Populating H and CO in galaxy simulation with dust evolution
arXiv:1711.00600 · doi:10.1093/mnras/stx2863
Abstract
There are two major theoretical issues for the star formation law (the relation between the surface densities of molecular gas and star formation rate on a galaxy scale): (i) At low metallicity, it is not obvious that star-forming regions are rich in H because the H formation rate depends on the dust abundance; and (ii) whether or not CO really traces H is uncertain, especially at low metallicity. To clarify these issues, we use a hydrodynamic simulation of an isolated disc galaxy with a spatial resolution of a few tens parsecs. The evolution of dust abundance and grain size distribution is treated consistently with the metal enrichment and the physical state of the interstellar medium. We compute the H and CO abundances using a subgrid post-processing model based on the dust abundance and the dissociating radiation field calculated in the simulation. We find that when the metallicity is Z ( Gyr), H is not a good tracer of star formation rate because H-rich regions are limited to dense compact regions. At Z, a tight star formation law is established for both H and CO. At old ( Gyr) ages, we also find that adopting the so-called MRN grain size distribution with an appropriate dust-to-metal ratio over the entire disc gives reasonable estimates for the H and CO abundances. For CO, improving the spatial resolution of the simulation is important while the H abundance is not sensitive to sub-resolution structures at Z.
21 pages, 14 figures, accepted for publication in MNRAS
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