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research article

Equilibrium β-limits dependence on bootstrap current in classical stellarators

Baillod, Antoine  
•
Loizu, Joaquim  
•
Qu, Z S
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September 20, 2023
Journal of Plasma Physics

While it is important to design stellarators with high magnetohydrodynamic stability β-limit, it is also crucial to ensure that good magnetic surfaces exist in a large range of β values. As β increases, pressure-driven currents perturb the vacuum magnetic field and often lead to the emergence of magnetic field line chaos, which can worsen the confinement and is the cause of another kind of β-limit, the so-called equilibrium β-limit. In this paper, we explore numerically the dependence of the equilibrium β-limit on the bootstrap current strength in a classical stellarator geometry using the stepped pressure equilibrium code. We develop a diagnostic to determine whether or not magnetic islands are expected to participate significantly to radial transport, and we build an analytical model to predict the expected equilibrium β-limit, which recovers the main features of the numerical results. This research opens the possibility to include additional targets in stellarator optimization functions, provides additional understanding on the existence of magnetic surfaces at large β, and is a step forward in the understanding of the equilibrium β-limit.

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Type
research article
DOI
10.1017/S0022377823000910
Author(s)
Baillod, Antoine  
Loizu, Joaquim  
Qu, Z S
Arbez, H P  
Graves, Jonathan  
Date Issued

2023-09-20

Publisher

Cambridge University Press

Published in
Journal of Plasma Physics
Volume

89

Issue

5

Article Number

905890508

Subjects

plasma confinement

•

plasma nonlinear phenomena

•

plasma simulation

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
SPC  
FunderGrant Number

EU funding

101052200

Available on Infoscience
September 26, 2023
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/201070
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