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Convolution/Volterra Reduced-Order Modeling for Nonlinear Aeroelastic Limit Cycle Oscillation Analysis and Control

Publication ,  Journal Article
Brown, C; McGowan, G; Cooley, K; Deese, J; Josey, T; Dowell, EH; Thomas, JP
Published in: AIAA Journal
December 1, 2022

A methodology for leveraging a combination of linear (through convolution integrals) and nonlinear (through Volterra series) reduced-order modeling (ROM) development was demonstrated on both a two-and three-degree-of-freedom (2-DOF and 3-DOF, respectively) aeroelastic system. The linear/nonlinear ROM approach was demonstrated against previous work in the field for a 2-DOF system and subsequently extended to a 3-DOF (flapped airfoil) system. Excellent agreement was demonstrated at limit cycle oscillation (LCO) onset (flutter) prediction between computational fluid dynamics, linear ROMs, and nonlinear ROMs. Although linear ROMs were sufficient to predict LCO onset, the nonlinear Volterra correction was required to estimate the amplitude of post-LCOs. Corrections that accounted for more coupling between degrees of freedom predicted the amplitudes more accurately. A study was undertaken to determine the minimal training set required to produce reasonable LCO amplitude estimates of the 3-DOF airfoil. A controller was also implemented in an effort to mitigate LCO onset and flutter divergence and to demonstrate the usefulness and power of leveraging the ROM for control design. A full-state feedback controller, tuned via a linear quadratic regulator (LQR), was shown to be effective in controlling the system below LCO onset. However, beyond LCO onset, this specific linear controller structure was observed to be ineffective in controlling the system. Future work will evaluate nonlinear control methods in which the ROM can be deployed as a part of the control system to update the LQR gains in a fully coupled approach.

Duke Scholars

Published In

AIAA Journal

DOI

EISSN

1533-385X

ISSN

0001-1452

Publication Date

December 1, 2022

Volume

60

Issue

12

Start / End Page

6647 / 6664

Related Subject Headings

  • Aerospace & Aeronautics
  • 4012 Fluid mechanics and thermal engineering
  • 4001 Aerospace engineering
  • 0913 Mechanical Engineering
  • 0905 Civil Engineering
  • 0901 Aerospace Engineering
 

Citation

APA
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ICMJE
MLA
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Brown, C., McGowan, G., Cooley, K., Deese, J., Josey, T., Dowell, E. H., & Thomas, J. P. (2022). Convolution/Volterra Reduced-Order Modeling for Nonlinear Aeroelastic Limit Cycle Oscillation Analysis and Control. AIAA Journal, 60(12), 6647–6664. https://doi.org/10.2514/1.J061845
Brown, C., G. McGowan, K. Cooley, J. Deese, T. Josey, E. H. Dowell, and J. P. Thomas. “Convolution/Volterra Reduced-Order Modeling for Nonlinear Aeroelastic Limit Cycle Oscillation Analysis and Control.” AIAA Journal 60, no. 12 (December 1, 2022): 6647–64. https://doi.org/10.2514/1.J061845.
Brown C, McGowan G, Cooley K, Deese J, Josey T, Dowell EH, et al. Convolution/Volterra Reduced-Order Modeling for Nonlinear Aeroelastic Limit Cycle Oscillation Analysis and Control. AIAA Journal. 2022 Dec 1;60(12):6647–64.
Brown, C., et al. “Convolution/Volterra Reduced-Order Modeling for Nonlinear Aeroelastic Limit Cycle Oscillation Analysis and Control.” AIAA Journal, vol. 60, no. 12, Dec. 2022, pp. 6647–64. Scopus, doi:10.2514/1.J061845.
Brown C, McGowan G, Cooley K, Deese J, Josey T, Dowell EH, Thomas JP. Convolution/Volterra Reduced-Order Modeling for Nonlinear Aeroelastic Limit Cycle Oscillation Analysis and Control. AIAA Journal. 2022 Dec 1;60(12):6647–6664.

Published In

AIAA Journal

DOI

EISSN

1533-385X

ISSN

0001-1452

Publication Date

December 1, 2022

Volume

60

Issue

12

Start / End Page

6647 / 6664

Related Subject Headings

  • Aerospace & Aeronautics
  • 4012 Fluid mechanics and thermal engineering
  • 4001 Aerospace engineering
  • 0913 Mechanical Engineering
  • 0905 Civil Engineering
  • 0901 Aerospace Engineering