Observational signatures from higher-order images of moving hotspots in accretion disks
Qing-Hua Zhu

TL;DR
This paper develops a precise ray-tracing method to study higher-order images of moving hotspots in black hole accretion disks, revealing their potential observational signatures and flux behaviors near the event horizon.
Contribution
It introduces a one-to-one mapping ray-tracing scenario for simulating higher-order images of hotspots, enabling detailed analysis of their observational signatures.
Findings
Higher-order images can be categorized into two types.
Fluxes from higher-order images dominate alternately as hotspots approach the horizon.
Flux profiles exhibit self-similarity and oscillatory decay over time.
Abstract
The efforts to probe the horizon-scale structure of black holes, such as Event Horizon Telescope and GRAVITY interferometer, might provide valuable insights into the strong-field regime of Einstein's theory of gravity. In the near field region of a black hole, the observational signatures of moving hotspots might potentially reveal the mechanism causing the flares, or reflect the spacetime geometries. This paper develops a ray tracing scenario to study higher-order images of moving hotspots in a thin disk around a spherical black hole. Our ray-tracing scenario establishes a one-to-one mapping between emission locations and observer's sky. It enables us to perform infinite-precision simulations for the images, because the emission sources are projected directly onto the image plane. Furthermore, we show that a source located anywhere outside the black hole can be repeatedly mapped onto…
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Taxonomy
TopicsAstrophysics and Star Formation Studies · Phase Equilibria and Thermodynamics · Astro and Planetary Science
