On a JET-ILW pulse, over 2s, the self-consistent time evolution of current, NBI source, radiation, particle, heat and momentum transport of electrons and multiple ions including Tungsten (W) is modelled. At each time step, the measured temperatures, densities and rotation profiles are successfully predicted and the observed W accumulation is reproduced. This is an essential step to allow plasma scenarios to be designed which are resistant to core accumulation. W transport is both turbulent and neoclassical, driven by the main ion and electron densities and temperatures. Predictive scenario modelling which can accurately describe W evolution therefore requires an accurate prediction of the bulk ion density, temperature, and rotation, as well as accurate models for W transport. The poloidal asymmetries induced by the centrifugal force significantly enhance the neoclassical transport and are now included in the first principles-based turbulent and neoclassical transport models integrated in JETTO-SANCO [1,2] (respectively the quasilinear gyrokinetic code QuaLiKiz [3] and the drift-kinetic code NEO [4]). This integrated modelling of a JET hybrid shot over 2s successfully reproduces experimental ion and electron temperatures, electron density and rotation profiles as well as the W core accumulation and its associated radiation. In these simulations, the W concentration remains fixed at pedestal top, showing that, in that case, ELMs are not playing a role in core W accumulation. W also seems to reduce heat and particle turbulent transport through complex nonlinear interplays.

Integrated modelling of multi-channel transport including Tungsten in JET

Valisa M;
2017

Abstract

On a JET-ILW pulse, over 2s, the self-consistent time evolution of current, NBI source, radiation, particle, heat and momentum transport of electrons and multiple ions including Tungsten (W) is modelled. At each time step, the measured temperatures, densities and rotation profiles are successfully predicted and the observed W accumulation is reproduced. This is an essential step to allow plasma scenarios to be designed which are resistant to core accumulation. W transport is both turbulent and neoclassical, driven by the main ion and electron densities and temperatures. Predictive scenario modelling which can accurately describe W evolution therefore requires an accurate prediction of the bulk ion density, temperature, and rotation, as well as accurate models for W transport. The poloidal asymmetries induced by the centrifugal force significantly enhance the neoclassical transport and are now included in the first principles-based turbulent and neoclassical transport models integrated in JETTO-SANCO [1,2] (respectively the quasilinear gyrokinetic code QuaLiKiz [3] and the drift-kinetic code NEO [4]). This integrated modelling of a JET hybrid shot over 2s successfully reproduces experimental ion and electron temperatures, electron density and rotation profiles as well as the W core accumulation and its associated radiation. In these simulations, the W concentration remains fixed at pedestal top, showing that, in that case, ELMs are not playing a role in core W accumulation. W also seems to reduce heat and particle turbulent transport through complex nonlinear interplays.
2017
Istituto gas ionizzati - IGI - Sede Padova
Inglese
44th EPS Conference on Plasma Physics, EPS 2017
44th European Physical Society Conference on Plasma Physics - EPS 2017
4
9781510849303
http://ocs.ciemat.es/EPS2017PAP/pdf/O4.124.pdf
European Physical Society (EPS)
Mulhouse
FRANCIA
26-30 June 2017
Belfast, Northern Ireland
Tungsten multi channel transport
JET
O4.124
17
restricted
Breton, S; Casson, Fj; Bourdelle, C; Camenen, Y; Citrin, J; Baranov, Y; Challis, C; Garcia, J; Corrigan, G; Garzotti, L; Henderson, S; Koechl, F; O'Mu...espandi
273
info:eu-repo/semantics/conferenceObject
04 Contributo in convegno::04.01 Contributo in Atti di convegno
   Implementation of activities described in the Roadmap to Fusion during Horizon 2020 through a Joint programme of the members of the EUROfusion consortium
   EUROfusion
   H2020
   633053
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/348555
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