Drift-wave turbulence and zonal flow generation

R. Balescu
Phys. Rev. E 68, 046409 – Published 29 October 2003
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Abstract

Drift-wave turbulence in a plasma is analyzed on the basis of the wave Liouville equation, describing the evolution of the distribution function of wave packets (quasiparticles) characterized by position x and wave vector k. A closed kinetic equation is derived for the ensemble-averaged part of this function by the methods of nonequilibrium statistical mechanics. It has the form of a non-Markovian advection-diffusion equation describing coupled diffusion processes in x and k spaces. General forms of the diffusion coefficients are obtained in terms of Lagrangian velocity correlations. The latter are calculated in the decorrelation trajectory approximation, a method recently developed for an accurate measure of the important trapping phenomena of particles in the rugged electrostatic potential. The analysis of individual decorrelation trajectories provides an illustration of the fragmentation of drift-wave structures in the radial direction and the generation of long-wavelength structures in the poloidal direction that are identified as zonal flows.

  • Received 29 May 2003

DOI:https://doi.org/10.1103/PhysRevE.68.046409

©2003 American Physical Society

Authors & Affiliations

R. Balescu

  • Physique Statistique–Plasmas, Association Euratom-Etat Belge, Université Libre de Bruxelles, Campus Plaine, Boulevard du Triomphe, 1050 Bruxelles, Belgium

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Issue

Vol. 68, Iss. 4 — October 2003

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