1996The Astrophysical JournalRequires access

Modified Newtonian Potentials for the Description of Relativistic Effects in Accretion Disks around Black Holes

I. V. Artemova, G. Bjoernsson, Igor D. Novikov

Open publisher page 170 citations

Abstract

We present modified Newtonian potentials to describe the general relativistic effects that are most important for accretion disk structure around nonrotating and rotating black holes. We compare disk solutions obtained using these potentials with solutions using other potentials that have been proposed in the literature, as well as with the general relativistic solutions. We demonstrate that simple potentials can capture the essentials of general relativity and reproduce the accretion disk structure to an accuracy of about 10%-20%, even for maximally rotating black holes.

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What this paper is about

We present modified Newtonian potentials to describe the general relativistic effects that are most important for accretion disk structure around nonrotating and rotating black holes. We compare disk solutions obtained using these potentials with solutions using other potentials that have been proposed in the literature, as well as with the general relativistic solutions. We demonstrate that simple potentials can capture the essentials of general relativity and reproduce the accretion disk structure to an accuracy of about 10%-20%, even for maximally rotating black holes.

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Available abstract

We present modified Newtonian potentials to describe the general relativistic effects that are most important for accretion disk structure around nonrotating and rotating black holes. We compare disk solutions obtained using these potentials with solutions using other potentials that have been proposed in the literature, as well as with the general relativistic solutions. We demonstrate that simple potentials can capture the essentials of general relativity and reproduce the accretion disk structure to an accuracy of about 10%-20%, even for maximally rotating black holes.

Key concepts: Physics, General relativity, Accretion (finance), Astrophysics, Relativistic quantum chemistry, Black hole (networking), Binary black hole, Accretion disc

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