On the influence of ram-pressure stripping on interacting galaxies in clusters
W. Kapferer (1), T. Kronberger (1), C. Ferrari (1), T. Riser (2) and, S. Schindler (1) ((1) Institute for Astro-, Particle Physics, University, of Innsbruck (2) Institute for Mathematics, University of Innsbruck)

TL;DR
This study uses simulations to show that ram-pressure stripping significantly affects star formation and gas distribution in interacting galaxies within clusters, enhancing star formation rates but destroying tidal features.
Contribution
It provides new insights into how ram pressure influences galaxy interactions, especially in cluster outskirts, by combining N-body/hydrodynamic simulations with different interaction configurations.
Findings
Star formation rate increases threefold with ram pressure.
Tidal tails and gaseous bridges are nearly destroyed by ram pressure.
Approximately 10-15% of new stars form in the wake of the galaxies.
Abstract
We investigate the influence of ram pressure on the star-formation rate and the distribution of gas and stellar matter in interacting model galaxies in clusters. To simulate the baryonic and non-baryonic components of interacting disc galaxies moving through a hot, thin medium we use a combined N-body/hydrodynamic code GADGET2 with a description for star formation based on density thresholds. Two identical model spiral galaxies on a collision trajectory with three different configurations were investigated in detail. In the first configuration the galaxies collide without the presence of an ambient medium, in the second configurations the ram pressure acts face on on the interacting galaxies and in the third configuration the ram pressure acts edge on. The ambient medium is thin ( g/cm), hot (3 keV K) and has a relative velocity of 1000 km/s, to…
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