Accuracy Issues for Numerical Waveforms
arXiv:1208.5494 · doi:10.1103/PhysRevD.86.104056
Abstract
We study the convergence properties of our implementation of the 'moving punctures' approach at very high resolutions for an equal-mass, non-spinning, black-hole binary. We find convergence of the Hamiltonian constraint on the horizons and the L2 norm of the Hamiltonian constraint in the bulk for sixth and eighth-order finite difference implementations. The momentum constraint is more sensitive, and its L2 norm shows clear convergence for a system with consistent sixth-order finite differencing, while the momentum and BSSN constraints on the horizons show convergence for both sixth and eighth-order systems. We analyze the gravitational waveform error from the late-inspiral, merger, and ringdown. We find that using several lower-order techniques for increasing the speed of numerical relativity simulations actually lead to apparently non-convergent errors. Even when using standard high-accuracy techniques, rather than seeing clean convergence, where the waveform phase is a monotonic function of grid resolution, we find that the phase tends to oscillate with resolution, possibly due to stochastic errors induced by grid refinement boundaries. Our results seem to indicate that one can obtain gravitational waveform phases to within 0.05 rad. (and possibly as small as 0.015 rad.), while the amplitude error can be reduced to 0.1%. We then compare with the waveforms obtained using the cZ4 formalism. We find that the cZ4 waveforms have larger truncation errors for a given resolution, but the Richardson extrapolation phase of the cZ4 and BSSN waveforms agree to within 0.01 rad., even during the ringdown.
version accepted to PRD
References in corpus (36)
- Large Merger Recoils and Spin Flips From Generic Black-Hole Binaries
- Total recoil: the maximum kick from nonspinning black-hole binary inspiral
- Calibration of Moving Puncture Simulations
- Supermassive recoil velocities for binary black-hole mergers with antialigned spins
- Binary Neutron Star Mergers: Dependence on the Nuclear Equation of State
- How to move a black hole without excision: gauge conditions for the numerical evolution of a moving puncture
- Solving Einstein's Equations With Dual Coordinate Frames
- Getting a kick out of numerical relativity
- Recoil velocities from equal-mass binary black-hole mergers: a systematic investigation of spin-orbit aligned configurations
- Exploring black hole superkicks
- Fully General Relativistic Simulations of Black Hole-Neutron Star Mergers
- High-spin binary black hole mergers
- Evolving black hole-neutron star binaries in general relativity using pseudospectral and finite difference methods
- Relativistic Simulations of Black Hole-Neutron Star Mergers: Effects of black-hole spin
- Anatomy of the binary black hole recoil: A multipolar analysis
- Modeling kicks from the merger of non-precessing black-hole binaries
- Binary black hole mergers: large kicks for generic spin orientations
- Binary Black Holes: Spin Dynamics and Gravitational Recoil
- Orbital Evolution of Extreme-Mass-Ratio Black-Hole Binaries with Numerical Relativity
- Foundations of multiple black hole evolutions
- Superkicks in Hyperbolic Encounters of Binary Black Holes
- Modeling gravitational recoil from precessing highly-spinning unequal-mass black-hole binaries
- Time Step Size Limitation Introduced by the BSSN Gamma Driver
- Numerical relativity for D dimensional space-times: head-on collisions of black holes and gravitational wave extraction
- Implementation of standard testbeds for numerical relativity
- Reducing spurious gravitational radiation in binary-black-hole simulations by using conformally curved initial data
- Modeling maximum astrophysical gravitational recoil velocities
- Close encounters of three black holes
- Black hole puncture initial data with realistic gravitational wave content
- Testing the Accuracy and Stability of Spectral Methods in Numerical Relativity
- Beyond the Bowen-York extrinsic curvature for spinning black holes
- Recoiling from a kick in the head-on collision of spinning black holes
- Modeling Gravitational Recoil Using Numerical Relativity
- Multipole Analysis of Kicks in Collision of Binary Black Holes
- Seeking for toroidal event horizons from initially stationary BH configurations
- Are different approaches to constructing initial data for binary black hole simulations of the same astrophysical situation equivalent?
Cited by in corpus (4)
- The Overlap of Numerical Relativity, Perturbation Theory and Post-Newtonian Theory in the Binary Black Hole Problem
- Initial data for binary neutron stars with adjustable eccentricity
- Improved Moving Puncture Gauge Conditions for Compact Binary Evolutions
- Toward a Consistent Framework for High Order Mesh Refinement Schemes in Numerical Relativity