The physical conditions in IRDC clumps from Herschel HIFI observations of H2O
arXiv:1408.1515 · doi:10.1051/0004-6361/201423912
Abstract
Context. The earliest phases of high-mass star formation are poorly understood. Aims. Our goal is to determine the physical conditions and kinematic structure of massive star-forming cloud clumps. Methods. We analyze HO 557 GHz line profiles observed with HIFI toward four positions in two infrared-dark cloud clumps . By comparison with ground-based CO, NH, CHOH and NH line observations, we constrain the volume density and kinetic temperature of the gas and estimate the column density and abundance of HO and NH. Results. The observed water lines are complex with emission and absorption components. The absorption is red shifted and consistent with a cold envelope, while the emission is interpreted as resulting from protostellar outflows. The gas density in the clumps is 10 cm. The o-H2O outflow column density is 0.3 to 3.0 10 cm, the o-H2O absorption column density is between 1.5 10 and 2.6 10 cm with cold o-H2O abundances between 1.5 10 and 3.1 10. Conclusions. All clumps have high gas densities ( 10 cm) and display infalling gas. Three of the four clumps have outflows. The clumps form an evolutionary sequence as probed by HO NH, NH and CHOH. We find that G28-MM is the most evolved, followed by G11-MM then G28-NH3. The least evolved clump is G11-NH3 which shows no sign-posts of star-formation. G11-NH3 is a high-mass pre-stellar core.
15 pages, 10 figures
References in corpus (4)
Cited by in corpus (4)
- Water in star-forming regions (WISH): Physics and chemistry from clouds to disks as probed by Herschel spectroscopy
- Understanding star formation in molecular clouds II. Signatures of gravitational collapse of IRDCs
- Probing the massive star forming environment - a multiwavelength investigation of the filamentary IRDC G333.73+0.37
- Multi-line Herschel/HIFI observations of water reveal infall motions and chemical segregation around high-mass protostars