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Nonequilibrium ensembles for the three-dimensional Navier-Stokes equations

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journal contribution
posted on 2024-02-28, 15:53 authored by G Margazoglou, L Biferale, M Cencini, G Gallavotti, V Lucarini
At the molecular level fluid motions are, by first principles, described by time reversible laws. On the other hand, the coarse grained macroscopic evolution is suitably described by the Navier-Stokes equations, which are inherently irreversible, due to the dissipation term. Here, a reversible version of three-dimensional Navier-Stokes is studied, by introducing a fluctuating viscosity constructed in such a way that enstrophy is conserved, along the lines of the paradigm of microcanonical versus canonical treatment in equilibrium statistical mechanics. Through systematic simulations we attack two important questions: (a) What are the conditions that must be satisfied in order to have a statistical equivalence between the two nonequilibrium ensembles? (b) What is the empirical distribution of the fluctuating viscosity observed by changing the Reynolds number and the number of modes used in the discretization of the evolution equation? The latter point is important also to establish regularity conditions for the reversible equations. We find that the probability to observe negative values of the fluctuating viscosity becomes very quickly extremely small when increasing the effective Reynolds number of the flow in the fully resolved hydrodynamical regime, at difference from what was observed previously.

History

Author affiliation

College of Science & Engineering/Comp' & Math' Sciences

Version

  • AM (Accepted Manuscript)

Published in

Physical Review E

Volume

105

Issue

6

Pagination

065110

Publisher

American Physical Society (APS)

issn

2470-0045

eissn

2470-0053

Copyright date

2022

Available date

2024-02-28

Spatial coverage

United States

Language

eng

Deposited by

Professor Valerio Lucarini

Deposit date

2024-02-26

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