English

Stellar and Gaseous Disk Structures in Cosmological Galaxy Equilibrium Models

Astrophysics of Galaxies 2016-02-29 v2

Abstract

We present "radially-resolved-equilibrium-models" for the growth of stellar and gaseous disks in cosmologically accreting massive halos. Our focus is on objects that evolve to redshifts z2z\sim 2. We solve the time-dependent equations that govern the radially dependent star-formation rates, inflows and outflows from and to the inter- and circum-galactic medium, and inward radial gas flows within the disks. The stellar and gaseous disks reach equilibrium configurations on dynamical time scales much shorter than variations in the cosmological dark matter halo growth and baryonic accretions rates. We show analytically that mass and global angular momentum conservation naturally give rise to exponential gas and stellar disks over many radial length scales. As expected, the gaseous disks are more extended as set by the condition Toomre Q<1Q<1 for star-formation. The disks rapidly become baryon dominated. For massive, 5×1012M5\times 10^{12}M_\odot halos at redshift z=2z=2, we reproduced the typical observed star-formation rates of 100Myr1\sim 100 \, M_\odot \, {\rm yr}^{-1}, stellar masses 9×1010M\sim 9\times 10^{10}\, M_\odot, gas contents 1011M\sim 10^{11}\, M_\odot, half mass sizes of 4.5 and 5.8 kpc for the stars and gas, and characteristic surface densities of 500500 and 400Mpc2 400\, M_\odot \, {\rm pc}^{-2} for the stars and gas.

Keywords

Cite

@article{arxiv.1510.01238,
  title  = {Stellar and Gaseous Disk Structures in Cosmological Galaxy Equilibrium Models},
  author = {Ben Rathaus and Amiel Sternberg},
  journal= {arXiv preprint arXiv:1510.01238},
  year   = {2016}
}

Comments

13 pages, 28 figures, to appear in MNRAS

R2 v1 2026-06-22T11:13:05.253Z