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Main Authors: Hosking, David N., Swinnerton, Luca, Kesavan, Rahul
Format: Preprint
Published: 2026
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Online Access:https://arxiv.org/abs/2602.06012
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author Hosking, David N.
Swinnerton, Luca
Kesavan, Rahul
author_facet Hosking, David N.
Swinnerton, Luca
Kesavan, Rahul
contents A transonic shear flow directed along magnetic field lines can linearly stabilize a steep pressure gradient in a confined magnetohydrodynamic (MHD) plasma. In Z-pinch geometry, we show that, like the edge pedestal in tokamak devices, this transport barrier -- which we call the ``MHD pedestal'' -- is metastable, i.e., unstable to finite-amplitude displacements of flux tubes. We simulate the slow formation of an MHD pedestal in a heated and sheared Z-pinch, which collapses on reaching a critical height, expelling an order-unity fraction of the confined thermal energy. The MHD pedestal then rebuilds and the process repeats, in a manner analogous to the ELM cycle seen in fusion experiments. We show that the available energy of the metastable equilibrium, and the most energetically favorable amount of ejected plasma, can be calculated from first principles via combinatorial optimization of flux-tube interchanges.
format Preprint
id arxiv_https___arxiv_org_abs_2602_06012
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Explosive eruption cycles in a rotating Z-pinch
Hosking, David N.
Swinnerton, Luca
Kesavan, Rahul
Plasma Physics
A transonic shear flow directed along magnetic field lines can linearly stabilize a steep pressure gradient in a confined magnetohydrodynamic (MHD) plasma. In Z-pinch geometry, we show that, like the edge pedestal in tokamak devices, this transport barrier -- which we call the ``MHD pedestal'' -- is metastable, i.e., unstable to finite-amplitude displacements of flux tubes. We simulate the slow formation of an MHD pedestal in a heated and sheared Z-pinch, which collapses on reaching a critical height, expelling an order-unity fraction of the confined thermal energy. The MHD pedestal then rebuilds and the process repeats, in a manner analogous to the ELM cycle seen in fusion experiments. We show that the available energy of the metastable equilibrium, and the most energetically favorable amount of ejected plasma, can be calculated from first principles via combinatorial optimization of flux-tube interchanges.
title Explosive eruption cycles in a rotating Z-pinch
topic Plasma Physics
url https://arxiv.org/abs/2602.06012