Transition from inspiral to plunge in precessing binaries of spinning black holes
arXiv:gr-qc/0508067 · doi:10.1103/PhysRevD.74.104005
Abstract
We investigate the non-adiabatic dynamics of spinning black hole binaries by using an analytical Hamiltonian completed with a radiation-reaction force, containing spin couplings, which matches the known rates of energy and angular momentum losses on quasi-circular orbits. We consider both a straightforward post-Newtonian-expanded Hamiltonian (including spin-dependent terms), and a version of the resummed post-Newtonian Hamiltonian defined by the Effective One-Body approach. We focus on the influence of spin terms onto the dynamics and waveforms. We evaluate the energy and angular momentum released during the final stage of inspiral and plunge. For an equal-mass binary the energy released between 40Hz and the frequency beyond which our analytical treatment becomes unreliable is found to be, when using the more reliable Effective One-Body dynamics: 0.6% M for anti-aligned maximally spinning black holes, 5% M for aligned maximally spinning black hole, and 1.8% M for non-spinning configurations. In confirmation of previous results, we find that, for all binaries considered, the dimensionless rotation parameter J/E^2 is always smaller than unity at the end of the inspiral, so that a Kerr black hole can form right after the inspiral phase. By matching a quasi-normal mode ringdown to the last reliable stages of the plunge, we construct complete waveforms approximately describing the gravitational wave signal emitted by the entire process of coalescence of precessing binaries of spinning black holes.
31 pages, 7 tables, and 13 figures
References in corpus (1)
Cited by in corpus (195)
- An improved effective-one-body model of spinning, nonprecessing binary black holes for the era of gravitational-wave astrophysics with advanced detectors
- Matching post-Newtonian and numerical relativity waveforms: systematic errors and a new phenomenological model for non-precessing black hole binaries
- Inspiral, merger and ring-down of equal-mass black-hole binaries
- High-accuracy comparison of numerical relativity simulations with post-Newtonian expansions
- Inspiral-merger-ringdown waveforms of spinning, precessing black-hole binaries in the effective-one-body formalism
- Higher-order spin effects in the amplitude and phase of gravitational waveforms emitted by inspiraling compact binaries: Ready-to-use gravitational waveforms
- Multipolar Effective-One-Body Waveforms for Precessing Binary Black Holes: Construction and Validation
- Time-domain effective-one-body gravitational waveforms for coalescing compact binaries with nonprecessing spins, tides and self-spin effects
- Toward faithful templates for non-spinning binary black holes using the effective-one-body approach
- Resonant Post-Newtonian Eccentricity Excitation in Hierarchical Three-body Systems
- Inspiral-merger-ringdown multipolar waveforms of nonspinning black-hole binaries using the effective-one-body formalism
- Towards a generic test of the strong field dynamics of general relativity using compact binary coalescence
- Prototype effective-one-body model for nonprecessing spinning inspiral-merger-ringdown waveforms
- 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
- Validating the effective-one-body model of spinning, precessing binary black holes against numerical relativity
- Towards models of gravitational waveforms from generic binaries: A simple approximate mapping between precessing and non-precessing inspiral signals
- On the final spin from the coalescence of two black holes
- An improved effective-one-body Hamiltonian for spinning black-hole binaries
- Estimating the final spin of a binary black hole coalescence
- Spin Flips and Precession in Black-Hole-Binary Mergers
- Effective one body approach to the dynamics of two spinning black holes with next-to-leading order spin-orbit coupling
- Frequency domain reduced order models for gravitational waves from aligned-spin compact binaries
- Constructing Gravitational Waves from Generic Spin-Precessing Compact Binary Inspirals
- A new effective-one-body description of coalescing nonprecessing spinning black-hole binaries
- Where post-Newtonian and numerical-relativity waveforms meet
- A waveform model for eccentric binary black hole based on effective-one-body-numerical-relativity (EOBNR) formalism
- Comparing Effective-One-Body gravitational waveforms to accurate numerical data
- A data-analysis driven comparison of analytic and numerical coalescing binary waveforms: nonspinning case
- Improved effective-one-body description of coalescing nonspinning black-hole binaries and its numerical-relativity completion
- A faithful analytical effective one body waveform model for spin-aligned, moderately eccentric, coalescing black hole binaries
- Tracking the precession of compact binaries from their gravitational-wave signal
- Accurate Effective-One-Body waveforms of inspiralling and coalescing black-hole binaries
- Energetics of two-body Hamiltonians in post-Minkowskian gravity
- SEOBNRv5PHM: Next generation of accurate and efficient multipolar precessing-spin effective-one-body waveforms for binary black holes
- An improved analysis of GW150914 using a fully spin-precessing waveform model
- Laying the foundation of the effective-one-body waveform models SEOBNRv5: improved accuracy and efficiency for spinning non-precessing binary black holes
- High-accuracy numerical simulation of black-hole binaries: Computation of the gravitational-wave energy flux and comparisons with post-Newtonian approximants
- Effective-one-body waveforms calibrated to numerical relativity simulations: coalescence of non-precessing, spinning, equal-mass black holes
- Gravitational Waves from Quasicircular Extreme Mass-Ratio Inspirals as Probes of Scalar-Tensor Theories
- 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
- Anatomy of the binary black hole recoil: A multipolar analysis
- Effective-one-body multipolar waveforms for eccentric binary black holes with non-precessing spins
- Error-analysis and comparison to analytical models of numerical waveforms produced by the NRAR Collaboration
- The final spin from the coalescence of aligned-spin black-hole binaries
- The Distribution of Recoil Velocities from Merging Black Holes
- Multi-timescale analysis of phase transitions in precessing black-hole binaries
- Binary black hole merger in the extreme mass ratio limit
- Mergers of nonspinning black-hole binaries: Gravitational radiation characteristics
- Zoom-Whirl Orbits in Black Hole Binaries
- Extending the effective-one-body Hamiltonian of black-hole binaries to include next-to-next-to-leading spin-orbit couplings
- Comparison of Numerical and Post-Newtonian Waveforms for Generic Precessing Black-Hole Binaries
- Eccentric binary black-hole mergers: The transition from inspiral to plunge in general relativity
- Reducing orbital eccentricity of precessing black-hole binaries
- Reducing eccentricity in black-hole binary evolutions with initial parameters from post-Newtonian inspiral
- Explicit symplectic approximation of nonseparable Hamiltonians: algorithm and long time performance
- The Missing Link: Bayesian Detection and Measurement of Intermediate-Mass Black-Hole Binaries
- Spin effects on gravitational waves from inspiraling compact binaries at second post-Newtonian order
- Extreme Mass-Ratio Inspirals in the Effective-One-Body Approach: Quasi-Circular, Equatorial Orbits around a Spinning Black Hole
- Modeling Extreme Mass Ratio Inspirals within the Effective-One-Body Approach
- Effective-one-body waveforms for precessing coalescing compact binaries with post-newtonian Twist
- Surrogate model for an aligned-spin effective one body waveform model of binary neutron star inspirals using Gaussian process regression
- Binary black hole merger in the extreme-mass-ratio limit: a multipolar analysis
- PRECESSION: Dynamics of spinning black-hole binaries with python
- Intermediate-mass-ratio black hole binaries: intertwining numerical and perturbative techniques
- Modeling multipolar gravitational-wave emission from small mass-ratio mergers
- IMRPhenomTP: A phenomenological time domain model for dominant quadrupole gravitational wave signal of coalescing binary black holes
- Radiation-reaction force and multipolar waveforms for eccentric, spin-aligned binaries in the effective-one-body formalism
- Effective one body Hamiltonian of two spinning black-holes with next-to-next-to-leading order spin-orbit coupling
- Energetics and phasing of nonprecessing spinning coalescing black hole binaries
- Relativistic Mergers of Supermassive Black Holes and their Electromagnetic Signatures
- Small mass plunging into a Kerr black hole: Anatomy of the inspiral-merger-ringdown waveforms
- A new analytic representation of the ringdown waveform of coalescing spinning black hole binaries
- The Effect of Massive Perturbers on Extreme Mass-Ratio Inspiral Waveforms
- Enhancing the SEOBNRv5 effective-one-body waveform model with second-order gravitational self-force fluxes
- A higher-multipole gravitational waveform model for an eccentric binary black holes based on the effective-one-body-numerical-relativity formalism
- Binary black hole coalescence in the extreme-mass-ratio limit: testing and improving the effective-one-body multipolar waveform
- Binary black hole coalescence in the large-mass-ratio limit: the hyperboloidal layer method and waveforms at null infinity
- Final spins from the merger of precessing binary black holes
- Numerical Relativity of Compact Binaries in the 21st Century
- Effect of calibration errors on Bayesian parameter estimation for gravitational wave signals from inspiral binary systems in the advanced detectors era
- Final spin of a coalescing black-hole binary: an Effective-One-Body approach
- A first survey of spinning eccentric black hole mergers: Numerical relativity simulations, hybrid waveforms, and parameter estimation
- Simulations of black-hole binaries with unequal masses or non-precessing spins: accuracy, physical properties, and comparison with post-Newtonian results
- Coalescence of black hole--neutron star binaries
- Symplectic structure of post-Newtonian Hamiltonian for spinning compact binaries
- Modelling the final state from binary black-hole coalescences
- Decoding mode-mixing in black-hole merger ringdown
- Dynamics of Black Hole Pairs I: Periodic Tables
- Template banks to search for low-mass binary black holes in advanced gravitational-wave detectors
- Systematic biases in parameter estimation of binary black-hole mergers
- Statistical studies of Spinning Black-Hole Binaries
- The NINJA-2 project: Detecting and characterizing gravitational waveforms modelled using numerical binary black hole simulations
- Exciting black hole modes via misaligned coalescences: I. Inspiral, transition, and plunge trajectories using a generalized Ori-Thorne procedure
- Towards a generic test of the strong field dynamics of general relativity using compact binary coalescence: Further investigations
- Accurate waveforms for eccentric, aligned-spin binary black holes: The multipolar effective-one-body model SEOBNRv5EHM
- Introductory lectures on the Effective One Body formalism
- Status of black-hole-binary simulations for gravitational-wave detection
- The SXS Collaboration's third catalog of binary black hole simulations
- Tests of general relativity in the nonlinear regime: a parametrized plunge-merger-ringdown gravitational waveform model
- Reliability of complete gravitational waveform models for compact binary coalescences
- Neutron star tidal disruption in mixed binaries: the imprint of the equation of state
- Symplectic Integration of Post-Newtonian Equations of Motion with Spin
- Length requirements for numerical-relativity waveforms
- Spin flips in generic black hole binaries
- Dynamics of Black Hole Pairs II: Spherical Orbits and the Homoclinic Limit of Zoom-Whirliness
- A Rosetta Stone for eccentric gravitational waveform models
- Flip-flopping binary black holes
- An efficient iterative method to reduce eccentricity in numerical-relativity simulations of compact binary inspiral
- Evidence for eccentricity in the population of binary black holes observed by LIGO-Virgo-KAGRA
- Impact of Numerical Relativity information on effective-one-body waveform models
- Post-Newtonian Quasicircular Initial Orbits for Numerical Relativity
- The Kepler equation for inspiralling compact binaries
- Effective-One-Body Numerical-Relativity waveform model for Eccentric spin-precessing binary black hole coalescence
- The General Relativistic Two Body Problem and the Effective One Body Formalism
- Inspiral-merger-ringdown waveforms in Einstein-scalar-Gauss-Bonnet gravity within the effective-one-body formalism
- Simple procedures to reduce eccentricity of binary black hole simulations
- Modelling gravitational waves from precessing black-hole binaries: Progress, challenges and prospects
- Constructing EOB dynamics with numerical energy flux for intermediate-mass-ratio inspirals
- Second post-Newtonian Lagrangian dynamics of spinning compact binaries
- Chaos in two black holes with next-to-leading order spin-spin interactions
- Mergers of black-hole binaries with aligned spins: Waveform characteristics
- Fourth post-Newtonian effective-one-body Hamiltonians with generic spins
- A new effective-one-body Hamiltonian with next-to-leading order spin-spin coupling
- Systematic Biases in Estimating the Properties of Black Holes Due to Inaccurate Gravitational-Wave Models
- Post-Minkowskian Theory Meets the Spinning Effective-One-Body Approach for Two-Body Scattering
- Inspiral of Generic Black Hole Binaries: Spin, Precession, and Eccentricity
- Assessing the Energetics of Spinning Binary Black Hole Systems
- Unstable flip-flopping spinning binary black holes
- Gravitational Waveforms for Precessing, Quasicircular Compact Binaries with Multiple Scale Analysis: Small Spin Expansion
- Exploring the Outer Limits of Numerical Relativity
- The Black Hole Remnant of Black Hole-Neutron Star Coalescing Binaries
- Numerical black hole initial data with low eccentricity based on post-Newtonian orbital parameters
- Third post-Newtonian dynamics for eccentric orbits and aligned spins in the effective-one-body waveform model SEOBNRv5EHM
- Gravitational-wave population inference at past time infinity
- Fast post-adiabatic waveforms in the time domain: Applications to compact binary coalescences in LIGO and Virgo
- Efficient multi-timescale dynamics of precessing black-hole binaries
- Self-force framework for transition-to-plunge waveforms
- Remodeling the Effective One-Body Formalism in Post-Minkowskian Gravity
- Self-consistent adiabatic inspiral and transition motion
- New self-consistent effective one-body theory for spinless binaries based on the post-Minkowskian approximation
- Self-consistent Effective-one-body theory for spinless binaries based on post-Minkowskian approximation I: Hamiltonian and decoupled equation for
- Gauss collocation methods for efficient structure preserving integration of post-Newtonian equations of motion
- Self-consistent effective-one-body theory for spinning binaries based on post-Minkowskian approximation
- Ineffectiveness of Padé resummation techniques in post-Newtonian approximations
- Effect of orbital eccentricity on the dynamics of precessing compact binaries
- Post-Newtonian templates for gravitational waves from compact binary inspirals
- A novel energy-conserving scheme for eight-dimensional systems
- Endpoint of the up-down instability in precessing binary black holes
- Impact of eccentricity and mean anomaly in numerical relativity mergers
- Wide nutation: binary black-hole spins repeatedly oscillating from full alignment to full anti-alignment
- Advances in Simulations of Generic Black-Hole Binaries
- Transition from inspiral to plunge into a highly spinning black hole
- Adding equatorial-asymmetric effects for spin-precessing binaries into the SEOBNRv5PHM waveform model
- Parametrized spin-precessing inspiral-merger-ringdown waveform model for tests of general relativity
- Hybrid black-hole binary initial data
- Gravitational Wave Beacons
- Testing the Black Hole No-hair Theorem with Galactic Center Stellar Orbits
- Energy-conserving integrator for conservative Hamiltonian systems with ten-dimensional phase space
- Frankenstein's Glue: Transition functions for approximate solutions
- Eccentricity estimation from initial data for Numerical Relativity Simulations
- Fast Evolution and Waveform Generator for Extreme-Mass-Ratio Inspirals in Equatorial-Circular Orbits
- Improving performance of SEOBNRv3 by 300x
- Accounting for numerical-relativity calibration uncertainty in gravitational-wave modeling and inference
- Real modes and null memory contributions in effective-one-body models
- Merger states and final states of black hole coalescences: a numerical-relativity-assisted effective-one-body approach
- Effective metric of spinless binaries with radiation-reaction effect up to fourth Post-Minkowskian order in effective-one-body theory
- Non-adiabatic dynamics of eccentric black-hole binaries in post-Newtonian theory
- Highly accurate simulations of asymmetric black-hole scattering and cross validation of effective-one-body models
- Initial Data and Eccentricity Reduction Toolkit for Binary Black Hole Numerical Relativity Waveforms
- Testing the Boundary-to-Bound Correspondence with Numerical Relativity
- Numerical relativity simulations in the era of the Einstein Telescope
- Modeling matter(s) in SEOBNRv5THM: Generating fast and accurate effective-one-body waveforms for spin-aligned binary neutron stars
- Binary Black Hole Coalescence in Semi-Analytic Puncture Evolution
- The general relativistic two body problem
- Solar system dynamics in general relativity
- Observable Signatures of EMRI Black Hole Binaries Embedded in Thin Accretion Disks
- Gravitational and electromagnetic emission by magnetized coalescing binary systems
- Success of the small mass ratio approximation during the final orbits of binary black hole simulations
- The Effective One Body description of the Two-Body problem
- Analytical model of precessing binaries using post-Newtonian theory in the extreme mass-ratio limit I: General Formalism
- Energy flux and waveform of gravitational wave generated by coalescing slow-spinning binary system in effective one-body theory
- Advancing the Effective-One-Body Framework in the Test-Mass Limit
- Dynamics for Super-Extremal Kerr Binary Systems at
- Black Hole and Neutron Star Binaries: Theoretical Challenges
- Asymptotically matched quasi-circular inspiral and transition-to-plunge in the small mass ratio expansion
- Generalized flow-composed symplectic methods for post-Newtonian Hamiltonian systems
- A Mass-Shell Model of Compact Binary Coalescence
- Learning Post-Newtonian Corrections from Numerical Relativity
- Comparison of Post-Newtonian and Numerical Evolutions of Black-Hole Binaries
- Effective-one-body formalism for leading-order radiative effects in the post-linear framework
- GPU accelerated manifold correction method for spinning compact binaries
- Uncertainty in predicting the stochastic gravitational wave background from compact binary coalescences
- Comparing a Compact-Binary Mass-Shell Model with Select Observed Gravitational Waves