Residual eccentricity of inspiralling orbits at the gravitational-wave detection threshold: Accurate estimates using post-Newtonian theory
arXiv:2108.12210 · doi:10.1103/PhysRevD.104.104023
Abstract
We use equations of motion containing gravitational radiation-reaction terms through 4.5 post-Newtonian order to calculate the late-time eccentricities of inspiraling binary systems of non-spinning compact bodies as they cross the detection threshold of ground-based gravitational-wave interferometers. The initial eccentricities can be as large as 0.999. We find that the final eccentricities are systematically smaller than those predicted by the leading quadrupole approximation, by as much as 30 percent for a 300 solar mass binary crossing the LIGO/Virgo detection threshold at 10 Hz, or eight percent smaller for a 60 solar mass binary. We find an analytic formula for the late-time eccentricity that accurately accounts for the higher-order post-Newtonian effects, generalizing a formula derived by Peters and Mathews in the 1960s. We also find that the final eccentricities are independent of the ratio of the masses of the two compact bodies to better than two percent.
13 pages, 9 figures, version aligned with published paper
References in corpus (16)
- Gravitational waves from scattering of stellar-mass black holes in galactic nuclei
- Two timescale analysis of extreme mass ratio inspirals in Kerr. I. Orbital Motion
- Lidov-Kozai Cycles with Gravitational Radiation: Merging Black Holes in Isolated Triple Systems
- A waveform model for eccentric binary black hole based on effective-one-body-numerical-relativity (EOBNR) formalism
- Eccentric, nonspinning, inspiral, Gaussian-process merger approximant for the detection and characterization of eccentric binary black hole mergers
- Accurate and efficient waveforms for compact binaries on eccentric orbits
- Complete waveform model for compact binaries on eccentric orbits
- Foundations of an effective-one-body model for coalescing binaries on eccentric orbits
- Validating the Effective-One-Body Numerical-Relativity Waveform Models for Spin-aligned Binary Black Holes along Eccentric Orbits
- Induced Ellipticity for Inspiraling Binary Systems
- Ready-to-use Fourier domain templates for compact binaries inspiraling along moderately eccentric orbits
- Calculation of radiation reaction effect on orbital parameters in Kerr spacetime
- Relativistic orbits around spinning supermassive black holes. Secular evolution to 4.5 post-Newtonian order
- The detectability of eccentric compact binary coalescences with advanced gravitational-wave detectors
- Higher-order effects in the dynamics of hierarchical triple systems. Quadrupole-squared terms
- Full-analytic frequency-domain 1pN-accurate gravitational wave forms from eccentric compact binaries
Cited by in corpus (11)
- GWTC-3: Compact Binary Coalescences Observed by LIGO and Virgo During the Second Part of the Third Observing Run
- Compact object mergers: exploring uncertainties from stellar and binary evolution with SEVN
- Adiabatic waveforms from extreme-mass-ratio inspirals: an analytical approach
- Inferring eccentricity evolution from observations of coalescing binary black holes
- New Avenue for Accurate Analytical Waveforms and Fluxes for Eccentric Compact Binaries
- Strong-field scattering of two spinning black holes: Numerics versus Analytics
- Gravitational waves from eccentric extreme mass-ratio inspirals as probes of scalar fields
- Frequency space derivation of linear and non-linear memory gravitational wave signals from eccentric binary orbits
- An improved numerical fit to the peak harmonic gravitational wave frequency emitted by an eccentric binary
- Tensor-Multi-Scalar Gravity: Equations of Motion to 2.5 post-Newtonian Order
- Impact of dipolar magnetic fields on gravitational wave strain by galactic binaries