Susceptibility divergence, phase transition and multistability of a highly turbulent closed flow
P.-P. Cortet, E. Herbert, A. Chiffaudel, F. Daviaud, B. Dubrulle and, V. Padilla

TL;DR
This study investigates how a turbulent swirling flow responds to symmetry breaking across a wide Reynolds number range, revealing a phase transition characterized by divergence in susceptibility and metastable states.
Contribution
It introduces a quantitative analysis of flow symmetry using two scalars and identifies a critical Reynolds number where flow behavior undergoes a phase transition with metastability.
Findings
Flow symmetry response coefficient diverges at Re ≈ 40,000.
Flow exhibits metastable non-symmetrical states near the critical Re.
Spontaneous symmetry breaking occurs dynamically, not just on average.
Abstract
Using time-series of stereoscopic particle image velocimetry data, we study the response of a turbulent von K\'{a}rm\'{a}n swirling flow to a continuous breaking of its forcing symmetry. Experiments are carried over a wide Reynolds number range, from laminar regime at to highly turbulent regime near . We show that the flow symmetry can be quantitatively characterized by two scalars, the global angular momentum and the mixing layer altitude , which are shown to be statistically equivalent. Furthermore, we report that the flow response to small forcing dissymetry is linear, with a slope depending on the Reynolds number: this response coefficient increases non monotonically from small to large Reynolds number and presents a divergence at a critical Reynolds number . This divergence coincides with a change in the statistical…
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