English

Self force via $m$-mode regularization and 2+1D evolution: II. Scalar-field implementation on Kerr spacetime

General Relativity and Quantum Cosmology 2011-10-06 v3 High Energy Astrophysical Phenomena

Abstract

This is the second in a series of papers aimed at developing a practical time-domain method for self-force calculations in Kerr spacetime. The key elements of the method are (i) removal of a singular part of the perturbation field with a suitable analytic "puncture" based on the Detweiler--Whiting decomposition, (ii) decomposition of the perturbation equations in azimuthal (mm-)modes, taking advantage of the axial symmetry of the Kerr background, (iii) numerical evolution of the individual mm-modes in 2+1-dimensions with a finite difference scheme, and (iv) reconstruction of the physical self-force from the mode sum. Here we report an implementation of the method to compute the scalar-field self-force along circular equatorial geodesic orbits around a Kerr black hole. This constitutes a first time-domain computation of the self force in Kerr geometry. Our time-domain code reproduces the results of a recent frequency-domain calculation by Warburton and Barack, but has the added advantage of being readily adaptable to include the back-reaction from the self force in a self-consistent manner. In a forthcoming paper---the third in the series---we apply our method to the gravitational self-force (in the Lorenz gauge).

Keywords

Cite

@article{arxiv.1107.0012,
  title  = {Self force via $m$-mode regularization and 2+1D evolution: II. Scalar-field implementation on Kerr spacetime},
  author = {Sam R. Dolan and Barry Wardell and Leor Barack},
  journal= {arXiv preprint arXiv:1107.0012},
  year   = {2011}
}

Comments

30 pages, 5 figures, 3 tables. To match published version

R2 v1 2026-06-21T18:30:07.280Z