Published December 2014 | Version v1
Journal article

A parametrization of two-dimensional turbulence based on a maximum entropy production principle with a local conservation of energy

  • 1. Laboratoire de Physique Théorique, Université Paul Sabatier, 118 route de Narbonne, F-31062 Toulouse (France)

Description

In the context of two-dimensional (2D) turbulence, we apply the maximum entropy production principle (MEPP) by enforcing a local conservation of energy. This leads to an equation for the vorticity distribution that conserves all the Casimirs, the energy, and that increases monotonically the mixing entropy (H-theorem). Furthermore, the equation for the coarse-grained vorticity dissipates monotonically all the generalized enstrophies. These equations may provide a parametrization of 2D turbulence. They do not generally relax towards the maximum entropy state. The vorticity current vanishes for any steady state of the 2D Euler equation. Interestingly, the equation for the coarse-grained vorticity obtained from the MEPP turns out to coincide, after some algebraic manipulations, with the one obtained with the anticipated vorticity method. This shows a connection between these two approaches when the conservation of energy is treated locally. Furthermore, the newly derived equation, which incorporates a diffusion term and a drift term, has a nice physical interpretation in terms of a selective decay principle. This sheds new light on both the MEPP and the anticipated vorticity method. (paper)

Availability note (English)

Available from http://dx.doi.org/10.1088/0169-5983/46/6/061409

Additional details

Publishing Information

Journal Title
Fluid Dynamics Research (Online)
Journal Volume
46
Journal Issue
6
Journal Page Range
[18 p.]
ISSN
1873-7005

INIS

Country of Publication
Netherlands
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
46043099
Subject category
S71: CLASSICAL AND QUANTUM MECHANICS, GENERAL PHYSICS;
Descriptors DEI
CURRENTS; DIFFUSION; ENTROPY; EQUATIONS; H THEOREM; STEADY-STATE CONDITIONS; TURBULENCE
Descriptors DEC
PHYSICAL PROPERTIES; THERMODYNAMIC PROPERTIES