English

Column Density Profiles of Multi-Phase Gaseous Halos

Astrophysics of Galaxies 2016-03-09 v3 Cosmology and Nongalactic Astrophysics

Abstract

We analyze circumgalactic medium (CGM) in a suite of high-resolution cosmological re-simulations of a Milky-Way size galaxy and show that CGM properties are quite sensitive to details of star formation--feedback loop modelling. The simulation that produces a realistic late-type galaxy, fails to reproduce existing observations of the CGM. In contrast, simulation that does not produce a realistic galaxy has the predicted CGM in better agreement with observations. This illustrates that properties of galaxies and properties of their CGM provide strong complementary{\it complementary} constraints on the processes governing galaxy formation. Our simulations predict that column density profiles of ions are well described by an exponential function of projected distance dd: Ned/hsN \propto e^{-d/h_s}. Simulations thus indicate that the sharp drop in absorber detections at larger distances in observations does not correspond to a "boundary" of an ion, but reflects the underlying steep exponential column density profile. Furthermore, we find that ionization energy of ions is tightly correlated with the scale height hsh_s: hsEion0.74h_s \propto E_{\rm ion}^{0.74}. At z0z \approx 0, warm gas traced by low-ionization species (e.g., Mg II and C IV) has hs0.030.07Rvir h_s \approx 0.03-0.07 R_{\rm vir}, while higher ionization species (O VI and Ne VIII) have hs0.320.45Rvirh_s \approx 0.32-0.45R_{\rm vir}. Finally, the scale heights of ions in our simulations evolve slower than the virial radius for z2z\leq 2, but similarly to the halo scale radius, rsr_s. Thus, we suggest that the column density profiles of galaxies at different redshifts should be scaled by rsr_s rather than the halo virial radius.

Keywords

Cite

@article{arxiv.1507.07002,
  title  = {Column Density Profiles of Multi-Phase Gaseous Halos},
  author = {Cameron J. Liang and Andrey V. Kravtsov and Oscar Agertz},
  journal= {arXiv preprint arXiv:1507.07002},
  year   = {2016}
}

Comments

25 pages, 18 figures, accepted in MNRAS

R2 v1 2026-06-22T10:18:17.835Z