ATLASGAL - Kinematic distances and the dense gas mass distribution of the inner Galaxy
arXiv:1503.00007 · doi:10.1051/0004-6361/201424802
Abstract
The formation of high mass stars and clusters occurs in giant molecular clouds. Objects in evolved stages of massive star formation such as protostars, hot molecular cores, and ultracompact HII regions have been studied in more detail than earlier, colder objects. With this in mind, the APEX Telescope Large Area Survey of the whole inner Galactic plane at 870 micron (ATLASGAL) has been carried out to provide a global view of cold dust and star formation at submillimetre wavelengths. To derive kinematic distances to a large sample of ATLASGAL clumps we divided them into groups of sources, which are located close together, mostly within a radius of 2 pc, and have velocities in a similar range with a median velocity dispersion of ~ 1 km/s. Using NH3, N2H+ and CS velocities we calculate near and far kinematic distances to 296 groups of ATLASGAL sources in the first quadrant and 393 groups in the fourth quadrant. We analyse HI self-absorption and HI absorption to resolve the kinematic distance ambiguity. We obtain a scale height of ~ 28+/-2 pc and displacement below the Galactic midplane of ~ -7+/-1 pc. Within distances from 2 to 18 kpc ATLASGAL clumps have a broad range of gas masses with a median of 1050 solar masses and a wide distribution of radii with a median of 0.4 pc. Their distribution in galactocentric radii is correlated with spiral arms. Using a statistically significant ATLASGAL sample we derive a power-law exponent of -2.2+/-0.1 of the clump mass function. This is consistent with the slope derived for clusters and with that of the stellar initial mass function. Examining the power-law index for different galactocentric distances and various source samples shows that it is independent of environment and evolutionary phase. Fitting the mass-size relationship by a power law gives a slope of 1.76+/-0.01 for cold sources such as IRDCs and warm clumps associated with HII regions.
Figure 2 has a reduced file size, please see A&A version of this paper for high resolution graphics
References in corpus (21)
- Power-law distributions in empirical data
- Trigonometric Parallaxes of Massive Star Forming Regions: VI. Galactic Structure, Fundamental Parameters and Non-Circular Motions
- Cold Dark Clouds: The Initial Conditions for Star Formation
- The Boston University-Five College Radio Astronomy Observatory Galactic Ring Survey
- MAMBO Mapping of Spitzer c2d Small Clouds and Cores
- The VLA Galactic Plane Survey
- A Minimum Column Density of 1 g cm^-2 for Massive Star Formation
- Kinematic Distances to Molecular Clouds identified in the Galactic Ring Survey
- Resolution of the Distance Ambiguity for Galactic HII Regions
- IR Dust Bubbles: Probing the Detailed Structure and Young Massive Stellar Populations of Galactic HII Regions
- The 6-GHz Multibeam Maser Survey I. Techniques
- The Electron Temperature Gradient in the Galactic Disk
- The orbits of open clusters in the Galaxy
- Milky Way Kinematics: Measurements at the Subcentral Point of the Fourth Quadrant
- ATLASGAL --- Complete compact source catalogue: 280\degr\ 60\degr
- Trigonometric Parallaxes of Massive Star Forming Regions: V. G23.01-0.41 and G23.44-0.18
- Molecular clouds and clumps in the Boston University-Five College Radio Astronomy Observatory Galactic Ring Survey
- High Mass Star Formation. III. The Functional Form of the Submillimeter Clump Mass Function
- Resolving distance ambiguities towards 6.7 GHz methanol masers
- The Bolocam Galactic Plane Survey. XII. Distance Catalog Expansion Using Kinematic Isolation of Dense Molecular Cloud Structures With 13CO(1-0)
- The nature of the methanol maser ring G23.657-00.127
Cited by in corpus (48)
- ATLASGAL --- properties of a complete sample of Galactic clumps
- Properties of Hi-GAL clumps in the inner Galaxy]{The Hi-GAL compact source catalogue. I. The physical properties of the clumps in the inner Galaxy ()
- The Hi-GAL compact source catalogue -- II. The 360° catalogue of clump physical properties
- ATLASGAL-selected massive clumps in the inner Galaxy III. Dust Continuum Characterization of an Evolutionary Sample
- ALMA-IMF I -- Investigating the origin of stellar masses: Introduction to the Large Program and first results
- ATLASGAL -- Evolutionary trends in high-mass star formation
- The Hi-GAL catalogue of dusty filamentary structures in the Galactic Plane
- The SEDIGISM survey: Molecular clouds in the inner Galaxy
- Characterizing the properties of cluster precursors in the MALT90 survey
- Kinetic temperature of massive star forming molecular clumps measured with formaldehyde
- Establishing the evolutionary timescales of the massive star formation process through chemistry
- Diffuse X-Ray Sky in the Galactic Center
- Distance biases in the estimation of the physical properties of Hi-GAL compact sources-I. Clump properties and the identification of high-mass star forming candidates
- Survey of ortho-HD in high-mass star-forming regions
- Origin of the Galactic Diffuse X-ray Emission: Iron K-shell Line Diagnostics
- Kinetic temperature of massive star forming molecular clumps measured with formaldehyde. II. The Large Magellanic Cloud
- ATLASGAL --- Molecular fingerprints of a sample of massive star forming clumps
- Thermal balance and comparison of gas and dust properties of dense clumps in the Hi-GAL survey
- The evolution of temperature and density structures of OB cluster-forming molecular clumps
- Discovery of a mid-infrared protostellar outburst of exceptional amplitude
- Complex organic molecules detected in twelve high-mass star-forming regions with Atacama Large Millimeter/submillimeter Array (ALMA)
- ALMA-IMF. VII. First release of the full spectral line cubes: Core kinematics traced by DCN J=(3-2)
- ATLASGAL -- selected massive clumps in the inner Galaxy. IX. Deuteration of ammonia
- Streaming Motions and Kinematic Distances to Molecular Clouds
- HyGAL: Characterizing the Galactic ISM with observations of hydrides and other small molecules -- I. Survey description and a first look toward W3(OH), W3 IRS5 and NGC 7538 IRS1
- CHEMOUT: CHEMical complexity in star-forming regions of the OUTer Galaxy. I. Organic molecules and tracers of star-formation activity
- Mass-size scaling M~ r^1.67 of massive star-forming clumps -- evidences of turbulence-regulated gravitational collapse
- Revealing a spiral-shaped molecular cloud in our galaxy - Cloud fragmentation under rotation and gravity
- Large-scale molecular gas distribution in the M17 cloud complex: dense gas conditions of massive star formation?
- ALMA-IMF XIII: NH kinematic analysis on the intermediate protocluster G353.41
- Distance of PSR B0458+46 indicated by FAST HI absorption observations
- Stellar encounters with giant molecular clouds
- Extending the view of ArH+ chemistry in diffuse clouds
- HII regions and high-mass starless clump candidates I: Catalogs and properties
- Identification of molecular clouds in emission maps: a comparison between methods in the \ce{^{13}CO}/\ce{C^{18}O} () Heterodyne Inner Milky Way Plane Survey
- Multi-line Herschel/HIFI observations of water reveal infall motions and chemical segregation around high-mass protostars
- Infall and Outflow Towards High-mass Starless Clump Candidates
- Source clustering in the Hi-GAL survey determined using a minimum spanning tree method
- Interstellar Complex Organic Molecules in SiO-traced massive outflows
- Cloud-cloud collision and star formation in G013.313+0.193
- A multi-line study of the filamentary infrared dark cloud G351.78-0.54
- Multiwavelength study of the G345.5+1.5 region
- A New Search for Star Forming Regions in the Southern Outer Galaxy
- Searching for Molecular Jets from High-Mass Protostars
- Looking for evidence of high-mass star formation at core scale in a massive molecular clump
- The ultracompact regions G40.54+2.59 and G34.13+0.47: A new detection of compact radio sources
- An infrared study of the high-mass, multi-stage star-forming region IRAS~12272-6240
- Unveiling the collision between molecular outflows: observational evidence and hydrodynamic simulations