Published December 2010 | Version v1
Journal article

Gyrokinetic simulations of turbulent transport: size scaling and chaotic behaviour

  • 1. Ecole Polytechnique Federale de Lausanne (EPFL), Centre de Recherches en Physique des Plasmas, Association Euratom-Switzerland, 1015 Lausanne (Switzerland)
  • 2. Max-Planck Institut fuer Plasmaphysik, Association Euratom, Garching (Germany)
  • 3. Institute for Plasma Research, Bhat, Ghandinagar (India)
  • 4. CEA, IRFM, Association Euratom, F-13108 Saint Paul Lez Durance (France)
  • 5. Japan Atomic Energy Agency, Higashi-Ueno 6-9-3, Taitou, Tokyo 110-0015 (Japan)

Description

Important steps towards the understanding of turbulent transport have been made with the development of the gyrokinetic framework for describing turbulence and with the emergence of numerical codes able to solve the set of gyrokinetic equations. This paper presents some of the main recent advances in gyrokinetic theory and computing of turbulence. Solving 5D gyrokinetic equations for each species requires state-of-the-art high performance computing techniques involving massively parallel computers and parallel scalable algorithms. The various numerical schemes that have been explored until now, Lagrangian, Eulerian and semi-Lagrangian, each have their advantages and drawbacks. A past controversy regarding the finite size effect (finite ρ*) in ITG turbulence has now been resolved. It has triggered an intensive benchmarking effort and careful examination of the convergence properties of the different numerical approaches. Now, both Eulerian and Lagrangian global codes are shown to agree and to converge to the flux-tube result in the ρ* → 0 limit. It is found, however, that an appropriate treatment of geometrical terms is necessary: inconsistent approximations that are sometimes used can lead to important discrepancies. Turbulent processes are characterized by a chaotic behaviour, often accompanied by bursts and avalanches. Performing ensemble averages of statistically independent simulations, starting from different initial conditions, is presented as a way to assess the intrinsic variability of turbulent fluxes and obtain reliable estimates of the standard deviation. Further developments concerning non-adiabatic electron dynamics around mode-rational surfaces and electromagnetic effects are discussed.

Availability note (English)

Available from http://dx.doi.org/10.1088/0741-3335/52/12/124038

Additional details

Identifiers

DOI
10.1088/0741-3335/52/12/124038;
PII
S0741-3335(10)60221-7;

Publishing Information

Journal Title
Plasma Physics and Controlled Fusion
Journal Volume
52
Journal Issue
12
Journal Page Range
[18 p.]
ISSN
0741-3335
CODEN
PPCFET

INIS

Country of Publication
United Kingdom
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
42035708
Subject category
S71: CLASSICAL AND QUANTUM MECHANICS, GENERAL PHYSICS; S70: PLASMA PHYSICS AND FUSION TECHNOLOGY;
Descriptors DEI
ALGORITHMS; EQUATIONS; LAGRANGIAN FUNCTION; MODE RATIONAL SURFACES; SCALING; SIMULATION; TURBULENCE
Descriptors DEC
FUNCTIONS; MAGNETIC FIELD CONFIGURATIONS; MAGNETIC SURFACES; MATHEMATICAL LOGIC