From hydrodynamics to N-body simulations of star clusters: mergers and rotation

Author:

Ballone Alessandro123ORCID,Torniamenti Stefano123,Mapelli Michela123ORCID,Di Carlo Ugo N124ORCID,Spera Mario1256ORCID,Rastello Sara12ORCID,Gaspari Nicola17,Iorio Giuliano12ORCID

Affiliation:

1. Physics and Astronomy Department Galileo Galilei, University of Padova, Vicolo dell’Osservatorio 3, I-35122 Padova, Italy

2. INFN – Padova, Via Marzolo 8, I-35131 Padova, Italy

3. INAF – Osservatorio Astronomico di Padova, Vicolo dell’Osservatorio 5, I-35122 Padova, Italy

4. Dipartimento di Scienza e Alta Tecnologia, University of Insubria, Via Valleggio 11, I-22100 Como, Italy

5. Center for Interdisciplinary Exploration and Research in Astrophysics (CIERA), Evanston, IL 60208, USA

6. Department of Physics & Astronomy, Northwestern University, Evanston, IL 60208, USA

7. Department of Astrophysics/IMAPP, Radboud University, P O Box 9010, NL-6500 GL Nijmegen, The Netherlands

Abstract

ABSTRACT We present a new method to obtain more realistic initial conditions for N-body simulations of young star clusters. We start from the outputs of hydrodynamical simulations of molecular cloud collapse, in which star formation is modelled with sink particles. In our approach, we instantaneously remove gas from these hydrodynamical simulation outputs to mock the end of the gas-embedded phase, induced by stellar feedback. We then enforce a realistic initial mass function by splitting or joining the sink particles based on their mass and position. Such initial conditions contain more consistent information on the spatial distribution and the kinematical and dynamical states of young star clusters, which are fundamental to properly study these systems. For example, by applying our method to a set of previously run hydrodynamical simulations, we found that the early evolution of young star clusters is affected by gas removal and by the early dry merging of sub-structures. This early evolution can either quickly erase the rotation acquired by our (sub-)clusters in their embedded phase or ‘fuel’ it by feeding of angular momentum by sub-structure mergers, before two-body relaxation acts on longer time-scales

Funder

H2020 European Research Council

Horizon 2020 Framework Programme

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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