English

Gravitational self-torque and spin precession in compact binaries

General Relativity and Quantum Cosmology 2014-03-10 v2

Abstract

We calculate the effect of self-interaction on the "geodetic" spin precession of a compact body in a strong-field orbit around a black hole. Specifically, we consider the spin precession angle ψ\psi per radian of orbital revolution for a particle carrying mass μ\mu and spin s(G/c)μ2s \ll (G/c) \mu^2 in a circular orbit around a Schwarzschild black hole of mass MμM \gg \mu. We compute ψ\psi through O(μ/M)O(\mu/M) in perturbation theory, i.e, including the correction δψ\delta\psi (obtained numerically) due to the torque exerted by the conservative piece of the gravitational self-field. Comparison with a post-Newtonian (PN) expression for δψ\delta\psi, derived here through 3PN order, shows good agreement but also reveals strong-field features which are not captured by the latter approximation. Our results can inform semi-analytical models of the strong-field dynamics in astrophysical binaries, important for ongoing and future gravitational-wave searches.

Keywords

Cite

@article{arxiv.1312.0775,
  title  = {Gravitational self-torque and spin precession in compact binaries},
  author = {Sam R. Dolan and Niels Warburton and Abraham I. Harte and Alexandre Le Tiec and Barry Wardell and Leor Barack},
  journal= {arXiv preprint arXiv:1312.0775},
  year   = {2014}
}

Comments

5 pages, 1 table, 1 figure. Minor changes to match published version

R2 v1 2026-06-22T02:19:41.665Z