Geodesically complete black holes in Lorentz-violating gravity

被引:0
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作者
Raúl Carballo-Rubio
Francesco Di Filippo
Stefano Liberati
Matt Visser
机构
[1] University of Central Florida,Florida Space Institute
[2] Kyoto University,Center for Gravitational Physics, Yukawa Institute for Theoretical Physics
[3] SISSA — International School for Advanced Studies,School of Mathematics and Statistics
[4] IFPU — Institute for Fundamental Physics of the Universe,undefined
[5] INFN,undefined
[6] Sezione di Trieste,undefined
[7] Victoria University of Wellington,undefined
关键词
Black Holes; Spacetime Singularities;
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摘要
We present a systematic study of the geometric structure of non-singular spacetimes describing black holes in Lorentz-violating gravity. We start with a review of the definition of trapping horizons, and the associated notions of trapped and marginally trapped surfaces, and then study their significance in frameworks with modified dispersion relations. This leads us to introduce the notion of universally marginally trapped surfaces, as the direct generalization of marginally trapped surfaces for frameworks with infinite signal velocities (Hořava-like frameworks), which then allows us to define universal trapping horizons. We find that trapped surfaces cannot be generalized in the same way, and discuss in detail why this does not prevent using universal trapping horizons to define black holes in Hořava-like frameworks. We then explore the interplay between the kinematical part of Penrose’s singularity theorem, which implies the existence of incomplete null geodesics in the presence of a focusing point, and the existence of multiple different metrics. This allows us to present a complete classification of all possible geometries that neither display incomplete physical trajectories nor curvature singularities. Our main result is that not all classes that exist in frameworks in which all signal velocities are realized in Hořava-like frameworks. However, the taxonomy of geodesically complete black holes in Hořava-like frameworks includes diverse scenarios such as evaporating regular black holes, regular black holes bouncing into regular white holes, and hidden wormholes.
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