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Towards an understanding of the force-free magnetosphere of rapidly spinning black holes

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arxiv 1409.0345 v2 pith:JCY64XH7 submitted 2014-09-01 astro-ph.HE gr-qchep-th

classification astro-ph.HEgr-qchep-th
keywords blackforce-freeequationsholesmagnetospherenhekproblemsolutions
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The ability of a plasma surrounding spinning black holes to extract rotational energy and power energetic emissions has been recognized as a key astrophysical phenomenon. Important insights into the nature of this process are obtained through the analysis of the interplay between a force-free magnetosphere and the black hole. This task involves solving a complicated system of equations, often requiring complex numerical simulations. Recent analytical attempts at tackling this problem have exploited the fact that the near horizon region of extreme Kerr (NHEK) is endowed with an enhanced symmetry group. We continue in this direction and show that for some conformally self-similar solutions, the NHEK force-free equations reduce to a single non-linear ordinary differential equation which is difficult to solve with straightforward integration. We here introduce a new approach specifically tailored to this problem and describe how one can obtain physically meaningful solutions.

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  1. Outgoing electromagnetic flux from rotating wormholes

    gr-qc 2024-11 reject novelty 6.0 of 10

    A rotating Damour-Solodukhin wormhole with a specific, assumed magnetic field can produce a Poynting flux comparable to that of a Kerr black hole.

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