Beyond secondary instability: on the emergence of finite-amplitude waves in Görtler vortices
arXiv:2601.18017 · doi:10.1017/jfm.2026.11518
Abstract
Görtler vortices developing over a concave wall support rapidly oscillating wavelike disturbances through secondary instabilities. Although experiments indicate that the finite-amplitude evolution of these waves acts as a precursor to turbulence transition, accurate and efficient prediction has remained out of reach. We overcome this limitation by using the Parabolised Coherent Structures (PCS) method of Song & Deguchi (2025), which incorporates the nonlinear vortex-wave interaction into a standard spatial-marching approach. Our computations successfully reproduce the wave amplitude and displacement thickness observed in the widely known experiments of Swearingen & Blackwelder (1987).
References in corpus (4)
- Lower branch coherent states in shear flows: transition and control
- Investigation of Görtler vortices in high-speed boundary layers via an efficient numerical solution to the non-linear boundary region equations
- Excitation and stability of nonlinear compressible Görtler vortices and streaks induced by free-stream vortical disturbances
- Spatial marching with subgrid-scale local exact coherent structures in non-uniformly curved channel flow