English

An eccentric binary black hole inspiral-merger-ringdown gravitational waveform model from numerical relativity and post-Newtonian theory

General Relativity and Quantum Cosmology 2018-08-15 v1

Abstract

We present a prescription for computing gravitational waveforms for the inspiral, merger and ringdown of non-spinning eccentric binary black hole systems. The inspiral waveform is computed using the post-Newtonian expansion and the merger waveform is computed by interpolating a small number of quasi-circular NR waveforms. The use of circular merger waveforms is possible because eccentric binaries circularize in the last few cycles before the merger, which we demonstrate up to mass ratio q=m1/m2=3q = m_1/m_2 = 3. The complete model is calibrated to 23 numerical relativity (NR) simulations starting ~20 cycles before the merger with eccentricities eref0.08e_\text{ref} \le 0.08 and mass ratios q3q \le 3, where erefe_\text{ref} is the eccentricity ~7 cycles before the merger. The NR waveforms are long enough that they start above 30 Hz (10 Hz) for BBH systems with total mass M80MM \ge 80 M_\odot (230M230 M_\odot). We find that, for the sensitivity of advanced LIGO at the time of its first observing run, the eccentric model has a faithfulness with NR of over 97% for systems with total mass M85MM \ge 85 M_\odot across the parameter space (eref0.08,q3e_\text{ref} \le 0.08, q \le 3). For systems with total mass M70MM \ge 70 M_\odot, the faithfulness is over 97% for eref0.05e_\text{ref} \lesssim 0.05 and q3q \le 3. The NR waveforms and the Mathematica code for the model are publicly available.

Keywords

Cite

@article{arxiv.1709.02007,
  title  = {An eccentric binary black hole inspiral-merger-ringdown gravitational waveform model from numerical relativity and post-Newtonian theory},
  author = {Ian Hinder and Lawrence E. Kidder and Harald P. Pfeiffer},
  journal= {arXiv preprint arXiv:1709.02007},
  year   = {2018}
}