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A 3D Simulation of a Neutrino-Driven Supernova Explosion Aided By Convection and Magnetic Fields

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arxiv 2007.04775 v2 pith:5LEDXHNG submitted 2020-07-09 astro-ph.HE astro-ph.SR

classification astro-ph.HEastro-ph.SR
keywords neutrino-drivenfieldsmagneticconvectionexplosionfieldgainprogenitor
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abstract

We study the impact of a small-scale dynamo in core-collapse supernovae using a 3D neutrino magnetohydrodynamics simulation of a $15 M_\odot$ progenitor. The weak seed field is amplified exponentially in the gain region once neutrino-driven convection develops, and remains dominated by small-scale structures. About $250\, \mathrm{ms}$ after bounce, the field energy in the gain region reaches $\mathord{\sim} 50\%$ of kinetic equipartition. This supports the development of a neutrino-driven explosion with modest global anisotropy, which does not occur in a corresponding model without magnetic fields. Our results suggest that magnetic fields may play a beneficial subsidiary role in neutrino-driven supernovae even without rapid progenitor rotation. Further investigation into the nature of magnetohydrodynamic turbulence in the supernova core is required.

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  1. 3D simulations of a complete convective silicon shell burning phase

    astro-ph.SR 2026-08 conditional novelty 7.0 of 10

    A 3D simulation of a convective silicon-burning shell in a 14 solar mass star burns out about 800 s earlier than a 1D MESA model, suggesting weaker convective boundary mixing and a convective-reactive energy profile.

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