Discontinuous transition to shear flow turbulence

Fuente: arXiv
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Auteurs principaux: Yang, Bowen, Zhuang, Yi, Yalnız, Gökhan, Mukund, Vasudevan, Marensi, Elena, Hof, Björn
Format: Preprint
Publié: 2023
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author Yang, Bowen
Zhuang, Yi
Yalnız, Gökhan
Mukund, Vasudevan
Marensi, Elena
Hof, Björn
author_facet Yang, Bowen
Zhuang, Yi
Yalnız, Gökhan
Mukund, Vasudevan
Marensi, Elena
Hof, Björn
contents Depending on the type of flow, the transition to turbulence can take one of two forms: either turbulence arises from a sequence of instabilities or from the spatial proliferation of transiently chaotic domains, a process analogous to directed percolation. The former scenario is commonly referred to as a supercritical transition and frequently encountered in flows destabilized by body forces, whereas the latter subcritical transition is common in shear flows. Both cases are inherently continuous in a sense that the transformation from ordered laminar to fully turbulent fluid motion is only accomplished gradually with flow speed. Here we show that these established transition types do not account for the more general setting of shear flows subject to body forces. The combination of the two continuous scenarios leads to the attenuation of spatial coupling; with increasing forcing amplitude, the transition becomes increasingly sharp and eventually discontinuous. We argue that the suppression of laminar-turbulent coexistence and the approach towards a discontinuous phase transition potentially apply to a broad range of situations including flows subject to, for example, buoyancy, centrifugal or electromagnetic forces.
format Preprint
id arxiv_https___arxiv_org_abs_2311_11474
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Discontinuous transition to shear flow turbulence
Yang, Bowen
Zhuang, Yi
Yalnız, Gökhan
Mukund, Vasudevan
Marensi, Elena
Hof, Björn
Fluid Dynamics
Depending on the type of flow, the transition to turbulence can take one of two forms: either turbulence arises from a sequence of instabilities or from the spatial proliferation of transiently chaotic domains, a process analogous to directed percolation. The former scenario is commonly referred to as a supercritical transition and frequently encountered in flows destabilized by body forces, whereas the latter subcritical transition is common in shear flows. Both cases are inherently continuous in a sense that the transformation from ordered laminar to fully turbulent fluid motion is only accomplished gradually with flow speed. Here we show that these established transition types do not account for the more general setting of shear flows subject to body forces. The combination of the two continuous scenarios leads to the attenuation of spatial coupling; with increasing forcing amplitude, the transition becomes increasingly sharp and eventually discontinuous. We argue that the suppression of laminar-turbulent coexistence and the approach towards a discontinuous phase transition potentially apply to a broad range of situations including flows subject to, for example, buoyancy, centrifugal or electromagnetic forces.
title Discontinuous transition to shear flow turbulence
topic Fluid Dynamics
url https://arxiv.org/abs/2311.11474