NASA NTRS · 20210017172
Multiscale Mesh Adaptation for Transonic Aeroelastic Flutter Problems
Abstract
This work applies multiscale mesh adaptation with refine to reduce spatial discretization error of aeroelastic computational fluid dynamics (CFD) simulations. Benchmark flutter models, such as the pitch and plunge NACA64A-010 airfoil and the benchmark supercritical wing, are studied with both a linearized frequency-domain solver and time-marching CFD coupled to a modal structural solver in FUN3D. The undeformed NASA Common Research Model (CRM), an aeroelastic jig shape variant of the CRM, is also studied with the linearized frequency-domain approach. For these cases, the adaptation process converges to comparable flutter predictions to hand-generated meshes but with smaller node counts. However the additional disciplines of the linearized frequency-domain analysis, the mesh deformation, and the unsteady finite-volume solver create robustness challenges that need to be addressed before it can be applied as a fully automated process for complex transonic aeroelastic problems. In particular, negative volumes are observed to be an issue for FUN3D’s linear elasticity mesh deformation solver when moving the adapted meshes.
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Kevin E Jacobson, Bret K Stanford, Jan F Kiviaho, Thomas A Ozoroski, Michael A Park, Pawel Chwalowski. Multiscale Mesh Adaptation for Transonic Aeroelastic Flutter Problems. https://ntrs.nasa.gov/citations/20210017172
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