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A Three-dimensional View of Turbulence: Constraints on Turbulent Motions in the HD 163296 Protoplanetary Disk Using DCO+

  • Kevin M. Flaherty
  • , A. Meredith Hughes
  • , Sanaea C. Rose
  • , Jacob B. Simon
  • , Chunhua Qi
  • , Sean M. Andrews
  • , Agnes Kóspál
  • , David J. Wilner
  • , Eugene Chiang
  • , Philip J. Armitage
  • , Xue Ning Bai
  • Wesleyan University
  • Wellesley College
  • Southwest Research Institute
  • University of Colorado Boulder
  • Harvard-Smithsonian Ctr. Astrophys.
  • Hungarian Academy of Sciences
  • Max Planck Institute for Astronomy
  • University of California at Berkeley

Research output: Contribution to journalArticlepeer-review

236 Scopus citations

Abstract

Gas kinematics are an important part of the planet formation process. Turbulence influences planetesimal growth and migration from the scale of submicron dust grains through gas-giant planets. Radio observations of resolved molecular line emission can directly measure this non-thermal motion and, taking advantage of the layered chemical structure of disks, different molecular lines can be combined to map the turbulence throughout the vertical extent of a protoplanetary disk. Here we present ALMA observations of three molecules (DCO+(3-2), C18O(2-1) and CO(2-1)) from the disk around HD 163296. We are able to place stringent upper limits (v turb < 0.06c s, <0.05c s, and <0.04c s for CO(2-1), C18O(2-1), and DCO+(3-2) respectively), corresponding to α ≲ 3 × 10-3, similar to our prior limit derived from CO(3-2). This indicates that there is little turbulence throughout the vertical extent of the disk, contrary to theoretical predictions based on the magnetorotational instability and gravitoturbulence. In modeling the DCO+ emission, we also find that it is confined to three concentric rings at 65.7 ± 0.9 au, , and 259 ± 1 au, indicative of a complex chemical environment.

Original languageEnglish
Article number150
JournalAstrophysical Journal
Volume843
Issue number2
DOIs
StatePublished - Jul 10 2017

Keywords

  • accretion, accretion disks
  • protoplanetary disks
  • stars: individual (HD 163296)
  • turbulence

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