Comparison of post-Newtonian templates for compact binary inspiral signals in gravitational-wave detectors
arXiv:0907.0700 · doi:10.1103/PhysRevD.80.084043
Abstract
The two-body dynamics in general relativity has been solved perturbatively using the post-Newtonian (PN) approximation. The evolution of the orbital phase and the emitted gravitational radiation are now known to a rather high order up to O(v^8), v being the characteristic velocity of the binary. The orbital evolution, however, cannot be specified uniquely due to the inherent freedom in the choice of parameter used in the PN expansion as well as the method pursued in solving the relevant differential equations. The goal of this paper is to determine the (dis)agreement between different PN waveform families in the context of initial and advanced gravitational-wave detectors. The waveforms employed in our analysis are those that are currently used by Initial LIGO/Virgo, that is the time-domain PN models TaylorT1, TaylorT2, TaylorT3, TaylorT4 and TaylorEt, the effective one-body (EOB) model, and the Fourier-domain representation TaylorF2. We examine the overlaps of these models with one another and with the prototype effective one-body model (calibrated to numerical relativity simulations, as currently used by initial LIGO) for a number of different binaries at 2PN, 3PN and 3.5PN orders to quantify their differences and to help us decide whether there exist preferred families that are the most appropriate as search templates. We conclude that as long as the total mass remains less than a certain upper limit M_crit, all template families at 3.5PN order (except TaylorT3 and TaylorEt) are equally good for the purpose of detection. The value of M_crit is found to be ~ 12M_Sun for Initial, Enhanced and Advanced LIGO. From a purely computational point of view we recommend that 3.5PN TaylorF2 be used below Mcrit and EOB calibrated to numerical relativity simulations be used for total binary mass M > Mcrit.
27 pages, 8 figures, 4 tables, submitted to PRD
References in corpus (23)
- Inspiral, merger and ring-down of equal-mass black-hole binaries
- Model Waveform Accuracy Standards for Gravitational Wave Data Analysis
- High-accuracy waveforms for binary black hole inspiral, merger, and ringdown
- Toward faithful templates for non-spinning binary black holes using the effective-one-body approach
- Faithful Effective-One-Body waveforms of small-mass-ratio coalescing black-hole binaries
- Effective-one-body waveforms calibrated to numerical relativity simulations: coalescence of non-spinning, equal-mass black holes
- An improved analytical description of inspiralling and coalescing black-hole binaries
- Comparing Effective-One-Body gravitational waveforms to accurate numerical data
- A data-analysis driven comparison of analytic and numerical coalescing binary waveforms: nonspinning case
- Accurate Effective-One-Body waveforms of inspiralling and coalescing black-hole binaries
- Consistency of post-Newtonian waveforms with numerical relativity
- High-accuracy numerical simulation of black-hole binaries: Computation of the gravitational-wave energy flux and comparisons with post-Newtonian approximants
- Gravitational Recoil during Binary Black Hole Coalescence using the Effective One Body Approach
- Faithful Effective-One-Body waveforms of equal-mass coalescing black-hole binaries
- Inspiralling compact binaries in quasi-elliptical orbits: The complete third post-Newtonian energy flux
- Phasing of gravitational waves from inspiralling eccentric binaries at the third-and-a-half post-Newtonian order
- Tail effects in the third post-Newtonian gravitational wave energy flux of compact binaries in quasi-elliptical orbits
- Gravitational waves from inspiralling compact binaries: hexagonal template placement and its efficiency in detecting physical signals
- Binary black hole spectroscopy
- Phenomenology of amplitude-corrected post-Newtonian gravitational waveforms for compact binary inspiral. I. Signal-to-noise ratios
- Comparison of high-accuracy numerical simulations of black-hole binaries with stationary phase post-Newtonian template waveforms for Initial and Advanced LIGO
- Comparison between numerical relativity and a new class of post-Newtonian gravitational-wave phase evolutions: the non-spinning equal-mass case
- Gravitational waves from compact binaries inspiralling along post-Newtonian accurate eccentric orbits: Data analysis implications