Modeling the total and polarized emission in evolving galaxies: "spotty" magnetic structures
T.G. Arshakian, R. Stepanov, R. Beck, M. Krause, and D. Sokoloff

TL;DR
This paper models the evolution of magnetic fields in star-forming disk galaxies, predicting observable radio emission and polarization features up to redshift 3, aiding future SKA observations.
Contribution
It introduces a heuristic dynamo-based model for magnetic field evolution in galaxies, including 'spotty' magnetic structures and their observational signatures.
Findings
Magnetic fields evolve into 'spotty' configurations within 0.8 Gyr.
Simulated radio maps show evolving polarization and Faraday rotation signatures.
Predictions assist in interpreting future high-redshift radio observations.
Abstract
Future radio observations with the SKA and its precursors will be sensitive to trace spiral galaxies and their magnetic field configurations up to redshift . We suggest an evolutionary model for the magnetic configuration in star-forming disk galaxies and simulate the magnetic field distribution, the total and polarized synchrotron emission, and the Faraday rotation measures for disk galaxies at . Since details of dynamo action in young galaxies are quite uncertain, we model the dynamo action heuristically relying only on well-established ideas of the form and evolution of magnetic fields produced by the mean-field dynamo in a thin disk. We assume a small-scale seed field which is then amplified by the small-scale turbulent dynamo up to energy equipartition with kinetic energy of turbulence. The large-scale galactic dynamo starts from seed fields of 100 pc and an…
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