Infall models of Class 0 protostars
arXiv:astro-ph/0010051 · doi:10.1086/318650
Abstract
We have carried out radiative transfer calculations of infalling, dusty envelopes surrounding embedded protostars to understand the observed properties of the recently identified ``Class 0'' sources. To match the far-infrared peaks in the spectral energy distributions of objects such as the prototype Class 0 source VLA 1623, pure collapse models require mass infall rates $\sim10^{-4}\msun$yr. The radial intensity distributions predicted by such infall models are inconsistent with observations of VLA 1623 at sub-mm wavelengths, in agreement with the results of Andre et al. (1993) who found a density profile of rather than the expected gradient. To resolve this conflict, while still invoking infall to produce the outflow source at the center of VLA 1623, we suggest that the observed sub-mm intensity distribution is the sum of two components: an inner infall zone, plus an outer, more nearly constant-density region. This explanation of the observations requires that roughly half the total mass observed within 2000 AU radius of the source lies in a region external to the infall zone. The column densities for this external region are comparable to those found in the larger Oph A cloud within which VLA 1623 is embedded. The extreme environments of Class 0 sources lead us to suggest an alternative or additional interpretation of these objects: rather than simply concluding with Andre et al. that Class 0 objects only represent the earliest phases of protostellar collapse, and ultimately evolve into older ``Class I'' protostars, we suggest that many Class 0 sources could be the protostars of very dense regions. (Shortened)
22 pages, including 3 PostScript figures, accepted for publication in The Astrophysical Journal
References in corpus (2)
Cited by in corpus (21)
- Control of star formation by supersonic turbulence
- 2-D Radiative Transfer in Protostellar Envelopes: II. An Evolutionary Sequence
- Properties of the Youngest Protostars in Perseus, Serpens, and Ophiuchus
- Physical structure and CO abundance of low-mass protostellar envelopes
- The initial conditions of star formation in the Ophiuchus main cloud: Kinematics of the protocluster condensations
- The H2CO abundance in the inner warm regions of low mass protostellar envelopes
- Current Star Formation in the Ophiuchus and Perseus Molecular Clouds: Constraints and Comparisons from Unbiased Submillimeter and Mid-Infrared Surveys. II
- Spitzer IRS Spectra and Envelope Models of Class I Protostars in Taurus
- Protostellar mass accretion rates from gravoturbulent fragmentation
- Deuterated formaldehyde in rho Ophiuchi A
- Disk Masses for Embedded Class I Protostars in the Taurus Molecular Cloud
- The IMF of stellar clusters: effects of accretion and feedback
- KMOS study of the mass accretion rate from Class I to Class II in NGC 1333
- Analytic solutions to the accretion of a rotating finite cloud towards a central object I. Newtonian approach
- Modelling submillimetre spectra of the protostellar infall candidates NGC1333-IRAS2 and Serpens SMM4
- Mid-Infrared Imaging of the Protostellar Binary L1448N--IRS3(A,B)
- High Accretion Rate during Class 0 Phase due to External Trigger
- Low-mass star formation in R Coronae Australis: Observations of organic molecules with the APEX telescope
- Constraining the Disk Masses of the Class I Binary Protostar GV Tau
- Turbulence in Class 0 and Class I protostellar envelopes
- Star Formation in the Bok Globule CB54