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arXiv · 2510.10043

Accretion onto Reissner-Nordstr\"{o}m naked singularities

Abstract

Nearly every galactic core contains a supermassive compact object, hypothesized to be a Kerr black hole. It was only with the advent of Event Horizon Telescope observations that the predictions of this hypothesis could be observationally tested for our own Galaxy, and the nearby elliptical M87, on spatial scales comparable to the gravitational radius. At the same time it became possible to test whether alternatives such as naked singularities in general relativity, or similar objects in alternative theories of gravity, are excluded by the data. These and other observational developments renewed interest in non-Kerr spacetime metrics, also in the context of active galactic nuclei at cosmological distances. Recently, we have shown that accreting naked singularities in the Reissner-Nordstr\"{o}m metric of general relativity tend to produce strong outflows. The geometry and origin of these winds is studied here, and their parameter dependence is investigated. To this end we performed numerical GR hydrodynamical simulations of accretion of electrically neutral matter in the Reissner-Nordstr\"{o}m metric and discussed the results in the context of analytic predictions of fluid motion in this spacetime.

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Tomasz Krajewski, Włodek Kluźniak. 2025-10-11. Accretion onto Reissner-Nordstr\"{o}m naked singularities. https://arxiv.org/abs/2510.10043

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