guide vane has a first geometry and the second guide vane has a second geometry that is different than the first geometry.

10. The open rotor aeronautical engine of claim 9 , wherein the first circumferential position differs from the second circumferential position by π-radians+/−(⅙)-π-radians.

11. The open rotor aeronautical engine of claim 1 , wherein the electronic controller is configured to actuate the one or more actuators responsive to the excitation load acting upon the open rotor aeronautical engine.

12. The open rotor aeronautical engine of claim 11 , wherein the excitation load comprises an asymmetric load corresponding to one or more circumferential positions of respective ones of the plurality of guide vanes, and wherein the envelope of rotation of the respective ones of the plurality of guide vanes are selected at least in part to offset the asymmetric load at least partially.

13. The open rotor aeronautical engine of claim 1 , wherein the guide vanes comprise outlet guide vanes.

14. The open rotor aeronautical engine of claim 1 , wherein the guide vanes comprise inlet guide vanes.

15. The open rotor aeronautical engine of claim 1 , wherein the sensor further comprises an angle of sideslip sensor.

16. The open rotor aeronautical engine of claim 15 , wherein the sensor further comprises a vibration sensor configured to perform vibration-based condition monitoring and a strain gauge in proximity to a fan disk of the unducted fan assembly.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 15, 2022
From: ZUTSHI, AMIT; REEPMEYER, JAMES RYAN; CAFARO, STEFAN JOSEPH; KHALID, INENHE MOHAMMED; MOLLMAN, DANIEL EDWARD; HEGEMAN, ARJAN JOHANNES
To: GENERAL ELECTRIC COMPANY
Reel/Frame 062101/0528 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 15, 2022
From: SARBA, RAFAL
To: GENERAL ELECTRIC COMPANY POLSKA SP. Z O.O
Reel/Frame 062101/0573 →
Priority Claims (1)
PL 441991 · Aug 10, 2022 · national
Continuity (1)
Related Publication 20240052753A1 · Feb 15, 2024
References Cited (33)
US 3861822A · Wanger · 1975 [cited by applicant]
US 4738589A · Wright · 1988 [cited by applicant]
US 4856962A · McDow · 1989 [cited by applicant]
US 4967550A · Acton · 1990 [cited by examiner]
US 5259187A · Dunbar et al. · 1993 [cited by applicant]
US 5315821A · Dunbar et al. · 1994 [cited by applicant]
US 5453943A · Magliozzi · 1995 [cited by applicant]
US 7730714B2 · Wood et al. · 2010 [cited by applicant]
US 8276362B2 · Suciu et al. · 2012 [cited by applicant]
US 8641367B2 · Norris · 2014 [cited by examiner]
US 8974184B2 · Becker et al. · 2015 [cited by applicant]
US 9423233B2 · Holt et al. · 2016 [cited by applicant]
US 9821917B2 · Becker et al. · 2017 [cited by applicant]
US 10414484B2 · Moxon · 2019 [cited by applicant]
US 10556699B2 · Pautis et al. · 2020 [cited by applicant]
US 10647438B2 · Armstrong · 2020 [cited by applicant]
US 20100014977A1 · Shattuck · 2010 [cited by applicant]
US 20160333729A1 · Miller et al. · 2016 [cited by applicant]
US 20170102006A1 · Miller · 2017 [cited by examiner]
US 20190040875A1 · Ramamoorthy et al. · 2019 [cited by applicant]
US 20200003073A1 · Karapurath et al. · 2020 [cited by applicant]
US 20210108572A1 · Khalid · 2021 [cited by examiner]
US 20210108575A1 · Adibhatla · 2021 [cited by examiner]
US 20210108595A1 · Khalid et al. · 2021 [cited by applicant]
US 20210222575A1 · Breeze-Stringfellow · 2021 [cited by examiner]
US 20220333489A1 · Binder · 2022 [cited by examiner]
DE 102004014850A1 · 2005 [cited by applicant]
WO WO9819909A1 · 1998 [cited by applicant]
WO WO2009096058A1 · 2009 [cited by applicant]
Cecrdle, Aeroelastic Stability of Turboprop Aircraft: Whirl Flutter, Chapter 8, Intech, Flight Physics—Models, Techniques and Technologies, Feb. 2018, pp. 139-158. http://dx.doi.org/10.5772/intechopen.70171. [cited by applicant]
Mcnamee, Propeller Blade Asymmetric Loading Part 1, Youtube Video, Sep. 2010. Retrieved Jan. 13, 2022 from https://www.youtube.com/watch?v=H880hnwtAh0. [cited by applicant]
Reed III, Review of Propeller-Rotor Whirl Flutter, NASA-TR-R-264, National Aeronautics and Space Administration Technical Report, Washington DC, Jul. 1967, 34 Pages. [cited by applicant]
Swashplate (Aeronautics), Wikipedia, 3 Pages. Retrieved Jan. 14, 2022 from: https://en.wikipedia.org/wiki/Swashplate_(aeronautics). [cited by applicant]