English

Tracking black hole kicks from gravitational wave observations

General Relativity and Quantum Cosmology 2018-11-14 v2

Abstract

Coalescing binary black holes emit anisotropic gravitational radiation. This causes a net emission of linear momentum that produces a gradual acceleration of the source. As a result, the final remnant black hole acquires a characteristic velocity known as recoil velocity or gravitational kick. The symmetries of gravitational wave emission are reflected in the interactions of the gravitational wave modes emitted by the binary. In this work we make use of the rich information encoded in the higher-order modes of the gravitational wave emission to infer the component of the kick along the line-of-sight (or \textit{radial kick}). We do this by performing parameter inference on simulated signals given by numerical relativity waveforms for non-spinning binaries using numerical relativity templates of aligned-spin (non-precessing) binary black holes. We find that for suitable sources, namely those with mass ratio q2q\geq 2 and total mass M100MM \sim 100M_\odot, and for modest radial kicks of 120km/s120km/s, the 90%90\% credible intervals of our posterior probability distributions can exclude a zero kick at a signal-to-noise ratio of 1515; using a single Advanced LIGO detector working at its early sensitivity. The measurement of a non-zero radial kick component would provide the first observational signature of net transport of linear momentum by gravitational waves away from their source.

Keywords

Cite

@article{arxiv.1806.11160,
  title  = {Tracking black hole kicks from gravitational wave observations},
  author = {Juan Calderón Bustillo and James A. Clark and Pablo Laguna and Deirdre Shoemaker},
  journal= {arXiv preprint arXiv:1806.11160},
  year   = {2018}
}

Comments

6 pages, 5 figures

R2 v1 2026-06-23T02:45:22.238Z