The evolution of primordial magnetic field since its generation
Tina Kahniashvili, Axel Brandenburg, Alexander G. Tevzadze

TL;DR
This paper models the evolution of primordial magnetic fields in the early universe using comprehensive MHD turbulence simulations, revealing inverse energy transfer and decay behaviors that inform their role as seeds for cosmic magnetic fields.
Contribution
It introduces a detailed theoretical and numerical framework for the evolution of primordial magnetic fields considering turbulent effects in an expanding universe, applicable to various cosmological scenarios.
Findings
Inverse energy transfer in non-helical turbulence.
Decay properties depend on helicity state.
Primordial fields can seed galactic magnetic fields.
Abstract
We study the evolution of primordial magnetic fields in an expanding cosmic plasma. For this purpose we present a comprehensive theoretical model to consider the evolution of MHD turbulence that can be used over a wide range of physical conditions, including cosmological and astrophysical applications. We model different types of decaying cosmic MHD turbulence in the expanding universe and characterize the large-scale magnetic fields in such a medium. Direct numerical simulations of freely decaying MHD turbulence are performed for different magnetogenesis scenarios: magnetic fields generated during cosmic inflation as well as electroweak and QCD phase transitions in the early universe. Magnetic fields and fluid motions are strongly coupled due to the high Reynolds number in the early universe. Hence, we abandon the simple adiabatic dilution model to estimate magnetic field amplitudes…
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