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Reflecting boundary conditions in numerical relativity as a model for black hole echoes

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arxiv 2301.05778 v2 pith:B2I2PHXN submitted 2023-01-13 gr-qc

classification gr-qc
keywords blackholenumericalreflectingboundarymodelrelativitythere
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Recently, there has been much interest in black hole echoes, based on the idea that there may be some mechanism (e.g., from quantum gravity) that waves/fields falling into a black hole could partially reflect off of an interface before reaching the horizon. There does not seem to be a good understanding of how to properly model a reflecting surface in numerical relativity, as the vast majority of the literature avoids the implementation of artificial boundaries, or applies transmitting boundary conditions. Here, we present a framework for reflecting a scalar field in a fully dynamical spherically symmetric spacetime, and implement it numerically. We study the evolution of a wave packet in this situation and its numerical convergence, including when the location of a reflecting boundary is very close to the horizon of a black hole. This opens the door to model exotic near-horizon physics within full numerical relativity.

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  1. Black hole spectroscopy and nonlinear echoes in Einstein-Maxwell-scalar theory

    gr-qc 2024-12 conditional novelty 7.0 of 10

    In a consistent Einstein-Maxwell-scalar theory, black hole ringdown echoes seen in linear theory survive fully nonlinear radial evolution.

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