English

The Galactic Census of High- and Medium-mass Protostars. IV. Molecular Clump Radiative Transfer, Mass Distributions, Kinematics, and Dynamical Evolution

Astrophysics of Galaxies 2018-10-17 v1

Abstract

We present 12^{12}CO, 13^{13}CO, and C18^{18}O data as the next major release for the CHaMP project, an unbiased sample of Galactic molecular clouds in ll = 280^{\circ}-300^{\circ}. From a radiative transfer analysis, we self-consistently compute 3D cubes of optical depth, excitation temperature, and column density for \sim300 massive clumps, and update the ICOI_{\rm CO}-dependent CO\rightarrowH2_2 conversion law of Barnes et al (2015). For NN \propto IpI^p, we find pp = 1.92±\pm0.05 for the velocity-resolved conversion law aggregated over all clumps. A practical, integrated conversion law is NCON_{\rm CO} = (4.0±\pm0.3)×\times1019^{19}m2^{-2} ICO1.27±0.02I_{\rm CO}^{1.27\pm0.02}, confirming an overall 2×\times higher total molecular mass for Milky Way clouds, compared to the standard XX factor. We use these laws to compare the kinematics of clump interiors with their foreground 12^{12}CO envelopes, and find evidence that most clumps are not dynamically uniform: irregular portions seem to be either slowly accreting onto the interiors, or dispersing from them. We compute the spatially-resolved mass accretion/dispersal rate across all clumps, and map the local flow timescale. While these flows are not clearly correlated with clump structures, the inferred accretion rate is a statistically strong function of the local mass surface density Σ\Sigma, suggesting near-exponential growth or loss of mass over effective timescales \sim30-50 Myr. At high enough Σ\Sigma, accretion dominates, suggesting gravity plays an important role in both processes. If confirmed by numerical simulations, this sedimentation picture would support arguments for long clump lifetimes mediated by pressure confinement, with a terminal crescendo of star formation, suggesting a resolution to the 40-yr-old puzzle of the dynamical state of molecular clouds and their low star formation efficiency.

Keywords

Cite

@article{arxiv.1806.00492,
  title  = {The Galactic Census of High- and Medium-mass Protostars. IV. Molecular Clump Radiative Transfer, Mass Distributions, Kinematics, and Dynamical Evolution},
  author = {Peter J. Barnes and Audra K. Hernandez and Erik Muller and Rebecca L. Pitts},
  journal= {arXiv preprint arXiv:1806.00492},
  year   = {2018}
}

Comments

Accepted to ApJ. Main paper is 19 pages, plus 4 Appendices which are available from the links on pg.20