Pressure-driven fragmentation of clouds at high redshift
Abstract
The discovery of a hyper metal-poor star with total metallicity of Z, has motivated new investigations of how such objects can form from primordial gas polluted by a single supernova. In this paper we present a shock-cloud model which simulates a supernova remnant interacting with a cloud in a metal-free environment at redshift . Pre-supernova conditions are considered, which include a multiphase neutral medium and H II region. A small dense clump ( cm), located 40 pc from a 40 M metal-free star, embedded in a cm ambient cloud. The evolution of the supernova remnant (explosion energy erg) and its subsequent interaction with the dense clump is examined. This is the first study to include a comprehensive treatment of the non-equilibrium chemistry and associated radiative cooling that is occurring at all stages of the shock-cloud model. We have included a primordial chemistry network that covers the temperature range K, and is coupled to thermal models of atomic & molecular cooling. We find density enhancement of the clump (i.e maximum density cm) within this metal-free model. This is consistent with Galactic shock-cloud models considering solar metallicity gas with equilibrium cooling functions. Despite this strong compression, the cloud does not become gravitationally unstable. We find that the small cloud modelled here is destroyed for shock velocities km s, and not significantly affected by shocks with velocity km s. Rather specific conditions are required to make such a cloud collapse.
Keywords
Cite
@article{arxiv.1402.1103,
title = {Pressure-driven fragmentation of clouds at high redshift},
author = {Harpreet Dhanoa and Jonathan Mackey and Jeremy Yates},
journal= {arXiv preprint arXiv:1402.1103},
year = {2014}
}
Comments
accepted in MNRAS, 11 pages, 5 figures, 5 tables