Effective-one-body model for black-hole binaries with generic mass ratios and spins
Abstract
Gravitational waves emitted by black-hole binary systems have the highest signal-to-noise ratio in LIGO and Virgo detectors when black-hole spins are aligned with the orbital angular momentum and extremal. For such systems, we extend the effective-one-body inspiral-merger-ringdown waveforms to generic mass ratios and spins calibrating them to 38 numerical-relativity nonprecessing waveforms produced by the SXS Collaboration. The numerical-relativity simulations span mass ratios from 1 to 8, spin magnitudes up to 98% of extremality, and last for 40 to 60 gravitational-wave cycles. When the total mass of the binary is between 20 and 200M⊙, the effective-one-body nonprecessing (dominant mode) waveforms have overlap above 99% (using the advanced-LIGO design noise spectral density) with all of the 38 nonprecessing numerical waveforms, when maximizing only on initial phase and time. This implies a negligible loss in event rate due to modeling. We also show that—without further calibration— the precessing effective-one-body (dominant mode) waveforms have overlap above 97% with two very long, strongly precessing numerical-relativity waveforms, when maximizing only on the initial phase and time.
- Publication:
-
Physical Review D
- Pub Date:
- March 2014
- DOI:
- arXiv:
- arXiv:1311.2544
- Bibcode:
- 2014PhRvD..89f1502T
- Keywords:
-
- 04.25.D-;
- 04.25.dg;
- 04.25.Nx;
- 04.30.-w;
- Numerical relativity;
- Numerical studies of black holes and black-hole binaries;
- Post-Newtonian approximation;
- perturbation theory;
- related approximations;
- Gravitational waves: theory;
- General Relativity and Quantum Cosmology
- E-Print:
- 5 pages, 4 figures