Earliest phases of star formation (EPoS): Dust temperature distributions in isolated starless cores
arXiv:1606.04318 · doi:10.1051/0004-6361/201525792
Abstract
Constraining the temperature and density structure of dense molecular cloud cores is fundamental for understanding the initial conditions of star formation. We use Herschel observations of the thermal FIR dust emission from nearby isolated molecular cloud cores and combine them with ground-based submillimeter continuum data to derive observational constraints on their temperature and density structure. The aim of this study is to verify the validity of a ray-tracing inversion technique developed to derive the dust temperature and density structure of isolated starless cores directly from the dust emission maps and to test if the resulting temperature and density profiles are consistent with physical models. Using this ray-tracing inversion technique, we derive the dust temperature and density structure of six isolated starless cloud cores. We employ self-consistent radiative transfer modeling to the derived density profiles, treating the ISRF as the only heating source. The best-fit values of local strength of the ISRF and the extinction by the outer envelope are derived by comparing the self-consistently calculated temperature profiles with those derived by the ray-tracing method. We find that all starless cores are significantly colder inside than outside, with the core temperatures showing a strong negative correlation with peak column density. This suggests that their thermal structure is dominated by external heating from the ISRF and shielding by dusty envelopes. The temperature profiles derived with the ray-tracing inversion method can be well-reproduced with self-consistent radiative transfer models.
16 pages, 12 figures, accepted for publication in A&A
References in corpus (11)
- 2MASS wide field extinction maps - I. The Pipe nebula
- Depletion and low gas temperature in the L183 prestellar core : the N2H+ - N2D+ tool
- Reconstructing the density and temperature structure of prestellar cores from data: A case study for B68 and L1689B
- The Different Structures of the Two Classes of Starless Cores
- The Earliest Phases of Star formation observed with Herschel (EPoS): The dust temperature and density distributions of B68
- The Thermal Structure of Gas in Pre-Stellar Cores: A Case Study of Barnard 68
- The dust temperatures of the prestellar cores in the rho Oph main cloud and in other star forming regions: consequences for the core mass function
- Can we trace very cold dust from its emission alone ?
- Properties of Starless and Prestellar Cores in Taurus Revealed by Herschel SPIRE/PACS Imaging
- The Earliest Phases of Star formation (EPoS): Temperature, density, and kinematic structure of the star-forming core CB 17
- The Gould's Belt distance survey
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- ALMA Datacubes and Continuum Maps of the Irradiated Western Wall in Carina
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- Chemical constraints on the dynamical evolution of the cold core L694
- NIKA2 observations of starless cores in Taurus and Perseus
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