On Hydromagnetic Stresses in Accretion Disk Boundary Layers
arXiv:1111.4219 · doi:10.1088/0004-637X/751/1/48
Abstract
Detailed calculations of the physical structure of accretion disk boundary layers, and thus their inferred observational properties, rely on the assumption that angular momentum transport is opposite to the radial angular frequency gradient of the disk. The standard model for turbulent shear viscosity satisfies this assumption by construction. However, this behavior is not supported by numerical simulations of turbulent magnetohydrodynamic (MHD) accretion disks, which show that angular momentum transport driven by the magnetorotational instability (MRI) is inefficient in disk regions where, as expected in boundary layers, the angular frequency increases with radius. In order to shed light into physically viable mechanisms for angular momentum transport in this inner disk region, we examine the generation of hydromagnetic stresses and energy density in differentially rotating backgrounds with angular frequencies that increase outward in the shearing-sheet framework. We isolate the modes that are unrelated to the standard MRI and provide analytic solutions for the long-term evolution of the resulting shearing MHD waves. We show that, although the energy density of these waves can be amplified significantly, their associated stresses oscillate around zero, rendering them an inefficient mechanism to transport significant angular momentum (inward). These findings are consistent with the results obtained in numerical simulations of MHD accretion disk boundary layers and challenge the standard assumption of efficient angular momentum transport in the inner disk regions. This suggests that the detailed structure of turbulent MHD accretion disk boundary layers could differ appreciably from those derived within the standard framework of turbulent shear viscosity.
6 pages, 4 figures, uses emulateapj, updated to match published version in ApJ
References in corpus (6)
- Athena: A New Code for Astrophysical MHD
- Spread of Matter over a Neutron-Star Surface During Disk Accretion: Deceleration of Rapid Rotation
- The signature of the magnetorotational instability in the Reynolds and Maxwell stress tensors in accretion discs
- The fundamental difference between shear alpha viscosity and turbulent magnetorotational stresses
- Nonlinear Evolution of Hydrodynamical Shear Flows in Two Dimensions
- Simulations of the Boundary Layer Between a White Dwarf and its Accretion Disk
Cited by in corpus (20)
- Angular Momentum Transport by Acoustic Modes Generated in the Boundary Layer I: Hydrodynamical Theory and Simulations
- Revisiting linear dynamics of non-axisymmetric perturbations in weakly magnetized accretion discs
- Supercritical Accretion onto a Non-Magnetized Neutron Star: Why is it Feasible?
- Nonlinear transverse cascade and two-dimensional magnetohydrodynamic subcritical turbulence in plane shear flows
- Angular Momentum Transport by Acoustic Modes Generated in the Boundary Layer II: MHD Simulations
- Zero net flux MRI-turbulence in disks sustenance scheme and magnetic Prandtl number dependence
- The Boundary Layer in compact binaries
- Boundary Layer Circumplanetary Accretion: How Fast Could an Unmagnetized Planet Spin Up Through Its Disk?
- Wave mediated angular momentum transport in astrophysical boundary layers
- Nonlinear transverse cascade and sustenance of MRI-turbulence in Keplerian disks with an azimuthal magnetic field
- Active modes and dynamical balances in MRI-turbulence of Keplerian disks with a net vertical magnetic field
- Boundary Layers of Accretion Disks: Wave-Driven Transport and Disk Evolution
- Inefficient Angular Momentum Transport in Accretion Disk Boundary Layers: Angular Momentum Belt in the Boundary Layer
- The vertical structure of the boundary layer around compact objects
- Boundary Layers of Accretion Disks: Discovery of Vortex-Driven Modes and Other Waves
- Two types of axisymmetric helical magnetorotational instability in rotating flows with positive shear
- Origin of nonlinearity and plausible turbulence by hydromagnetic transient growth in accretion disks: Faster growth rate than magnetorotational instability
- Incompressible Modes Excited by Supersonic Shear in Boundary Layers: Acoustic CFS Instability
- MRI turbulence in vertically stratified accretion discs at large magnetic Prandtl numbers
- An effective model for magnetic field amplification by the magnetorotational and parasitic instabilities