3D Continuum radiative transfer in complex dust configurations around young stellar objects and active nuclei II. 3D Structure of the dense molecular cloud core Rho Oph D
arXiv:astro-ph/0410635 · doi:10.1051/0004-6361:20041978
Abstract
Constraints on the density and thermal 3D structure of the dense molecular cloud core Rho Oph D are derived from a detailed 3D radiative transfer modeling. Two ISOCAM images at 7 and 15 micron are fitted simultaneously by representing the dust distribution in the core with a series of 3D Gaussian density profiles. Size, total density, and position of the Gaussians are optimized by simulated annealing to obtain a 2D column density map. The projected core density has a complex elongated pattern with two peaks. We propose a new method to calculate an approximate temperature in an externally illuminated complex 3D structure from a mean optical depth. This T(tau)-method is applied to a 1.3 mm map obtained with the IRAM 30m telescope to find the approximate 3D density and temperature distribution of the core Rho Oph D. The spatial 3D distribution deviates strongly from spherical symmetry. The elongated structure is in general agreement with recent gravo-turbulent collapse calculations for molecular clouds. We discuss possible ambiguities of the background determination procedure, errors of the maps, the accuracy of the T(tau)-method, and the influence of the assumed dust particle sizes and properties.
16 pages, 12 figures
References in corpus (14)
- Embedded Clusters in Molecular Clouds
- Control of star formation by supersonic turbulence
- The Physics of Star Formation
- A Holistic Scenario of Turbulent Molecular Cloud Evolution and Control of the Star Formation Efficiency. First Tests
- The Dynamical State of Barnard 68: A Thermally Supported, Pulsating Dark Cloud
- The 2D Continuum Radiative Transfer Problem: Benchmark Results for Disk Configurations
- Dynamic cores in hydrostatic disguise
- Molecular Evolution in Collapsing Prestellar Cores II: The Effect of Grain-surface Reactions
- Magnetic field evolution in Bok globules
- Monte Carlo Radiative Transfer in Embedded Prestellar Cores
- Protostellar mass accretion rates from gravoturbulent fragmentation
- The Intrinsic Shapes of Molecular Cloud Fragments over a Range of Length Scales
- Protostellar Angular Momentum Evolution during Gravoturbulent Fragmentation
- Radiative transfer models of non-spherical prestellar cores
Cited by in corpus (23)
- On the Rapid Collapse and Evolution of Molecular Clouds
- The Ubiquity of Micrometer-Sized Dust Grains in the Dense Interstellar Medium
- Three-Dimensional Dust Radiative Transfer
- The physical and chemical structure of Sagittarius B2, I. Three-dimensional thermal dust and free-free continuum modeling on 100 au to 45 pc scales
- The Different Structures of the Two Classes of Starless Cores
- Direct evidence of dust growth in L183 from MIR light scattering
- The Earliest Phases of Star formation observed with Herschel (EPoS): The dust temperature and density distributions of B68
- FitSKIRT: genetic algorithms to automatically fit dusty galaxies with a Monte Carlo radiative transfer code
- Physical properties of Southern infrared dark clouds
- Using 3D Voronoi grids in radiative transfer simulations
- The initial conditions of isolated star formation - VII. Spitzer mapping of pre-stellar cores
- Magnetic Seismology of Interstellar Gas Clouds: Unveiling a Hidden Dimension
- Large and small-scale structures and the dust energy balance problem in spiral galaxies
- Detection of 6 K gas in Ophiuchus D
- Ray-tracing for complex astrophysical high-opacity structures
- Radiative transfer on hierarchial grids
- Mapping the prestellar core Ophiuchus D (L1696A) in ammonia
- AVIATOR: Morphological object reconstruction in 3D. An application to dense cores
- Chemistry as a diagnostic of prestellar core geometry
- Modelling Herschel observations of infrared-dark clouds in the Hi-GAL survey
- A deep-learning approach to the 3D reconstruction of dust density and temperature in star-forming regions
- Mass estimates for very cold (< 8 K) gas in molecular cloud cores
- Shape Analysis of HII Regions -- II. Synthetic Observations