High-fidelity study of three-dimensional turbulent transonic buffet on wide-span infinite wings
David J. Lusher, Andrea Sansica, Markus Zauner, Atsushi Hashimoto

TL;DR
This study uses high-fidelity simulations to explore the complex three-dimensional turbulent transonic buffet on wide-span wings, revealing new insights into flow separation, shock oscillations, and buffet modes at various aspect ratios.
Contribution
It extends high-fidelity buffet analysis to wider wings up to aspect ratio 3, uncovering 3D separation bubbles and modal structures not observed in previous low-fidelity or narrow-span studies.
Findings
Intermittent 3D separation bubbles at AR ≥ 1.
Presence of 3D buffet modes with distinct Strouhal numbers.
Multiple 3D separation bubbles form at AR ≥ 2.
Abstract
Turbulent transonic buffet is an aerodynamic instability causing periodic oscillations of lift/drag in aerospace applications. Involving complex coupling between inviscid and viscous effects, buffet is characterised by shock-wave oscillations and flow separation/reattachment. Previous studies have identified both 2D chordwise shock-oscillation and 3D buffet/stall-cell modes. While the 2D instability has been studied extensively, investigations of 3D buffet have been limited to only low-fidelity simulations or experiments. Due to computational costs, almost all high-fidelity studies to date have been limited to narrow span-widths around 5% of aerofoil chord length (aspect ratio, ), which is insufficiently wide to observe large-scale three-dimensionality. In this work, high-fidelity simulations are performed up to , on infinite unswept NASA-CRM wing profiles at…
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Taxonomy
TopicsFluid Dynamics and Turbulent Flows · Aerodynamics and Acoustics in Jet Flows · Computational Fluid Dynamics and Aerodynamics
