The Influence of Magnetic Field Geometry on the Evolution of Black Hole Accretion Flows: Similar Disks, Drastically Different Jets
arXiv:0709.3833 · doi:10.1086/533492
Abstract
Because the magneto-rotational instability is capable of exponentially amplifying weak preexisting magnetic fields, it might be hoped that the character of the magnetic field in accretion disks is independent of the nature of the seed field. However, the divergence-free nature of magnetic fields in highly conducting fluids ensures that their large-scale topology is preserved, no matter how greatly the field intensity is changed. By performing global two-dimensional and three-dimensional general relativistic magnetohydrodynamic disk simulations with several different topologies for the initial magnetic field, we explore the degree to which the character of the flows around black holes depends on the initial topology. We find that while the qualitative properties of the accretion flow are nearly independent of field topology, jet-launching is very sensitive to it: a sense of vertical field consistent for at least an inner disk inflow time is essential to the support of strong jets.
42 pages; 17 figures; Accepted for publication in ApJ (some new discussion and 2 new figures)
References in corpus (4)
- Signals from the Noise: Image Stacking for Quasars in the FIRST Survey
- Disk-Jet Coupling in Black Hole Accretion Systems I: General Relativistic Magnetohydrodynamical Models
- Infrared Transmission Spectra for Extrasolar Giant Planets
- Thermodynamics of an Accretion Disk Annulus with Comparable Radiation and Gas Pressure
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- 3D Relativistic Magnetohydrodynamic Simulations of Current-Driven Instability. I. Instability of a static column
- A New Paradigm for Gamma Ray Bursts: Long Term Accretion Rate Modulation by an External Accretion Disk
- Development of General Relativistic Magnetohydrodynamic Code and its Application to Central Engine of Long Gamma-Ray Bursts
- Where is the Radiation Edge in Magnetized Black Hole Accretion discs?
- Self-Similar Solution of Hot Accretion Flows with Ordered Magnetic Field and Outflow
- Magnetic layers and neutral points near rotating black hole