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Modelling of combined ICRF and NBI heating in JET hybrid plasmas

Authors :
Barcelona Supercomputing Center
Gallart, Dani
Mantsinen, Mervi
Challis, Clive
Frigione, Domenico
Graves, Jonathan
Hobirk, Joerg
Belonohy, Eva
Czarnecka, Agata
Eriksson, Jacob
Goniche, Marc
Hellesen, Carl
Jacquet, Philippe
Joffrin, Emmanuel
Krawczyk, Natalia
King, Damian
Lennholm, Morten
Lerche, Ernesto
Pawelec, Ewa
Sips, George
Solano, Emilia
Tsalas, Maximos
Valisa, Marco
JET Contributors
Barcelona Supercomputing Center
Gallart, Dani
Mantsinen, Mervi
Challis, Clive
Frigione, Domenico
Graves, Jonathan
Hobirk, Joerg
Belonohy, Eva
Czarnecka, Agata
Eriksson, Jacob
Goniche, Marc
Hellesen, Carl
Jacquet, Philippe
Joffrin, Emmanuel
Krawczyk, Natalia
King, Damian
Lennholm, Morten
Lerche, Ernesto
Pawelec, Ewa
Sips, George
Solano, Emilia
Tsalas, Maximos
Valisa, Marco
JET Contributors
Publication Year :
2017

Abstract

During the 2015-2016 JET campaigns many efforts have been devoted to the exploration of high performance plasma scenarios envisaged for ITER operation. In this paper we model the combined ICRF+NBI heating in selected key hybrid discharges using PION. The antenna frequency was tuned to match the cyclotron frequency of minority hydrogen (H) at the center of the tokamak coinciding with the second harmonic cyclotron resonance of deuterium. The modelling takes into account the synergy between ICRF and NBI heating through the second harmonic cyclotron resonance of deuterium beam ions which allows us to assess its impact on the neutron rate RNT. We evaluate the influence of H concentration which was varied in different discharges in order to test their role in the heating performance. According to our modelling, the ICRF enhancement of RNT increases by decreasing the H concentration which increases the ICRF power absorbed by deuterons. We find that in the recent hybrid discharges this ICRF enhancement was in the range of 10-25%. Finally, we extrapolate the results to D-T and find that the best performing hybrid discharges correspond to an equivalent fusion power of ∼7.0 MW in D-T.<br />This work has been carried out within the framework of the EUROfusion Consortium and has received funding from the Euratom research and training programme 2014-2018 under grant agreement No 633053. The views and opinions expressed herein do not necessarily reflect those of the European Commission. Dani Gallart would like to thank “La Caixa” for support of his PhD studies.<br />Peer Reviewed<br />Postprint (published version)

Details

Database :
OAIster
Notes :
4 p., application/pdf, English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1012842174
Document Type :
Electronic Resource