Magnetic field amplification and X-ray emission in galaxy minor mergers
Annette Geng, Hanna Kotarba, Florian B\"urzle, Klaus Dolag, Federico, Stasyszyn, Alexander Beck, Peter Nielaba

TL;DR
This study uses simulations to explore how magnetic fields evolve and amplify during galaxy minor mergers, revealing saturation levels, effects on X-ray emissions, and the influence of initial conditions and impact energy.
Contribution
It provides the first detailed simulation-based analysis of magnetic field amplification and X-ray emission evolution in galaxy minor mergers, considering various initial parameters.
Findings
Magnetic fields saturate at several microGauss for mergers with mass ratios up to 10:1.
Higher impact energy leads to more efficient magnetic field amplification.
Magnetic fields increase IGM temperature and X-ray luminosity after first encounter.
Abstract
We investigate the magnetic field evolution in a series of galaxy minor mergers using the N-body/smoothed particle hydrodynamics (SPH) code \textsc{Gadget}. The simulations include the effects of radiative cooling, star formation and supernova feedback. Magnetohydrodynamics (MHD) is implemented using the SPH method. We present 32 simulations of binary mergers of disc galaxies with mass ratios of 2:1 up to 100:1, whereby we have additionally varied the initial magnetic field strengths, disc orientations and resolutions. We investigate the amplification of a given initial magnetic field within the galaxies and an ambient intergalactic medium (IGM) during the interaction. We find that the magnetic field strengths of merger remnants with mass ratios up to 10:1 saturate at a common value of several G. For higher mass ratios, the field strength saturates at lower values. The saturation…
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