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Physical Review D | 2017

Complete waveform model for compact binaries on eccentric orbits

Eliu Huerta; P. Kumar; B. Agarwal; Daniel George; Hsi-Yu Schive; Harald P. Pfeiffer; Roland Haas; Wei Ren; Tony Chu; Michael Boyle; Daniel A. Hemberger; Lawrence E. Kidder; Mark A. Scheel; Bela Szilagyi

We present a time domain waveform model that describes the inspiral, merger and ringdown of compact binary systems whose components are nonspinning, and which evolve on orbits with low to moderate eccentricity. The inspiral evolution is described using third-order post-Newtonian equations both for the equations of motion of the binary, and its far-zone radiation field. This latter component also includes instantaneous, tails and tails-of-tails contributions, and a contribution due to nonlinear memory. This framework reduces to the post-Newtonian approximant TaylorT4 at third post-Newtonian order in the zero-eccentricity limit. To improve phase accuracy, we also incorporate higher-order post-Newtonian corrections for the energy flux of quasicircular binaries and gravitational self-force corrections to the binding energy of compact binaries. This enhanced prescription for the inspiral evolution is combined with a fully analytical prescription for the merger-ringdown evolution constructed using a catalog of numerical relativity simulations. We show that this inspiral-merger-ringdown waveform model reproduces the effective-one-body model of Ref. [Y. Pan et al., Phys. Rev. D 89, 061501 (2014).] for quasicircular black hole binaries with mass ratios between 1 to 15 in the zero-eccentricity limit over a wide range of the parameter space under consideration. Using a set of eccentric numerical relativity simulations, not used during calibration, we show that our new eccentric model reproduces the true features of eccentric compact binary coalescence throughout merger. We use this model to show that the gravitational-wave transients GW150914 and GW151226 can be effectively recovered with template banks of quasicircular, spin-aligned waveforms if the eccentricity


Bulletin of the American Physical Society | 2017

Development of accurate waveform models for eccentric compact binaries with numerical relativity simulations

Eliu Huerta; B. Agarwal; Alvin J. K. Chua; Daniel George; Roland Haas; Ian Hinder; P. Kumar; Christopher Moore; Harald P. Pfeiffer

{e}_{0}


Bulletin of the American Physical Society | 2017

A complete waveform model for compact binaries on eccentric orbits

Daniel George; Eliu Huerta; P. Kumar; B. Agarwal; Hsi-Yu Schive; Harald P. Pfeiffer; Tony Chu; Michael P. Boyle; Daniel A. Hemberger; Lawrence E. Kidder; Mark A. Scheel; Bela Szilagyi

of these systems when they enter the aLIGO band at a gravitational-wave frequency of 14 Hz satisfies

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P. Kumar

University of Toronto

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Mark A. Scheel

California Institute of Technology

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Tony Chu

California Institute of Technology

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Christopher Moore

University of Colorado Boulder

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