English

Disk-Jet Coupling in Black Hole Accretion Systems II: Force-Free Electrodynamical Models

Astrophysics 2008-11-26 v3

Abstract

In paper I, we showed that time-dependent general relativistic magnetohydrodynamic (GRMHD) numerical models of accretion disks, although being highly turbulent, have surprisingly simple electromagnetic properties. In particular, the toroidal current density in the disk takes the form dIϕ/drr5/4dI_\phi/dr \propto r^{-5/4}. Guided by this simplicity, we use a time-dependent general relativistic force-free electrodynamics (GRFFE) code to study an idealized problem in which the accretion disk is replaced by an infinitely thin rotating equatorial current sheet. We consider both an r5/4r^{-5/4} current profile and an r1r^{-1} profile, the latter corresponding to the paraboloidal model of Blandford & Znajek (1977). The force-free magnetosphere we obtain with the r5/4r^{-5/4} current sheet matches remarkably well to the Poynting-dominated jet seen in GRMHD numerical models. By comparing to the non-rotating force-free model studied in paper I, rotation is seen to lead to mild decollimation of the jet suggesting that hoop-stress forces nearly cancel centrifugal forces. In order to study the process that generates the corona and disk wind and destroys the ordered field in the corona in GRMHD numerical models, the force-free field with the r5/4r^{-5/4} current distribution is embedded in an accretion disk and followed in a GRMHD simulation. Reconnection and magnetic stresses contribute to a magnetized, thermal wind without the aid of an ordered field threading the disk.

Keywords

Cite

@article{arxiv.astro-ph/0607576,
  title  = {Disk-Jet Coupling in Black Hole Accretion Systems II: Force-Free Electrodynamical Models},
  author = {Jonathan C. McKinney and Ramesh Narayan},
  journal= {arXiv preprint arXiv:astro-ph/0607576},
  year   = {2008}
}

Comments

20 pages, 17 figures, accepted to MNRAS

R2 v1 2026-07-22T09:10:39.422Z