Flows, Fragmentation, and Star Formation. I. Low‐Mass Stars in Taurus
Open Access
- 20 October 2002
- journal article
- Published by American Astronomical Society in The Astrophysical Journal
- Vol. 578 (2) , 914-924
- https://doi.org/10.1086/342657
Abstract
The remarkably filamentary spatial distribution of young stars in the Taurus molecular cloud has significant implications for understanding low-mass star formation in relatively quiescent conditions. The large scale and regular spacing of the filaments suggests that small-scale turbulence is of limited importance, which could be consistent with driving on large scales by flows which produced the cloud. The small spatial dispersion of stars from gaseous filaments indicates that the low-mass stars are generally born with small velocity dispersions relative to their natal gas, of order the sound speed or less. The spatial distribution of the stars exhibits a mean separation of about 0.25 pc, comparable to the estimated Jeans length in the densest gaseous filaments, and is consistent with roughly uniform density along the filaments. The efficiency of star formation in filaments is much higher than elsewhere, with an associated higher frequency of protostars and accreting T Tauri stars. The protostellar cores generally are aligned with the filaments, suggesting that they are produced by gravitational fragmentation, resulting in initially quasi-prolate cores. Given the absence of massive stars which could strongly dominate cloud dynamics, Taurus provides important tests of theories of dispersed low-mass star formation and numerical simulations of molecular cloud structure and evolution.Comment: 32 pages, 9 figures: to appear in ApKeywords
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This publication has 76 references indexed in Scilit:
- Protostars and Planets IVIcarus, 2000
- Turbulent Flow–driven Molecular Cloud Formation: A Solution to the Post–T Tauri Problem?The Astrophysical Journal, 1999
- Clouds as Turbulent Density Fluctuations: Implications for Pressure Confinement and Spectral Line Data InterpretationThe Astrophysical Journal, 1999
- Discovery of an Extremely Young Accreting Protostar in TaurusThe Astrophysical Journal, 1999
- Coherent Dense Cores. I. NH3ObservationsThe Astrophysical Journal, 1998
- Interpreting the mean surface density of companions in star-forming regionsMonthly Notices of the Royal Astronomical Society, 1998
- Molecular Clouds Are Not Fractal: A Characteristic Size Scale in TaurusThe Astrophysical Journal, 1997
- Collapse and Fragmentation of Molecular Cloud Cores. V. Loss of Magnetic Field SupportThe Astrophysical Journal, 1997
- A Theory of the Initial Mass Function for Star Formation in Molecular CloudsThe Astrophysical Journal, 1996
- Collapse and fragmentation of molecular cloud cores. I - Moderately centrally condensed coresThe Astrophysical Journal, 1993