From the Top Down and Back Up Again: Star Cluster Structure from Hierarchical Star Formation
Abstract
Young massive star clusters spanning in mass have been observed to have similar surface brightness profiles. Recent hydrodynamical simulations of star cluster formation have also produced star clusters with this structure. We argue analytically that this type of mass distribution arises naturally in the relaxation from a hierarchically-clustered distribution of stars into a monolithic star cluster through hierarchical merging. We show that arbitrary initial profiles will tend to converge to a universal profile under hierarchical merging, owing to phase-space mixing obeying certain conservation constraints. We perform -body simulations of a pairwise merger of model star clusters and find that mergers readily produce the shallow surface brightness profiles observed in young massive clusters. Finally, we simulate the relaxation of a hierarchically-clustered mass distribution constructed from an idealized fragmentation model. Assuming only power-law spatial and kinematic scaling relations, these numerical experiments are able to reproduce the surface density profiles of observed young massive star clusters. Thus we provide physical motivation for the structure of young massive clusters within the paradigm of hierarchical star formation. This has important implications for the structure of nascent globular clusters.
Keywords
Cite
@article{arxiv.1708.09065,
title = {From the Top Down and Back Up Again: Star Cluster Structure from Hierarchical Star Formation},
author = {Michael Y. Grudić and Dávid Guszejnov and Philip F. Hopkins and Astrid Lamberts and Michael Boylan-Kolchin and Norman Murray and Denise Schmitz},
journal= {arXiv preprint arXiv:1708.09065},
year = {2018}
}
Comments
16 pages, 10 figures