The Distribution of Mass Surface Densities in a High-Mass Protocluster
arXiv:1605.09320 · doi:10.3847/2041-8205/829/1/L19
Abstract
We study the probability distribution function (PDF) of mass surface densities, , of infrared dark cloud (IRDC) G028.37+00.07 and its surrounding giant molecular cloud. This PDF constrains the physical processes, such as turbulence, magnetic fields and self-gravity, that are expected to be controlling cloud structure and star formation activity. The chosen IRDC is of particular interest since it has almost 100,000 solar masses within a radius of 8 parsecs, making it one of the most massive, dense molecular structures known and is thus a potential site for the formation of a "super star cluster." We study in two ways. First, we use a combination of NIR and MIR extinction maps that are able to probe the bulk of the cloud structure up to ( mag). Second, we study the FIR and sub-mm dust continuum emission from the cloud utilizing Herschel PACS and SPIRE images and paying careful attention to the effects of foreground and background contamination. We find that the PDFs from both methods, applied over a (30 pc)-sized region that contains and encloses a minimum closed contour with ( mag), shows a log-normal shape with the peak measured at ( mag). There is tentative evidence for the presence of a high- power law tail that contains from to 8\% of the mass of the cloud material. We discuss the implications of these results for the physical processes occurring in this cloud.
Accepted for publication in the ApJL. 9 pages, 5 figures
References in corpus (10)
- Infrared Emission from Interstellar Dust. IV. The Silicate-Graphite-PAH Model in the Post-Spitzer Era
- Slow Star Formation in Dense Gas: Evidence and Implications
- On the Star Formation Efficiency of Turbulent Magnetized Clouds
- On the Density Distribution in Star-forming Interstellar Clouds
- Equilibrium Star Cluster Formation
- Molecular clouds have power-law probability distribution functions
- Understanding star formation in molecular clouds I. Effects of line-of-sight contamination on the column density structure
- Infall-Driven Protostellar Accretion and the Solution to the Luminosity Problem
- Understanding star formation in molecular clouds II. Signatures of gravitational collapse of IRDCs
- The Structure, Dynamics and Star Formation Rate of the Orion Nebula Cluster
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