Displaced orbits and electric-magnetic black hole binaries
arXiv:2001.05010 · doi:10.1088/1361-6382/aba17e
Abstract
In presence of magnetic fields, the orbits of charged particles can be displaced from the equatorial plane. We study circular orbits of electrically charged massive objects around a magnetic black hole in the probe approximation. We show that there exist a one-parameter family of circular orbits at constant polar angle and constant radius , parameterized by the angular momentum. The angle can be made arbitrarily small by increasing the charge-to-mass ratio of the orbiting particle, but when this is a Reissner-Nordstr\" om black hole, the condition implies that orbits exist only for . We show that the circular orbits are stable under small perturbations in the and directions. We also discuss the Newtonian approximation and a binary system of electric and magnetic black holes, each one describing a circular orbit with no central force.
10 pages, 5 figures. Final version appeared in Class.Quant.Grav. 37 (2020) 17, 175004
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