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Nonaxisymmetric Effects in the Black Hole Accretion Inviscid Hydrodynamics: Formation and Evolution of a Tilted Torus

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arxiv 0803.2087 v1 pith:7JPKBGLQ submitted 2008-03-14 astro-ph

classification astro-ph
keywords accretionangularmomentumtorusratesimulationsaxisymmetricazimuth-dependent
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We report on the fourth phase of our study of slightly rotating accretion flows onto black holes. The main new element of this study is that we used fully three dimensional (3-D) numerical simulations. We consider hydrodynamics of inviscid accretion flows. We assume a spherically symmetric density distribution at the outer boundary, but brake the flow symmetry by introducing a small, latitude-dependent angular momentum. We also consider cases where angular momentum at large radii is latitude- and azimuth-dependent. For the latitude-dependent angular momentum, 3-D simulations confirm axisymmetric results: the material that has too much angular momentum to be accreted forms a thick torus near the equator. Consequently, accretion proceeds only through the polar funnel, and the mass accretion rate through the funnel is constrained by the size and shape of the torus, not by the outer conditions. In 3-D simulations, we found that the torus precesses, even for axisymmetric conditions at large radii. For the latitude and azimuth-dependent angular momentum, the non-rotating gas near the equator can also significantly affect the evolution of the rotating gas. In particular, it may prevent the formation of a proper torus (i.e. its closing, in the azimuthal direction). In such models, the mass accretion rate is only slightly less than the corresponding Bondi rate.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. OpenAlex reports about 19 citations worldwide. Full citation record

  1. Simulation based parameter space for shock in transonic, sub-Keplerian accretion flow onto non-rotating black holes

    astro-ph.HE 2026-06 unverdicted novelty 6.0 of 10

    Multi-dimensional simulations show that the parameter space for shocks in non-dissipative transonic sub-Keplerian accretion flows is substantially larger than the analytic prediction, with dynamic boundary layers prod...

  2. A general relativistic hydrodynamic simulation code for studying advective, sub-Keplerian accretion flow onto black holes

    astro-ph.IM 2025-06 conditional novelty 4.0 of 10

    A GRHD finite-volume code is validated against analytic transonic solutions and applied to 2D sub-Keplerian accretion, recovering shocks and frame-dragging effects.

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