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Saturation of the magnetorotational instability and the origin of magnetically elevated accretion discs

  • University of Colorado
  • 391 Ucb

Research output: Contribution to journalArticlepeer-review

23 Scopus citations

Abstract

We propose that the strength of angular momentum transport in accretion discs threaded by net vertical magnetic field is determined by a self-regulation mechanism: the magnetorotational instability (MRI) grows until its own turbulent resistivity damps the fastest growing mode on the scale of the disc thickness. Given weak assumptions as to the structure of MRI-derived turbulence, supported by prior simulation evidence, the proposed mechanism reproduces the known scaling of the viscous α-parameter, alpha ∝ βz-1/2. Here, βz = 8 πpg/Bz02 is the initial plasma β-parameter on the disc mid-plane, Bz0 is the net field, and pg is the mid-plane gas pressure. We generalize the argument to discs with strong suprathermal toroidal magnetic fields, where the MRI growth rate is modified from the weak-field limit. Additional sources of turbulence are required if such discs are to become magnetically elevated, with the increased scale heights near the mid-plane that are seen in simulations. We speculate that tearing modes, associated with current sheets broadened by the effective resistivity, are a possible source of enhanced turbulence in elevated discs.

Original languageEnglish
Pages (from-to)5952-5959
Number of pages8
JournalMonthly Notices of the Royal Astronomical Society
Volume521
Issue number4
DOIs
StatePublished - Jun 1 2023

Keywords

  • accretion, accretion discs
  • dynamo
  • instabilities
  • MHD
  • turbulence

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