English

Magnetic Field - Gas Density Relation and Observational Implications Revisited

Astrophysics of Galaxies 2015-05-22 v1

Abstract

We revisit the relation between magnetic-field strength (BB) and gas density (ρ\rho) for contracting interstellar clouds and fragments (or, cores), which is central in observationally determining the dynamical importance of magnetic fields in cloud evolution and star formation. Recently, it has been claimed that a relation Bρ2/3B \propto \rho^{2/3} is statistically preferred over Bρ1/2B \propto \rho^{1/2} in molecular clouds, when magnetic field detections and nondetections from Zeeman observations are combined. This finding has unique observational implications on cloud and core geometry: The relation Bρ2/3B \propto \rho^{2/3} can only be realized under spherical contraction. However, no indication of spherical geometry can be found for the objects used in the original statistical analysis of the BρB-\rho relation. We trace the origin of the inconsistency to simplifying assumptions in the statistical model used to arrive at the Bρ2/3B\propto \rho^{2/3} conclusion and to an underestimate of observational uncertainties in the determination of cloud and core densities. We show that, when these restrictive assumptions are relaxed, Bρ1/2B \propto \rho^{1/2} is the preferred relation for the (self-gravitating) molecular-cloud data, as theoretically predicted four decades ago.

Keywords

Cite

@article{arxiv.1505.05508,
  title  = {Magnetic Field - Gas Density Relation and Observational Implications Revisited},
  author = {A. Tritsis and G. V. Panopoulou and T. Ch. Mouschovias and K. Tassis and V. Pavlidou},
  journal= {arXiv preprint arXiv:1505.05508},
  year   = {2015}
}

Comments

13 pages, 13 Figures, accepted for publication in MNRAS

R2 v1 2026-06-22T09:38:17.919Z