English

Self-force with (3+1) codes: a primer for numerical relativists

General Relativity and Quantum Cosmology 2010-05-12 v1

Abstract

Prescriptions for numerical self-force calculations have traditionally been designed for frequency-domain or (1+1) time-domain codes which employ a mode decomposition to facilitate in carrying out a delicate regularization scheme. This has prevented self-force analyses from benefiting from the powerful suite of tools developed and used by numerical relativists for simulations of the evolution of comparable-mass black hole binaries. In this work, we revisit a previously-introduced (3+1) method for self-force calculations, and demonstrate its viability by applying it to the test case of a scalar charge moving in a circular orbit around a Schwarzschild black hole. Two (3+1) codes originally developed for numerical relativity applications were independently employed, and in each we were able to compute the two independent components of the self-force and the energy flux correctly to within <1< 1%. We also demonstrate consistency between tt-component of the self-force and the scalar energy flux. Our results constitute the first successful calculation of a self-force in a (3+1) framework, and thus open opportunities for the numerical relativity community in self-force analyses and the perturbative modeling of extreme-mass-ratio inspirals.

Keywords

Cite

@article{arxiv.0908.2138,
  title  = {Self-force with (3+1) codes: a primer for numerical relativists},
  author = {Ian Vega and Peter Diener and Wolfgang Tichy and Steven Detweiler},
  journal= {arXiv preprint arXiv:0908.2138},
  year   = {2010}
}

Comments

23 pages, 13 figures

R2 v1 2026-06-21T13:35:39.425Z