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MHD disc winds can reproduce fast disc dispersal and the correlation between accretion rate and disc mass in Lupus

  • B. Tabone
  • , G. P. Rosotti
  • , G. Lodato
  • , P. J. Armitage
  • , A. J. Cridland
  • , E. F. Van Dishoeck
  • Leiden University
  • University of Leicester
  • University of Milan
  • Max-Planck-Institut fur Extr Aterrestrisc He Physik

Research output: Contribution to journalArticlepeer-review

57 Scopus citations

Abstract

The final architecture of planetary systems depends on the extraction of angular momentum and mass-loss processes of the discs in which they form. Theoretical studies proposed that magnetohydrodynamic winds launched from the discs (MHD disc winds) could govern accretion and disc dispersal. In this work, we revisit the observed disc demographics in the framework of MHD disc winds, combining analytical solutions of disc evolution and a disc population synthesis approach. We show that MHD disc winds alone can account for both disc dispersal and accretion properties. The decline of disc fraction over time is reproduced by assuming that the initial accretion time-scale (a generalization of the viscous time-scale) varies from disc to disc and that the decline of the magnetic field strength is slower than that of the gas. The correlation between accretion rate and disc mass, and the dispersion of the data around the mean trend as observed in Lupus, is then naturally reproduced. The model also accounts for the rapidity of the disc dispersal. This paves the way for planet formation models in the paradigm of wind-driven accretion.

Original languageEnglish
Pages (from-to)L74-L79
JournalMonthly Notices of the Royal Astronomical Society: Letters
Volume512
Issue number1
DOIs
StatePublished - May 1 2022

Keywords

  • MHD
  • accretion, accretion discs
  • planets and satellites: formation
  • protoplanetary discs
  • submillimetre: planetary systems

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