Magnetic fields in massive spirals: The role of feedback and initial conditions
Evangelia Ntormousi

TL;DR
This study uses high-resolution simulations to explore how initial magnetic field configurations and stellar feedback influence the evolution of magnetic fields in Milky-Way-like galaxies, revealing feedback's role in magnetic turbulence and the impact of initial conditions.
Contribution
First numerical models to analyze the combined effects of initial magnetic field morphology and stellar feedback on galactic magnetic field evolution.
Findings
Supernova feedback efficiently generates large-scale turbulent magnetic fields.
Random magnetic fields develop rapidly regardless of initial conditions.
Initial magnetic field morphology influences the development of large-height magnetic structures.
Abstract
Magnetic fields play a very important role in the evolution of galaxies through their direct impact on star formation and stellar feedback-induced turbulence. However, their co-evolution with these processes has still not been thoroughly investigated, and the possible effect of the initial conditions is largely unknown. This letter presents the first results from a series of high-resolution numerical models, aimed at deciphering the effect of the initial conditions and of stellar feedback on the evolution of the galactic magnetic field in isolated, Milky-Way-like galaxies. The models start with an ordered, either poloidal or toroidal, magnetic field of varying strength, and are evolved with and without supernova feedback. They include a dark matter halo, a stellar and a gaseous disk, as well as the appropriate cooling and heating processes for the interstellar medium. Independently of…
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