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On the relative motions of dense cores and envelopes in star-forming molecular clouds

  • Benjamin Ayliffe
  • , James C Langdon
  • , Howard S Cohl
  • , Matthew Russell Bate

Research output: Contribution to journalArticleResearchpeer-review

Abstract

Hydrodynamical simulations of star formation indicate that the motions of protostars through their natal molecular clouds may be crucial in determining the properties of stars through competitive accretion and dynamical interactions. Walsh, Myers Burton recently investigated whether such motions might be observable in the earliest stages of star formation by measuring the relative shifts of line-centre velocities of low- and high-density tracers of low-mass star-forming cores. They found very small (similar to 0.1 km s(-1)) relative motions. In this paper, we analyse the hydrodynamical simulation of Bate, Bonnell Bromm and find that it also gives small relative velocities between high-density cores and low-density envelopes, despite the fact that competitive accretion and dynamical interactions occur between protostars in the simulation. Thus, the simulation is consistent with the observations in this respect. However, we also find some differences between the simulation and the observations. Overall, we find that the high-density gas has a higher velocity dispersion than that observed by Walsh et al. We explore this by examining the dependence of the gas velocity dispersion on density and its evolution with time during the simulation. We find that early in the simulation the gas velocity dispersion decreases monotonically with increasing density, while later in the simulation, when the dense cores have formed multiple objects, the velocity dispersion of the high-density gas increases. Thus, the simulation is in best agreement with the observations early on, before many objects have formed in each dense core.
Original languageEnglish
Pages (from-to)1198 - 1206
Number of pages9
JournalMonthly Notices of the Royal Astronomical Society
Volume374
Issue number4
DOIs
Publication statusPublished - 2007
Externally publishedYes

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