Radiative GRMHD simulations of puffy accretion discs: Numerical versus analytical models of sub-Eddington accretion

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Main Authors: Lančová, Debora, Wielgus, Maciek, Abramowicz, Marek, Różańska, Agata, Kluźniak, Włodek, Horák, Jiří, Abarca, David, Sądowski, Aleksander, Török, Gabriel
Format: Preprint
Published: 2026
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author Lančová, Debora
Wielgus, Maciek
Abramowicz, Marek
Różańska, Agata
Kluźniak, Włodek
Horák, Jiří
Abarca, David
Sądowski, Aleksander
Török, Gabriel
author_facet Lančová, Debora
Wielgus, Maciek
Abramowicz, Marek
Różańska, Agata
Kluźniak, Włodek
Horák, Jiří
Abarca, David
Sądowski, Aleksander
Török, Gabriel
contents A widely accepted picture of an accretion flow in the luminous soft spectral state of X-ray binary systems is a geometrically thin disc structure much like the classic analytic solution of Shakura \& Sunyaev. Although the analytic models are troubled by instabilities and miss important aspects of physics, such as magnetic fields, they are successfully used as a framework for interpreting observational data. Here, we compare the results of general relativistic radiative magnetohydrodynamic (GRRMHD) simulations of optically thick, mildly sub-Eddington accretion on a stellar-mass black hole (the puffy disc) with established analytic and semi-analytic accretion models in the same regime. From the simulations, we find that the accretion flow is stabilised by the magnetic field, with a puffed-up, optically thick region resembling a warm corona surrounding a denser and cooler disc core. However, the stratified vertical structure of the disc significantly influences the observational picture of such a system. We analyse the inner disc structure, flow properties, effective viscosity, and inner edge position, and compare them to the predictions of standard models. We find that the simulated discs share some similarities with the models; however, they differ in several important aspects, most notably: the photosphere is geometrically thick, the inner edge is located closer to the central black hole than the analytic models assume, the surface density is significantly lower than analytically predicted, and the effective viscosity parameter is not constant but rises steeply in the innermost region.
format Preprint
id arxiv_https___arxiv_org_abs_2603_17922
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Radiative GRMHD simulations of puffy accretion discs: Numerical versus analytical models of sub-Eddington accretion
Lančová, Debora
Wielgus, Maciek
Abramowicz, Marek
Różańska, Agata
Kluźniak, Włodek
Horák, Jiří
Abarca, David
Sądowski, Aleksander
Török, Gabriel
High Energy Astrophysical Phenomena
A widely accepted picture of an accretion flow in the luminous soft spectral state of X-ray binary systems is a geometrically thin disc structure much like the classic analytic solution of Shakura \& Sunyaev. Although the analytic models are troubled by instabilities and miss important aspects of physics, such as magnetic fields, they are successfully used as a framework for interpreting observational data. Here, we compare the results of general relativistic radiative magnetohydrodynamic (GRRMHD) simulations of optically thick, mildly sub-Eddington accretion on a stellar-mass black hole (the puffy disc) with established analytic and semi-analytic accretion models in the same regime. From the simulations, we find that the accretion flow is stabilised by the magnetic field, with a puffed-up, optically thick region resembling a warm corona surrounding a denser and cooler disc core. However, the stratified vertical structure of the disc significantly influences the observational picture of such a system. We analyse the inner disc structure, flow properties, effective viscosity, and inner edge position, and compare them to the predictions of standard models. We find that the simulated discs share some similarities with the models; however, they differ in several important aspects, most notably: the photosphere is geometrically thick, the inner edge is located closer to the central black hole than the analytic models assume, the surface density is significantly lower than analytically predicted, and the effective viscosity parameter is not constant but rises steeply in the innermost region.
title Radiative GRMHD simulations of puffy accretion discs: Numerical versus analytical models of sub-Eddington accretion
topic High Energy Astrophysical Phenomena
url https://arxiv.org/abs/2603.17922