Fundamental frequencies and resonances from eccentric and precessing binary black hole inspirals
arXiv:1611.03418 · doi:10.1088/1361-6382/aa66f4
Abstract
Binary black holes which are both eccentric and undergo precession remain unexplored in numerical simulations. We present simulations of such systems which cover about 50 orbits at comparatively high mass ratios 5 and 7. The configurations correspond to the generic motion of a nonspinning body in a Kerr spacetime, and are chosen to study the transition from finite mass-ratio inspirals to point particle motion in Kerr. We develop techniques to extract analogs of the three fundamental frequencies of Kerr geodesics, compare our frequencies to those of Kerr, and show that the differences are consistent with self-force corrections entering at first order in mass ratio. This analysis also locates orbital resonances where the ratios of our frequencies take rational values. At the considered mass ratios, the binaries pass through resonances in one to two resonant cycles, and we find no discernible effects on the orbital evolution. We also compute the decay of eccentricity during the inspiral and find good agreement with the leading order post-Newtonian prediction.
40 pages, 15 figures Revised in response to reviewer comments. Figure 12, which previously had been incorrectly computed, is now correct
References in corpus (29)
- GW151226: Observation of Gravitational Waves from a 22-Solar-Mass Binary Black Hole Coalescence
- 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
- High-accuracy waveforms for binary black hole inspiral, merger, and ringdown
- The Dynamical Evolution of Stellar Black Holes in Globular Clusters
- Validating the effective-one-body model of spinning, precessing binary black holes against numerical relativity
- Georgia Tech Catalog of Gravitational Waveforms
- Upper limits on the rates of binary neutron star and neutron-star--black-hole mergers from Advanced LIGO's first observing run
- Binary-black-hole initial data with nearly-extremal spins
- High-accuracy numerical simulation of black-hole binaries: Computation of the gravitational-wave energy flux and comparisons with post-Newtonian approximants
- The Total Merger Rate of Compact Object Binaries In The Local Universe
- Circular orbits and spin in black-hole initial data
- Complete waveform model for compact binaries on eccentric orbits
- Circularization and Final Spin in Eccentric Binary Black Hole Inspirals
- Eccentric binary black-hole mergers: The transition from inspiral to plunge in general relativity
- Stable radiation-controlling boundary conditions for the generalized harmonic Einstein equations
- Testing outer boundary treatments for the Einstein equations
- Gravitational Self-Force Correction to the Innermost Stable Circular Equatorial Orbit of a Kerr Black Hole
- An Improved Gauge Driver for the Generalized Harmonic Einstein System
- Measuring orbital eccentricity and periastron advance in quasi-circular black hole simulations
- Gravitational self-force on eccentric equatorial orbits around a Kerr black hole
- Self-force corrections to the periapsis advance around a spinning black hole
- Importance of transient resonances in extreme-mass-ratio inspirals
- Completion of metric reconstruction for a particle orbiting a Kerr black hole
- Comparison Between Self-Force and Post-Newtonian Dynamics: Beyond Circular Orbits
- Resonantly enhanced kicks from equatorial small mass-ratio inspirals
- Eccentric mergers of black holes with spinning neutron stars
- Redshift factor and the first law of binary black hole mechanics in numerical simulations
- Resonant recoil in extreme mass ratio binary black hole mergers
Cited by in corpus (22)
- The SXS Collaboration catalog of binary black hole simulations
- Self-force and radiation reaction in general relativity
- Multipolar Effective-One-Body Waveforms for Precessing Binary Black Holes: Construction and Validation
- 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
- Effective-one-body multipolar waveforms for eccentric binary black holes with non-precessing spins
- Foundations of an effective-one-body model for coalescing binaries on eccentric orbits
- The Gravitational-Wave Physics II: Progress
- The Science of the Einstein Telescope
- A Surrogate Model for Gravitational Wave Signals from Comparable- to Large- Mass-Ratio Black Hole Binaries
- Adiabatic waveforms from extreme-mass-ratio inspirals: an analytical approach
- Defining eccentricity for gravitational wave astronomy
- Testing spacetime symmetry through gravitational waves from extreme-mass-ratio inspirals
- Accuracy of Estimating Highly Eccentric Binary Black Hole Parameters with Gravitational-Wave Detections
- Hamilton-Jacobi equation for spinning particles near black holes
- Eccentric binary black holes: Comparing numerical relativity and small mass-ratio perturbation theory
- Inferring eccentricity evolution from observations of coalescing binary black holes
- Boundary to bound dictionary for generic Kerr orbits
- Characterization of numerical relativity waveforms of eccentric binary black hole mergers
- Impact of eccentricity and mean anomaly in numerical relativity mergers
- Learning orbital dynamics of binary black hole systems from gravitational wave measurements
- Redshift factor and the small mass-ratio limit in binary black hole simulations