The route to turbulence in magnetohydrodynamic square duct flow

Fuente: arXiv
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Main Authors: Brynjell-Rahkola, Mattias, Duguet, Yohann, Boeck, Thomas
Format: Preprint
Published: 2025
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author Brynjell-Rahkola, Mattias
Duguet, Yohann
Boeck, Thomas
author_facet Brynjell-Rahkola, Mattias
Duguet, Yohann
Boeck, Thomas
contents The transition route from laminar to turbulent flow in a magnetohydrodynamic (MHD) duct with a square cross-section is investigated in the limit of low magnetic Reynolds number. In the presence of a transverse magnetic field, Hartmann and Shercliff layers are present on the walls orthogonal and parallel to the field direction, respectively. We assume reflection symmetries in both transverse directions, and investigate the competition between transition mechanisms specific to each boundary layer using direct numerical simulations. Independently of which wall turbulence eventually occupies, transition relies exclusively on a tripping of the Shercliff layer by perturbations, while the Hartmann layer plays a passive role. This is explained, using a dynamical systems interpretation, by the spatial localization of the edge states in the Shercliff layer at the expense of the Hartmann layer. The link between these non-linear coherent structures and the linear optimal modes known from non-modal stability and energy stability theory is pointed out.
format Preprint
id arxiv_https___arxiv_org_abs_2501_07779
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle The route to turbulence in magnetohydrodynamic square duct flow
Brynjell-Rahkola, Mattias
Duguet, Yohann
Boeck, Thomas
Fluid Dynamics
The transition route from laminar to turbulent flow in a magnetohydrodynamic (MHD) duct with a square cross-section is investigated in the limit of low magnetic Reynolds number. In the presence of a transverse magnetic field, Hartmann and Shercliff layers are present on the walls orthogonal and parallel to the field direction, respectively. We assume reflection symmetries in both transverse directions, and investigate the competition between transition mechanisms specific to each boundary layer using direct numerical simulations. Independently of which wall turbulence eventually occupies, transition relies exclusively on a tripping of the Shercliff layer by perturbations, while the Hartmann layer plays a passive role. This is explained, using a dynamical systems interpretation, by the spatial localization of the edge states in the Shercliff layer at the expense of the Hartmann layer. The link between these non-linear coherent structures and the linear optimal modes known from non-modal stability and energy stability theory is pointed out.
title The route to turbulence in magnetohydrodynamic square duct flow
topic Fluid Dynamics
url https://arxiv.org/abs/2501.07779