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First-principles-based multiple-isotope particle transport modelling at JET

Author
Abstract

Core turbulent particle transport with multiple isotopes can display observable differences in behaviour between the electron and ion particle channels. Experimental observations at JET with mixed H-D plasmas and varying NBI and gas-puff sources (Maslov et al 2018 Nucl. Fusion 7 076022) inferred source dominated electron peaking, but transport dominated isotope peaking. In this work, we apply the QuaLiKiz quasilinear gyrokinetic transport model within JINTRAC flux-driven integrated modelling, for core transport validation in this multiple-isotope regime. The experiments are successfully reproduced, predicting self consistently j , n e, n Be, T e, T i, w tor, and the isotope composition. As seen in the experiments, both H and D profiles are predicted to be peaked regardless of the core isotope source. An extensive sensitivity study confirmed that this result does not depend on the specific choices made for the boundary conditions and physics settings. While kinetic profiles and electron density peaking did vary depending on the simulation parameters, the isotope ratio remained nearly invariant, and tied to the electron density profile. These findings have positive ramifications for multiple-isotope fuelling, burn control, and helium ash removal.

Year of Publication
2020
Journal
Nuclear Fusion
Volume
60
Issue
4
Number of Pages
046007
Publisher
IOP Publishing
DOI
10.1088/1741-4326/ab60d1
PId
6c7a9e3fa42dfda6ac458fa9f12ee147
Alternate Journal
Nucl. Fusion
Journal Article
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