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Frequency-domain gravitational waves from nonprecessing black-hole binaries. I. New numerical waveforms and anatomy of the signal

S. HusaS. KhanMark HannamM. PürrerF. OhmeXisco Jiménez FortezaA. Bohé

Abstract

In this paper we discuss the anatomy of frequency-domain gravitational-wave signals from nonprecessing black-hole coalescences with the goal of constructing accurate phenomenological waveform models. We first present new numerical-relativity simulations for mass ratios up to 18, including spins. From a comparison of different post-Newtonian approximants with numerical-relativity data we select the uncalibrated SEOBNRv2 model as the most appropriate for the purpose of constructing hybrid post-Newtonian/numerical-relativity waveforms, and we discuss how we prepare time-domain and frequency-domain hybrid data sets. We then use our data together with results in the literature to calibrate simple explicit expressions for the final spin and radiated energy. Equipped with our prediction for the final state we then develop a simple and accurate merger-ringdown model based on modified Lorentzians in the gravitational-wave amplitude and phase, and we discuss a simple method to represent the low frequency signal augmenting the TaylorF2 post-Newtonian approximant with terms corresponding to higher orders in the post-Newtonian expansion. We finally discuss different options for modelling the small intermediate frequency regime between inspiral and merger ringdown. A complete phenomenological model based on the present work is presented in a companion paper [S. Khan et al., following paper, Phys. Rev. D 93 044007 (2016)].

Pulsars and Gravitational Waves ResearchAstrophysical Phenomena and ObservationsGeophysics and Sensor TechnologyGravitational waveNumerical relativityPhysicsWaveformAmplitudeTime domainFrequency domainSpinsTheory of relativityBlack hole (networking)

Funding

  • Partnership for Advanced Computing in Europe AISBL
  • Bundesministerium für Bildung und Forschung
  • Ministerio de Economía y Competitividad
  • Science and Technology Facilities Council
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References
Advanced LIGO: the next generation of gravitational wave detectors
Classical and Quantum Gravity · 2010 · 1,270 citations
Quasinormal modes of black holes and black branes
Classical and Quantum Gravity · 2009 · 2,151 citations
Effective one-body approach to general relativistic two-body dynamics
Physical review. D. Particles, fields, gravitation, and cosmology/Physical review. D. Particles and fields · 1999 · 1,255 citations
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