Full steady-state operation in Tore Supra
- 1 December 1996
- journal article
- Published by IOP Publishing in Plasma Physics and Controlled Fusion
- Vol. 38 (12) , 2113-2131
- https://doi.org/10.1088/0741-3335/38/12/006
Abstract
In order to produce fully non-inductive, lower hybrid (LH) driven discharges in a systematic and reproducible manner, new operation modes have been studied on the superconducting Tore Supra tokamak. To cope with some uncertainties in the LH current drive efficiency (e.g. profile dependences), the plasma current is not imposed a priori, but evolves freely until the equilibrium (which depends on the LH power level) is reached. The voltage applied on the primary circuit no longer controls the plasma current. In an `open loop' scenario in which this voltage is preset and constant, the timescale required to attain the equilibrium is the longest characteristic time of the coupled plasma - poloidal field coils system ( s). In order to obtain a stationary state faster, a new feedback scheme has been implemented in which the primary circuit voltage is controlled in such a way that the flux consumption vanishes. It is shown that this operation mode allows full steady-state to be reached within a characteristic time of a few seconds. The underlying physics is described and a detailed analysis of the experiments is made. It is shown, in particular, that this operation scenario generates stable stationary plasmas with improved confinement, so that the so-called `LHEP' regime can be extrapolated to continuous operation.Keywords
This publication has 6 references indexed in Scilit:
- Stationary regimes of improved confinement in Tore SupraPlasma Physics and Controlled Fusion, 1996
- Stationary magnetic shear reversal experiments in Tore SupraPlasma Physics and Controlled Fusion, 1996
- Improved confinement in high lilower hybrid driven steady state plasmas in TORE SUPRANuclear Fusion, 1994
- One minute pulse operation in the TORE SUPRA tokamakNuclear Fusion, 1993
- Plasma equilibrium evolution at the resistive diffusion timescaleComputer Physics Reports, 1984
- Theory of plasma transport in toroidal confinement systemsReviews of Modern Physics, 1976