The Stability of Prendergast Magnetic Fields
Emma Kaufman, Daniel Lecoanet, Evan H. Anders, Benjamin P. Brown,, Geoffrey M. Vasil, Jeffrey S. Oishi, and Keaton J. Burns

TL;DR
This paper demonstrates through numerical simulations that the Prendergast magnetic field in stellar cores is linearly unstable over long timescales, challenging its stability as a model for stellar magnetic fields.
Contribution
It provides the first evidence of a long-term resistive instability in the Prendergast magnetic field using numerical simulations, showing it is not stable in stellar conditions.
Findings
The Prendergast field is linearly unstable over long timescales.
The instability is resistive and robust to boundary conditions.
Growth rate decreases with decreasing resistivity, but remains significant in stars.
Abstract
Convection in massive main sequence stars generates large scale magnetic fields in their cores which persists as they evolve up the red giant branch. The remnants of these fields may take the form of the Prendergast magnetic field, a combination of poloidal and toroidal field components which are expected to stabilize each other. Previous analytic and numerical calculations did not find any evidence for instability of the Prendergast field over short timescales. In this paper, we present numerical simulations which show a long timescale, linear instability of this magnetic field. We find the instability to be robust to changes in boundary conditions and it is not stabilized by strong stable stratification. The instability is a resistive instability, and the growth rate has a power-law dependence on the resistivity, in which the growth rate decreases as the resistivity decreases. We…
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Taxonomy
TopicsStellar, planetary, and galactic studies · Solar and Space Plasma Dynamics · Geomagnetism and Paleomagnetism Studies
