The surprising fate of turbulence in fluids with odd viscosity
ORAL
Abstract
Turbulent flows can be altered in very far-reaching ways by the presence of non-dissipative components in the viscosity tensor of the fluid. Such viscosity, called odd, Hall- or gyro-viscosity, can emerge in chiral systems ranging from plasma and bio-active media to quantum fluids. Using a combination of theory and direct numerical simulations in 3D, we show that odd viscosity yields a tendency to invert the direction of the turbulent energy cascade. This results in an intermediate range of scales of the flow in which kinetic energy condensates, producing a well-defined pattern in the flow. The flow statistics in this condensate range are entirely different from conventional turbulent flows, being fully self-similar and non-intermittent. At yet smaller scales, when odd viscosity becomes even more dominant, we show that we can enter a regime dominated by wave-turbulence as evidenced from spatio-temporal energy spectra and theoretical arguments. Finally, we discuss how to pave the way towards making an odd viscous fluid in the lab.
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Publication: X.M. de Wit, M. Fruchart, T. Khain, F. Toschi, V. Vitelli (2024) "Pattern formation by turbulent cascades" Nature 627 (8004), 515-521<br>S. Chen, X.M. de Wit, M. Fruchart, F. Toschi, V. Vitelli (2024) "Odd viscosity suppresses intermittency in direct turbulent cascades" Physical Review Letters 133 (14), 144002
Presenters
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Xander Milan de Wit
Eindhoven University of Technology
Authors
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Xander Milan de Wit
Eindhoven University of Technology
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Michel Fruchart
CNRS, ESPCI Paris, CNRS, ESPCI Paris
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Sihan Chen
University of Chicago
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Tali Khain
University of Chicago
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Ziqi Wang
Eindhoven University of Technology
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Federico Toschi
Eindhoven University of Technology
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Vincenzo Vitelli
University of Chicago