Constrained simulations of the Antennae Galaxies: Comparison with Herschel-PACS observations
Simon J. Karl (1,2,3), T. Lunttila (4), T. Naab (3), P.H. Johansson, (4), U. Klaas (5), M. Juvela (4) ((1) IoA, (2) KICC, (3) MPA, (4) Helsinki,, (5) MPIA)

TL;DR
This study uses hydro-dynamical simulations and radiative transfer modeling to replicate Herschel-PACS observations of the Antennae galaxies, providing insights into starburst origins and feedback physics.
Contribution
It introduces a detailed simulation approach that matches observed infrared emission and spatial distribution, constraining star formation and feedback processes in galaxy mergers.
Findings
Simulations reproduce observed infrared flux peaks (~65-81 Jy at 99-116 um).
Spatial emission distribution matches Herschel observations, with >50% in overlap region.
Feedback parameter variations significantly affect infrared properties and spatial emission patterns.
Abstract
We present a set of hydro-dynamical numerical simulations of the Antennae galaxies in order to understand the origin of the central overlap starburst. Our dynamical model provides a good match to the observed nuclear and overlap star formation, especially when using a range of rather inefficient stellar feedback efficiencies (0.01 < q_EoS < 0.1). In this case a simple conversion of local star formation to molecular hydrogen surface density motivated by observations accounts well for the observed distribution of CO. Using radiative transfer post-processing we model synthetic far-infrared spectral energy distributions (SEDs) and two-dimensional emission maps for direct comparison with Herschel-PACS observations. For a gas-to-dust ratio of 62:1 and the best matching range of stellar feedback efficiencies the synthetic far-infrared SEDs of the central star forming region peak at values of…
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