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Numerical simulations of mass outflows driven from accretion disks by radiation and magnetic forces

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arxiv astro-ph/0210642 v1 pith:NCYIREA5 submitted 2002-10-29 astro-ph

Numerical simulations of mass outflows driven from accretion disks by radiation and magnetic forces

classification astro-ph
keywords magneticfielddiskslowdensedisksfastfields
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We study the two-dimensional, time-dependent MHD of radiation-driven winds from luminous accretion disks initially threaded by a purely axial magnetic field. The radiation force is mediated primarily by spectral lines. We use ideal MHD to compute the evolution of Keplerian disks, varying the magnetic field strengths and the luminosity of the disk, the central accreting object or both. We find that the magnetic fields very quickly start deviating from purely axial due to the magnetorotational instability. This leads to fast growth of the toroidal magnetic field. As a result the toroidal field dominates over the poloidal field above the disk and the gradient of the former drives a slow and dense disk outflow, which conserves specific angular momentum. Depending on the strength of the magnetic field relative to the system luminosity the disk wind can be radiation- or MHD driven. The pure radiation-driven wind consists of a dense, slow outflow that is bounded on the polar side by a high-velocity stream. The mass-loss rate is mostly due to the fast stream. As the magnetic field strength increases first the slow part of the flow is affected, namely it becomes denser and slightly faster and begins to dominate the mass-loss rate. In very strong magnetic field or pure MHD cases, the wind consists of only a dense, slow outflow without the presence of the distinctive fast stream so typical to pure radiation-driven winds. Our simulations indicate that winds launched by the magnetic fields are likely to remain dominated by the fields downstream because of their relatively high densities.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. Outflow Behavior from the Transonic Advective Disks: A Hydrodynamical Simulation Study

    astro-ph.HE 2026-07 conditional novelty 5.0

    In 2D hydro simulations, colder transonic accretion disks launch faster, lower-density, more energetic bipolar outflows than hotter disks, and outflow strength rises with viscosity.

  2. Outflow Behavior from the Transonic Advective Disks: A Hydrodynamical Simulation Study

    astro-ph.HE 2026-07 conditional novelty 4.0

    In viscous hydro simulations, colder transonic advective disks drive faster, higher kinetic-energy and momentum bipolar outflows than hotter disks, and outflow strength increases with viscosity.