Inspiraling black-hole binary spacetimes: Challenges in transitioning from analytical to numerical techniques
arXiv:1504.00286 · doi:10.1103/PhysRevD.93.124072
Abstract
We explore how a recently developed analytical black-hole binary spacetime can be extended using numerical simulations to go beyond the slow-inspiral phase. The analytic spacetime solves the Einstein field equations approximately, with the approximation error becoming progressively smaller the more separated the binary. To continue the spacetime beyond the slow-inspiral phase, we need to transition. Such a transition was previously explored at smaller separations. Here, we perform this transition at a separation of D=20M (large enough that the analytical metric is expected to be accurate), and evolve for six orbits. We find that small constraint violations can have large dynamical effects, but these can be removed by using a constraint-damping system like the conformal covariant formulation of the Z4 system. We find agreement between the subsequent numerical spacetime and the predictions of post-Newtonian theory for the waveform and inspiral rate that is within the post-Newtonian truncation error.
Accepted for publication in PRD, 14 pages, 21 figures, revtex 4-1
References in corpus (17)
- Toward faithful templates for non-spinning binary black holes using the effective-one-body approach
- Effective-one-body waveforms calibrated to numerical relativity simulations: coalescence of non-spinning, equal-mass black holes
- Reducing orbital eccentricity in binary black hole simulations
- High-spin binary black hole mergers
- Effective-one-body waveforms calibrated to numerical relativity simulations: coalescence of non-precessing, spinning, equal-mass black holes
- High-accuracy numerical simulation of black-hole binaries: Computation of the gravitational-wave energy flux and comparisons with post-Newtonian approximants
- The third and a half post-Newtonian gravitational wave quadrupole mode for quasi-circular inspiralling compact binaries
- Comparison of Numerical and Post-Newtonian Waveforms for Generic Precessing Black-Hole Binaries
- Numerical relativity reaching into post-Newtonian territory: a compact-object binary simulation spanning 350 gravitational-wave cycles
- Filling the holes: Evolving excised binary black hole initial data with puncture techniques
- Excision without excision: the relativistic turducken
- Perturbative extraction of gravitational waveforms generated with Numerical Relativity
- Black hole puncture initial data with realistic gravitational wave content
- Flip-flopping binary black holes
- Resolving the relative influence of strong field spacetime dynamics and MHD on circumbinary disk physics
- A note on gravitational wave extraction from binary simulations
- New frontiers in Numerical Relativity
Cited by in corpus (3)
- Mini-disk accretion onto spinning black hole binaries: quasi-periodicities and outflows
- Relativistic gas accretion onto supermassive black Hole binaries from inspiral through merger
- Comparing an analytical spacetime metric for a merging binary to a fully nonlinear numerical evolution using curvature scalars