Average Turbulence Dynamics from a One-Parameter Kinetic Theory

Author:

Chen Hudong1ORCID,Staroselsky Ilya1,Sreenivasan Katepalli R.23ORCID,Yakhot Victor24

Affiliation:

1. Dassault Systemes Simulia Corp, 175 Wyman Street, Waltham, MA 02451, USA

2. Department of Mechanical and Aerospace Engineering, New York University, New York, NY 11201, USA

3. Department of Physics, Courant Institute of Mathematical Sciences, New York University, New York, NY 11201, USA

4. Department of Mechanical Engineering, Boston University, Boston, MA 02215, USA

Abstract

We show theoretically that the mean turbulent dynamics can be described by a kinetic theory representation with a single free relaxation time that depends on space and time. A proper kinetic equation is constructed from the Klimontovich-type kinetic equation for fluid elements, which satisfies the Navier–Stokes hydrodynamics exactly. In a suitably averaged form, the turbulent kinetic energy plays the role of temperature in standard molecular thermodynamics. We show that the dynamics of turbulent fluctuations resembles a collision process that asymptotically drives the mean distribution towards a Gaussian (Maxwell–Boltzmann) equilibrium form. Non-Gaussianity arises directly from non-equilibrium shear effects. The present framework overcomes the bane of most conventional turbulence models and theoretical frameworks arising from the lack of scale separation between the mean and fluctuating scales of the Navier-Stokes equation with an eddy viscous term. An averaged turbulent flow in the present framework behaves more like a flow of finite Knudsen number with finite relaxation time, and is thus more suitably described in a kinetic theory representation.

Publisher

MDPI AG

Subject

Atmospheric Science,Environmental Science (miscellaneous)

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