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Energy-selective confinement of fusion-born alpha particles during internal relaxations in a tokamak plasma.

Authors :
Bierwage, A.
Shinohara, K.
Kazakov, Ye.O.
Kiptily, V. G.
Lauber, Ph.
Nocente, M.
Štancar, Ž.
Sumida, S.
Yagi, M.
Garcia, J.
Ide, S.
JET Contributors
Source :
Nature Communications; 7/8/2022, Vol. 13 Issue 1, p1-10, 10p
Publication Year :
2022

Abstract

Long-pulse operation of a self-sustained fusion reactor using toroidal magnetic containment requires control over the content of alpha particles produced by D-T fusion reactions. On the one hand, MeV-class alpha particles must stay confined to heat the plasma. On the other hand, decelerated helium ash must be expelled before diluting the fusion fuel. Here, we report results of kinetic-magnetohydrodynamic hybrid simulations of a large tokamak plasma that confirm the existence of a parameter window where such energy-selective confinement can be accomplished by exploiting internal relaxation events known as sawtooth crashes. The physical picture — a synergy between magnetic geometry, optimal crash duration and rapid particle motion — is completed by clarifying the role of magnetic drifts. Besides causing asymmetry between co- and counter-going particle populations, magnetic drifts determine the size of the confinement window by dictating where and how much reconnection occurs in particle orbit topology. Confining plasma for fusion requires controlling many parameters. Here the authors report the existence of a narrow parameter space for the simultaneous confinement of energetic alpha particles and removal of slowed-down helium ash in a magnetically confined fusion plasma by using kinetic-magnetohydrodynamic hybrid simulations. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
20411723
Volume :
13
Issue :
1
Database :
Complementary Index
Journal :
Nature Communications
Publication Type :
Academic Journal
Accession number :
157888860
Full Text :
https://doi.org/10.1038/s41467-022-31589-6