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Modelling and theoretical understanding of the isotope effect from JET experiments in view of reliable predictions for deuterium-tritium plasmas

  • J. Garcia (Corresponding author)
  • , F.J. Casson
  • , A. Bañón Navarro
  • , N. Bonanomi
  • , J. Citrin
  • , D. King
  • , P. Mantica
  • , A. Mariani
  • , M. Marin
  • , S. Mazzi
  • , E. Viezzer

Onderzoeksoutput: Bijdrage aan tijdschriftTijdschriftartikelAcademicpeer review

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Samenvatting

This is an overview of the theoretical understanding of the so-called isotope effect in JET hydrogen versus deuterium plasmas. Experimentally, weak to moderate deviations from naive GyroBohm scaling expectations are found for the core heat transport in L and H-modes. The physical mechanisms behind such deviations are analysed in the framework of the gyrokinetic theory. In the case of particle transport, isotope effects are mostly found in the plasma edge where the density is higher in deuterium than in hydrogen plasmas. In general, both the thermal energy and particle confinement increase with increasing main ion mass. A comparison of such results to expectations for deuterium-tritium plasmas in ITER is discussed.

Originele taal-2Engels
Artikelnummer054001
Aantal pagina's15
TijdschriftPlasma Physics and Controlled Fusion
Volume64
Nummer van het tijdschrift5
DOI's
StatusGepubliceerd - mei 2022

Bibliografische nota

Publisher Copyright:
© CEA.

Financiering

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 and 2019–2020 under Grant Agreement No. 633053. The views and opinions express herein do not necessarily reflect those of the European Commission.

FinanciersFinanciernummer
European Union’s Horizon Europe research and innovation programme
European Union’s Horizon Europe research and innovation programme633053

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