English

Up-down instability of binary black holes in numerical relativity

General Relativity and Quantum Cosmology 2021-03-10 v2 High Energy Astrophysical Phenomena

Abstract

Binary black holes with spins that are aligned with the orbital angular momentum do not precess. However, post-Newtonian calculations predict that "up-down" binaries, in which the spin of the heavier (lighter) black hole is aligned (antialigned) with the orbital angular momentum, are unstable when the spins are slightly perturbed from perfect alignment. This instability provides a possible mechanism for the formation of precessing binaries in environments where sources are preferentially formed with (anti) aligned spins. In this paper, we present the first full numerical relativity simulations capturing this instability. These simulations span 100\sim 100 orbits and 3\sim 3-55 precession cycles before merger, making them some of the longest numerical relativity simulations to date. Initialized with a small perturbation of 11^{\circ}-1010^{\circ}, the instability causes a dramatic growth of the spin misalignments, which can reach 90\sim 90^{\circ} near merger. We show that this leaves a strong imprint on the subdominant modes of the gravitational wave signal, which can potentially be used to distinguish up-down binaries from other sources. Finally, we show that post-Newtonian and effective-one-body approximants are able to reproduce the unstable dynamics of up-down binaries extracted from numerical relativity.

Keywords

Cite

@article{arxiv.2012.07147,
  title  = {Up-down instability of binary black holes in numerical relativity},
  author = {Vijay Varma and Matthew Mould and Davide Gerosa and Mark A. Scheel and Lawrence E. Kidder and Harald P. Pfeiffer},
  journal= {arXiv preprint arXiv:2012.07147},
  year   = {2021}
}

Comments

Matches PRD version. Animations available at https://davidegerosa.com/spinprecession

R2 v1 2026-06-23T20:56:09.343Z