A thorough investigation of confinement in Frascati Tokamak Upgrade has been carried out on a new database of ohmic, L-mode and advanced scenario discharges (multiple pellet-fuelled, radiation improved and internal transport barriers (ITBs)) obtained with the available auxiliary heating systems, namely electron cyclotron resonant heating, lower hybrid and ion Bernstein wave. A general agreement of the measured ?E with ITER97 L-mode scaling is found in ohmic and L-mode discharges. An improvement of the energy confinement time (?E) of up to about 60% over the ITER97 L-mode scaling has been obtained in ITB discharges, together with a reduction in local electron transport in the region of high pressure gradient, and up to about 30% in pellet-fuelled discharges (where ?E as large as ~120 ms have been reached). The linear density dependence of ?E in ohmic discharges has been found to extend above the saturation density threshold in pellet-fuelled plasmas.

Transport analysis of ohmic, L-mode and improved confinement discharges in FTU

Nowak S;Sozzi C;Granucci G;
2004

Abstract

A thorough investigation of confinement in Frascati Tokamak Upgrade has been carried out on a new database of ohmic, L-mode and advanced scenario discharges (multiple pellet-fuelled, radiation improved and internal transport barriers (ITBs)) obtained with the available auxiliary heating systems, namely electron cyclotron resonant heating, lower hybrid and ion Bernstein wave. A general agreement of the measured ?E with ITER97 L-mode scaling is found in ohmic and L-mode discharges. An improvement of the energy confinement time (?E) of up to about 60% over the ITER97 L-mode scaling has been obtained in ITB discharges, together with a reduction in local electron transport in the region of high pressure gradient, and up to about 30% in pellet-fuelled discharges (where ?E as large as ~120 ms have been reached). The linear density dependence of ?E in ohmic discharges has been found to extend above the saturation density threshold in pellet-fuelled plasmas.
2004
Istituto di fisica del plasma - IFP - Sede Milano
DEUTERIUM PLASMAS
GAUSSIAN BEAMS
CURRENT DRIVE
BARRIERS
TOKAMAK
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/43900
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