Self force on a scalar charge in Kerr spacetime: circular equatorial orbits
Niels Warburton, Leor Barack

TL;DR
This paper calculates the scalar self-force on a particle in circular equatorial orbit around a Kerr black hole, revealing how the force's conservative component varies with radius and black hole spin, and connecting results to post-Newtonian theory.
Contribution
It provides the first detailed numerical analysis of the scalar self-force in Kerr spacetime for circular equatorial orbits, including regularization and PN interpretation.
Findings
Conservative SSF is inward for large radii and outward for small radii, with a critical radius where it vanishes.
Dissipative SSF matches energy and angular momentum fluxes through horizon and infinity.
Spin effects introduce a 3PN order correction, affecting the sign and magnitude of the SSF.
Abstract
We present a calculation of the scalar field self-force (SSF) acting on a scalar-charge particle in a strong-field orbit around a Kerr black hole. Our calculation specializes to circular and equatorial geodesic orbits. The analysis is an implementation of the standard mode-sum regularization scheme: We first calculate the multipole modes of the scalar-field perturbation using numerical integration in the frequency domain, and then apply a certain regularization procedure to each of the modes. The dissipative piece of the SSF is found to be consistent with the flux of energy and angular momentum carried by the scalar waves through the event horizon and out to infinity. The conservative (radial) component of the SSF is found to be attractive (inward pointing) for and repulsive (outward pointing) for , where is the Kerr spin parameter, is the…
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