The physics governing the upper truncation mass of the globular cluster mass function
Abstract
The mass function of globular cluster (GC) populations is a fundamental observable that encodes the physical conditions under which these massive stellar clusters formed and evolved. The high-mass end of star cluster mass functions are commonly described using a Schechter function, with an exponential truncation mass . For the GC mass functions in the Virgo galaxy cluster, this truncation mass increases with galaxy mass (). In this paper we fit Schechter mass functions to the GCs in the most massive galaxy group () in the E-MOSAICS simulations. The fiducial cluster formation model in E-MOSAICS reproduces the observed trend of with for the Virgo cluster. We therefore examine the origin of the relation by fitting as a function of galaxy mass, with and without accounting for mass loss by two-body relaxation, tidal shocks and/or dynamical friction. In the absence of these mass-loss mechanisms, the - relation is flat above . It is therefore the disruption of high-mass GCs in galaxies with that lowers the in these galaxies. High-mass GCs are able to survive in more massive galaxies, since there are more mergers to facilitate their redistribution to less-dense environments. The relation is therefore a consequence of both the formation conditions of massive star clusters and their environmentally-dependent disruption mechanisms.
Keywords
Cite
@article{arxiv.2112.02050,
title = {The physics governing the upper truncation mass of the globular cluster mass function},
author = {Meghan E. Hughes and Joel L. Pfeffer and Nate Bastian and Marie Martig and J. M. Diederik Kruijssen and Robert A. Crain and Marta Reina-Campos and Sebastian Trujillo-Gomez},
journal= {arXiv preprint arXiv:2112.02050},
year = {2022}
}
Comments
Accepted to MNRAS