Probing spacetime and accretion model for the Galactic Center: Comparison of Kerr and dilaton black hole shadows
Jan R\"oder, Alejandro Cruz-Osorio, Christian M. Fromm, Yosuke Mizuno,, Ziri Younsi, Luciano Rezzolla

TL;DR
This study compares Kerr and dilaton black hole shadows using GRMHD simulations and radiative transfer to understand how accretion and emission models influence observational signatures, aiming to distinguish between different gravity theories.
Contribution
It introduces a comprehensive simulation framework comparing Kerr and dilaton black holes, analyzing the effects of accretion and emission models on observable signatures.
Findings
Accretion model and spacetime have minor impact on spectra compared to emission model.
Simulations match at innermost stable circular orbit and photon orbit for comparison.
Multiwavelength emission analysis helps differentiate between models.
Abstract
In the vicinity of black holes, the influence of strong gravity, plasma physics, and emission processes govern the behavior of the system. Since observations such as those carried out by the EHT are not yet able to unambiguously constrain models for astrophysical and gravitational properties, it is imperative to explore the accretion models, particle distribution function, and description of the spacetime geometry. Our current understanding of these properties is often based on the assumption that the spacetime is well-described by by the Kerr solution to general relativity, combined with basic emission and accretion models. We explore alternative models for each property performing general relativistic magnetohydrodynamic and radiative transfer simulations. By choosing a Kerr solution to general relativity and a dilaton solution to Einstein-Maxwell-dilaton-axion gravity as exemplary…
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Taxonomy
TopicsAstrophysical Phenomena and Observations
