Multifidelity domain-aware scheme for cross-regime airfoil shape optimization
File(s) ccc.9331.pdf (526.75 KB)
Published version
Author(s)
Di Fiore, F
Mainini, L
Type
Conference Paper
Abstract
This paper proposes a domain-aware multifidelity scheme to speed-up the airfoil shape optimization in a cross-regime scenario where the aerodynamic domain evolves with the Mach number. Our strategy relies on a multifidelity Bayesian framework based on a surrogate model iteratively updated through a multifidelity acquisition function that selects the next design configuration and level of fidelity to query. We implement the multifidelity Gaussian process as the aerodynamic surrogate model and formulate an original domain-aware multifidelity acquisition function informed by the evolution of the fluid domain. This property allows to wisely select the level of fidelity of the aerodynamic model considering the compressibility and non-linear effects at higher speed regimes, improving the accuracy of the surrogate model. We validate our approach for the benchmark test-case of the constrained shape optimization problem of a RAE 2822 airfoil. The results suggest that our strategy outperforms popular multifidelity and single-fidelity methods reducing the drag coefficient of the optimized airfoil with an improvement of the 24% respect to the baseline airfoil with a limited computational budget.
Date Issued
2022-08-23
Date Acceptance
2022-08-01
Citation
Proceedings of the Eleventh International Conference on Engineering Computational Technology, 2022, 2, pp.1-8
ISSN
2753-3239
Publisher
Civil-Comp Press
Start Page
1
End Page
8
Journal / Book Title
Proceedings of the Eleventh International Conference on Engineering Computational Technology
Volume
2
Copyright Statement
Civil-Comp Ltd, Edinburgh, UK, 2022.
Identifier
10.4203/ccc.2.4.6
Source
The Eleventh International Conference on Engineering Computational Technology
Subjects
multifidelity method
domain-awareness
Bayesian optimization
active learning
cross-regime
aerodynamic optimization
Publication Status
Published
Start Date
2022-08-23
Finish Date
2022-08-25
Coverage Spatial
Montpellier, France
