Entropy and fluctuation relation in isotropic turbulence
ORAL
Abstract
Based on a generalized local Kolmogorov-Hill equation expressing the evolution of kinetic energy integrated over spheres of sizes in the inertial range of fluid turbulence, we examine a possible definition of entropy and entropy generation for turbulence. Its measurement from direct numerical simulations in isotropic turbulence leads to confirmation of the validity of the fluctuation relation (FR) from non-equilibrium thermodynamics in the inertial range of turbulent flows. Specifically, the ratio of probability densities of forward and inverse cascade at a certain scale is shown to follow exponential behavior with the entropy generation rate if the latter is defined by including an appropriately defined notion of “temperature of turbulence” proportional to the kinetic energy at a certain scale.
We thank the JHTDB/IDIES staff for their assistance with the database and its maintenance.
We thank the JHTDB/IDIES staff for their assistance with the database and its maintenance.
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Publication: H. Yao and T. Zaki and C. Meneveau, "Entropy and fluctuation relation in isotropic turbulence", preprint
Presenters
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Charles Meneveau
Johns Hopkins University
Authors
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Charles Meneveau
Johns Hopkins University
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Hanxun Yao
Johns Hopkins University
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Tamer A Zaki
Johns Hopkins University