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Direct gyrokinetic comparison of pedestal transport in JET with carbon and ITER-like walls

Articolo
Data di Pubblicazione:
2019
Abstract:
This paper compares the gyrokinetic instabilities and transport in two representative JET pedestals, one (pulse 78697) from the JET configuration with a carbon wall (C) and another (pulse 92432) from after the installation of JET's ITER-like Wall (ILW). The discharges were selected for a comparison of JET-ILW and JET-C discharges with good confinement at high current (3 MA, corresponding also to low rho(*)) and retain the distinguishing features of JET-C and JET-ILW, notably, decreased pedestal top temperature for JET-ILW. A comparison of the profiles and heating power reveals a stark qualitative difference between the discharges: the JET-ILW pulse (92432) requires twice the heating power, at a gas rate of 1.9 x 10(22) e s(-1), to sustain roughly half the temperature gradient of the JET-C pulse (78697), operated at zero gas rate. This points to heat transport as a central component of the dynamics limiting the JET-ILW pedestal and reinforces the following emerging JET-ILW pedestal transport paradigm, which is proposed for further examination by both theory and experiment. ILW conditions modify the density pedestal in ways that decrease the normalized pedestal density gradient a/L-n, often via an outward shift in relation to the temperature pedestal. This is attributable to some combination of direct metal wall effects and the need for increased fueling to mitigate tungsten contamination. The modification to the density profile increases eta = L-n/L-T, thereby producing more robust ion temperature gradient (ITG) and electron temperature gradient driven instability. The decreased pedestal gradients for JET-ILW (92432) also result in a strongly reduced E x B shear rate, further enhancing the ion scale turbulence. Collectively, these effects limit the pedestal temperature and demand more heating power to achieve good pedestal performance. Our simulations, consistent with basic theoretical arguments, find higher ITG turbulence, stronger stiffness, and higher pedestal transport in the ILW plasma at lower rho(*).
Tipologia CRIS:
01.01 Articolo in rivista
Keywords:
pedestal; gyrokinetics; JET; transport
Elenco autori:
Lazzaro, Enzo; Murari, Andrea; Pomaro, Nicola; Sozzi, Carlo; Taliercio, Cesare; Gervasini, Gabriele; Innocente, Paolo; Vianello, Nicola; Terranova, David; Brombin, Matteo; Laguardia, Laura; Alessi, Edoardo; Giacomelli, LUCA CARLO; Puiatti, MARIA ESTER; Paccagnella, Roberto; Muraro, Andrea; Uccello, Andrea; Valisa, Marco; Marchetto, Chiara; Tardocchi, Marco; Carraro, Lorella; DEGLI AGOSTINI, Fabio; Mantica, Paola; Pasqualotto, Roberto
Autori di Ateneo:
ALESSI EDOARDO
BROMBIN MATTEO
CARRARO LORELLA
DEGLI AGOSTINI FABIO
GERVASINI GABRIELE
INNOCENTE PAOLO
LAGUARDIA LAURA
MARCHETTO CHIARA
MURARI ANDREA
MURARO ANDREA
PASQUALOTTO ROBERTO
POMARO NICOLA
SOZZI CARLO
TARDOCCHI MARCO
TERRANOVA DAVID
UCCELLO ANDREA
VIANELLO NICOLA
Link alla scheda completa:
https://iris.cnr.it/handle/20.500.14243/412041
Pubblicato in:
NUCLEAR FUSION
Journal
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https://iopscience.iop.org/article/10.1088/1741-4326/ab25bd/meta
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