The present study focuses on the uncertainty quantification of an aeroelastic instability system. This is a classical dynamical system often used to model the flow induced oscillation of flexible structures such as turbine blades. It is relevant as a preliminary fluid-structure interaction model, successfully demonstrating the oscillation modes in blade rotor structures in attached flow conditions. The potential flow model used here is also significant because the modern turbine rotors are, in general, regulated in stall and pitch in order to avoid dynamic stall induced vibrations. Geometric nonlinearities are added to this model in order to consider the possibilities of large twisting of the blades. The resulting system shows Hopf and period-doubling bifurcations. Parametric uncertainties have been taken into account in order to consider modeling and measurement inaccuracies. A quadrature based spectral uncertainty tool called polynomial chaos expansion is used to quantify the propagation of uncertainty through the dynamical system of concern. The method is able to capture the bifurcations in the stochastic system with multiple uncertainties quite successfully. However, the periodic response realizations are prone to time degeneracy due to an increasing phase shifting between the realizations. In order to tackle the issue of degeneracy, a corrective algorithm using constant phase interpolation, which was developed earlier by one of the authors, is applied to the present aeroelastic problem. An interpolation of the oscillatory response is done at constant phases instead of constant time and that results in time independent accuracy levels.
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October 2013
Research-Article
Uncertainty Quantification of a Nonlinear Aeroelastic System Using Polynomial Chaos Expansion With Constant Phase Interpolation
Ajit Desai,
Ajit Desai
1
Department of Aerospace Engineering,
IIT Madras
,Chennai 600036
, India
1Present address: Department of Civil and Environmental Engineering, Carleton University, Ottawa ON K1S 5B6, Canada.
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Jeroen A. S. Witteveen,
Jeroen A. S. Witteveen
2
Center for Turbulence Research,
Stanford University
,Stanford, CA 94305
2Present address: Scientific Staff Member, Center for Mathematics and Computer Science, Amsterdam, The Netherlands.
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Sunetra Sarkar
Sunetra Sarkar
3
Associate Professor
Department of Aerospace Engineering,
e-mail: sunetra.sarkar@gmail.com
Department of Aerospace Engineering,
IIT Madras
,Chennai 600036
, India
e-mail: sunetra.sarkar@gmail.com
3Corresponding author.
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Ajit Desai
Department of Aerospace Engineering,
IIT Madras
,Chennai 600036
, India
Jeroen A. S. Witteveen
Center for Turbulence Research,
Stanford University
,Stanford, CA 94305
Sunetra Sarkar
Associate Professor
Department of Aerospace Engineering,
e-mail: sunetra.sarkar@gmail.com
Department of Aerospace Engineering,
IIT Madras
,Chennai 600036
, India
e-mail: sunetra.sarkar@gmail.com
1Present address: Department of Civil and Environmental Engineering, Carleton University, Ottawa ON K1S 5B6, Canada.
2Present address: Scientific Staff Member, Center for Mathematics and Computer Science, Amsterdam, The Netherlands.
3Corresponding author.
Contributed by the Design Engineering Division of ASME for publication in the JOURNAL OF VIBRATION AND ACOUSTICS. Manuscript received March 16, 2011; final manuscript received June 3, 2013; published online July 9, 2013. Assoc. Editor: Bogdan Epureanu.
J. Vib. Acoust. Oct 2013, 135(5): 051034 (13 pages)
Published Online: July 9, 2013
Article history
Received:
March 16, 2011
Revision Received:
June 3, 2013
Citation
Desai, A., Witteveen, J. A. S., and Sarkar, S. (July 9, 2013). "Uncertainty Quantification of a Nonlinear Aeroelastic System Using Polynomial Chaos Expansion With Constant Phase Interpolation." ASME. J. Vib. Acoust. October 2013; 135(5): 051034. https://doi.org/10.1115/1.4024794
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