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Embedded disks around low-mass protostars

Published online by Cambridge University Press:  27 April 2011

Eduard I. Vorobyov
Affiliation:
The Institute for Computational Astrophysics, Saint Mary's University, Halifax, Canada email: vorobyov@ap.smu.ca Research Institute of Physics, Southern Federal University, Rostov-on-Don, Russia
Shantanu Basu
Affiliation:
The University of Western Ontario, London, Canada
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Abstract

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The time evolution of protostellar disks in the embedded phase of star formation (EPSF) is reviewed based on numerical hydrodynamics simulations of the gravitational collapse of two cloud cores with distinct initial masses. Special emphasis is given to disk, stellar, and envelope masses and also mass accretion rates onto the star. It is shown that accretion is highly variable in the EPSF, in agreement with recent theoretical and observational expectations. Protostellar disks quickly accumulate mass upon formation and may reach a sizeable fraction of the envelope mass (~35%) by the end of the Class 0 phase. Systems with disk-to-star mass ratio ξ≈0.5 are common but systems with ξ≥1.0 are rare because the latter quickly evolve into binary or multiple systems. Embedded disks are characterized by radial pulsations, the amplitude of which increases with growing core mass.

Type
Contributed Papers
Copyright
Copyright © International Astronomical Union 2011

References

André, P., Ward-Thompson, D., & Barsony, M. 1993, ApJ, 406, 122CrossRefGoogle Scholar
Attwood, R. E., Goodwin, S. P., Stamatellos, D., Whitworth, A. P. 2009, A&A, 495, 201Google Scholar
Baraffe, I., Chabrier, G., & Gallardo, J. 2009, ApJ (Letters), 702, 27CrossRefGoogle Scholar
Enoch, M. L., Corder, S., Dunham, M. M., & Duchéne, G. 2009, ApJ, 707, 103CrossRefGoogle Scholar
Enoch, M. L., Evans, N. J. II, Sargent, A. I., & Glenn, J. 2009, ApJ, 692, 973CrossRefGoogle Scholar
Jørgensen, J. K., van Dishoeck, E. F., Visser, R., Bourke, T. L., Wilner, D. J., Lommen, D., Hogerheijde, M. R., & Myers, P. C. 2009, A&A, 507, 861Google Scholar
Shu, F. H. 1977, ApJ, 214, 488CrossRefGoogle Scholar
Vorobyov, E. I. & Basu, S. 2006, ApJ, 650, 956CrossRefGoogle Scholar
Vorobyov, E. I., 2009a, ApJ, 692, 1609CrossRefGoogle Scholar
Vorobyov, E. I. 2009b, ApJ, 704, 715CrossRefGoogle Scholar
Vorobyov, E. I. 2010, ApJ, 713, 1CrossRefGoogle Scholar
Vorobyov, E. I. & Basu, S. 2010, ApJ, 719, 1896CrossRefGoogle Scholar