English

Molecular Line Profiles of Collapsing Gas Clouds

Solar and Stellar Astrophysics 2015-05-13 v1 Astrophysics of Galaxies

Abstract

Emission line profiles of tracer molecule H2_2CO 140 GHz transition from gravitational core collapsing clouds in the dynamic process of forming protostars are calculated, using a simple ray-tracing radiative transfer model. Three self-similar dynamic inside-out core collapse models -- the conventional polytropic model, the empirical hybrid model and the isothermal model -- for star-forming molecular clouds are examined and compared. The isothermal model cannot produce observed asymmetric double-peak molecular line profiles. The conventional polytropic model, which gives flow velocity, mass density and temperature profiles self-consistently, can produce asymmetric double-peak line profiles for a core collapsing cloud. In particular, the blue peak is stronger than the red peak, consistent with a broad class of molecular line profile observations. The relative strengths of the blue and red peaks within a molecular line profile are determined by the cloud temperature gradient. The conventional polytropic model can be utilized to produce molecular line-profile templates, for extracting dynamical information from line spectra of molecular globules undergoing a gravitational core collapse. We show a sample fit using the 140 GHz H2_2CO emission line from the central region of the molecular globule B335 by our model with γ=1.2\gamma=1.2. The calculation of line profiles and fitting processes also offer a scenario to estimate the protostellar mass, the kernel mass accretion rate, and the evolution time scale of a core collapsing cloud. Our model can be readily adapted to other tracer molecules with more or less constant abundances in star-forming clouds.

Keywords

Cite

@article{arxiv.0908.0978,
  title  = {Molecular Line Profiles of Collapsing Gas Clouds},
  author = {Yang Gao and Yu-Qing Lou and Kinwah Wu},
  journal= {arXiv preprint arXiv:0908.0978},
  year   = {2015}
}

Comments

12 pages, 10 figures, accepted for publication in MNRAS