Early Evolution and 3D Structure of Embedded Star Clusters
Claude Cournoyer-Cloutier, Alison Sills, William E. Harris, Sabrina M. Appel, Sean C. Lewis, Brooke Polak, Aaron Tran, Maite J. C. Wilhelm, Mordecai-Mark Mac Low, Stephen L. W. McMillan, Simon Portegies Zwart

TL;DR
This study uses advanced simulations to explore how embedded star clusters form and evolve morphologically in their early stages, revealing complex mass dynamics and the influence of initial conditions.
Contribution
It introduces detailed simulations of star cluster formation that incorporate multiple physical processes, providing new insights into early cluster morphology and evolution.
Findings
Clusters can lose up to half their mass while embedded.
Cluster morphology varies rapidly and is not mass-dependent.
Early cluster morphology reflects recent history, not long-term evolution.
Abstract
We perform simulations of star cluster formation to investigate the morphological evolution of embedded star clusters in the earliest stages of their evolution. We conduct our simulations with Torch, which uses the AMUSE framework to couple state-of-the-art stellar dynamics to star formation, radiation, stellar winds, and hydrodynamics in FLASH. We simulate a suite of M clouds at 0.0683 pc resolution for 2 Myr after the onset of star formation, with virial parameters = 0.8, 2.0, 4.0 and different random samplings of the stellar initial mass function and prescriptions for primordial binaries. Our simulations result in a population of embedded clusters with realistic morphologies (sizes, densities, and ellipticities) that reproduce the known trend of clouds with higher initial having lower star formation efficiencies. Our key results are as…
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Taxonomy
TopicsAstrophysics and Star Formation Studies · Stellar, planetary, and galactic studies · Astronomy and Astrophysical Research
