Abstract
In this work we present multi-fidelity steady-state aeroelastic framework that leverages the state-of-the-art simulation tool HAWC2 for the structural model, and a variety of aerodynamic models, comprising of the low fidelity blade element momentum (BEM) method, the medium fidelity blade element vortex cylinder (BEVC) method and the coupled near wake and vortex cylinder method, and finally the high-fidelity CFD solver EllipSys3D. The aeroelastic framework is part of AESOpt, an aerostructural framework for design of wind turbine blades. The different aerodynamic models are applied to compute the aeroelastic steady state of the newly designed IEA 22 MW Reference Wind Turbine. The results show a very good agreement between the medium- and high-fidelity aerodynamic models with a maximum of 2.7% difference between the high-fidelity aeroelastic response and that of the lower fidelities.
Cite
CITATION STYLE
Zahle, F., Li, A., Lønbæk, K., Sørensen, N. N., & Riva, R. (2024). Multi-fidelity, steady-state aeroelastic modelling of a 22-megawatt wind turbine. In Journal of Physics: Conference Series (Vol. 2767). Institute of Physics. https://doi.org/10.1088/1742-6596/2767/2/022065
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