Galactic m\'enage \`a trois: Simulating magnetic fields in colliding galaxies
H. Kotarba, H. Lesch, K. Dolag, T. Naab, P.H. Johansson, J. Donnert,, F.A. Stasyszyn

TL;DR
This study uses high-resolution simulations to explore how magnetic fields influence the dynamics and shock propagation during the collision of three galaxies, revealing rapid magnetic amplification and observable polarized emissions.
Contribution
First simulation to embed merging galaxies in a magnetized IGM, demonstrating magnetic field effects on shock dynamics and galaxy evolution during mergers.
Findings
Magnetic fields accelerate shock propagation and increase Mach numbers.
Magnetic field strengths saturate rapidly, matching observed values.
Shocks produce significant polarized radio emission.
Abstract
We present high resolution simulations of a multiple merger of three disk galaxies including the evolution of magnetic fields performed with the N-body/SPH code Gadget. For the first time, we embed the galaxies in a magnetized, low-density medium, thus modeling an ambient IGM. The simulations include radiative cooling and a model for star formation and supernova feedback. The progenitor disks have initial magnetic seed fields in the range of 10e-9 to 10e-6 G and the IGM has initial fields of 10e-12 to 10e-9 G. The simulations are compared to a run excluding magnetic fields. We show that the propagation of interaction-driven shocks depends significantly on the initial magnetic field strength. The shocks propagate faster in simulations with stronger initial field, suggesting that the shocks are supported by magnetic pressure. The Mach numbers of the shocks range from approximately M=1.5…
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