The Density-Magnetic Field Relation in the Atomic ISM
Abstract
We present numerical experiments aimed to study the correlation between the magnetic field strength, , and the density, , in the cold atomic interstellar medium (CNM). We analyze 24 magneto-hydrodynamic models with different initial magnetic field intensities (0.4, 2.1, 4.2, and 8.3 G) and/or mean densities (2, 3, and 4 cm), in the presence of driven and decaying turbulence, with and without self-gravity, in a cubic computational domain with 100 pc by side. Our main findings are: i) For forced simulations, which reproduce the main observed physical conditions of the CNM in the Solar neighborhood, a positive correlation between and develops for all the values. ii) The density at which this correlation becomes significant ( cm) depends on but is not sensitive to the presence of self-gravity. iii) The effect of self-gravity, when noticeable, consists of producing a shallower correlation at high densities, suggesting that, in the studied regime, self-gravity induces motions along the field lines. iv) Self-gravitating decaying models where the CNM is subsonic and sub-Alfv\'enic with develop a high density positive correlation whose slopes are consistent with a constant . v) Decaying models where the low density CNM is subsonic and sub-Alfv\'enic with show a negative correlation at intermediate densities, followed by a high density positive correlation.
Cite
@article{arxiv.1804.11344,
title = {The Density-Magnetic Field Relation in the Atomic ISM},
author = {Adriana Gazol and Marco Villagran},
journal= {arXiv preprint arXiv:1804.11344},
year = {2018}
}
Comments
Accepted for publication in MNRAS, 10 pages, 11 figures