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Star Cluster Formation from Turbulent Clumps. II. Gradual Star Cluster Formation

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arxiv 1809.04607 v1 pith:DV5YAVNV submitted 2018-09-12 astro-ph.GA

classification astro-ph.GA
keywords formationstarclustersclusterclouddynamicalembeddedepsilon
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abstract

We investigate the dynamical evolution of star clusters during their formation, assuming that they are born from a turbulent starless clump of a given mass that is embedded within a parent self-gravitating molecular cloud characterized by a particular mass surface density. In contrast to the standard practice of most $N$-body studies, we do not assume that all stars are formed at once. Rather, we explore the effects of different star formation rates on the global structure and evolution of young embedded star clusters, also considering various primordial binary fractions and mass segregation levels. Our fiducial clumps studied in this paper have initial masses of $M_{\rm cl} = 3000\,M_\odot$, are embedded in ambient cloud environments of $\Sigma_{\rm cloud} = 0.1$ and 1 g cm$^{-2}$, and gradually form stars with an overall efficiency of 50% until the gas is exhausted. We investigate star formation efficiencies per free-fall time in the range $\epsilon_{\rm ff}=0.01$ to 1, and also compare to the instantaneous case ($\epsilon_{\rm ff}=\infty$) of Paper I. We show that most of the interesting dynamical processes that determine the future of the cluster, happen during the early formation phase. In particular, the ejected stellar population is sensitive to the duration of star cluster formation: for example, clusters with longer formation times produce more runaway stars, since these clusters remain in a dense state for longer, thus favouring occurrence of dynamical ejections. We also show that the presence of radial age gradients in star clusters depends sensitively on the star formation efficiency per free fall time, with observed values being matched best by our slowest forming clusters with $\epsilon_{\rm ff}\lesssim0.03$.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Runaway OB stars within 1 kpc of the Sun

    astro-ph.SR 2026-07 conditional novelty 6.0 of 10

    Using a volume-complete sample of OB stars within 1 kpc, the authors find runaway fractions of 17.5% for O-type stars and 7.0% for B-type stars via a 23 km/s peculiar-velocity threshold.

  2. Centrally concentrated star formation in young clusters II: Jet feedback

    astro-ph.GA 2026-06 unverdicted novelty 5.0 of 10

    Jet feedback in centrally concentrated clouds reduces star formation efficiency to 12-16% and yields cluster structures more consistent with observations than models without jets.

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