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Higher Order Terms of Kerr Parameter for Blandford-Znajek Monopole Solution

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abstract

Blandford-Znajek mechanism, by which the rotational energy of a black hole is extracted through electromagnetic fields, is one of the promising candidates as an essential process of the central engine of active compact objects such as Gamma-Ray Bursts. The only known analytical solution of this mechanism is the perturbative monopole solution for Kerr parameter a up to the second order terms. In order to apply Blandford-Znajek mechanism to rapidly rotating black holes, we try to obtain the perturbation solution up to the fourth order. As a result, we find that the fourth order terms of the vector potential diverge at infinity, which implies that the perturbation approach breaks down at large distance from the black hole. Although there are some uncertainties about the solution due to the unknown boundary condition at infinity for the fourth order terms, we can derive the evaluation of the total energy flux extracted from the black hole up to fourth order of a without any ambiguity. Further more, from the comparison between the numerical solution that is valid for 0<a<1 and the fourth order solution, we find that the fourth order solution reproduces the numerical result better than the second order solution. At the same time, since the fourth order solution does not match well with numerical result at large a, we conclude that more higher order terms are required to reproduce the numerical result.

fields

gr-qc 1

years

2024 1

verdicts

REJECT 1

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  • Outgoing electromagnetic flux from rotating wormholes gr-qc · 2024-11-20 · reject · none · ref 32 · internal anchor

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