Published June 1, 2003 | Version v1
Journal article

Confinement and bursty transport in a flux-driven convection model with sheared flows

  • 1. Department of Physics, University of Tromso, N-9037 Tromso (Norway)
  • 2. Instituto Nazionale Fisica della Materia, Department of Energetics, Politecnico di Torino (Italy)
  • 3. Equipe Dynamique des Systemes Complexes, LPIIM, CNRS-Universite de Provence, Centre de St Jerome, Case 321, 13397 Marseilles Cedex 20 (France)

Description

Transport and confinement within the resistive-g paradigm are investigated by means of two-dimensional numerical simulations. The system is driven by a constant incoming heat flux at the inner radial boundary. Different confinement and transport states are identified, involving self-sustained sheared poloidal flows. At the onset of turbulent convection the probability distribution functions of pressure and radial velocity fluctuations measured in the centre of the plasma layer have a nearly Gaussian form. Further increasing the heat flux drive these distributions become increasingly non-Gaussian, developing exponential tails. This large-scale intermittency is ascribed to the presence of bursting in the domain averaged convective transport and the fluctuation energy integrals. The quasi-periodic bursts are separated by shear-dominated quiescent periods in which the mean flow energy decreases and the confined heat increases on diffusive timescales. The time-averaged thermal energy confined within the plasma layer shows a power law dependence and significant increase with the injected power over the range of turbulent convection investigated

Availability note (English)

Available online at http://stacks.iop.org/0741-3335/45/919/p30606.pdf or at the Web site for the journal Plasma Physics and Controlled Fusion (ISSN 1361-6587) http://www.iop.org/

Additional details

Publishing Information

Journal Title
Plasma Physics and Controlled Fusion
Journal Volume
45
Journal Issue
6
Journal Page Range
p. 919-932
ISSN
0741-3335
CODEN
PPCFET