Three-dimensional simulations of distorted black holes. I. Comparison with axisymmetric results
arXiv:gr-qc/9805099 · doi:10.1103/PhysRevD.59.064019
Abstract
We consider the numerical evolution of black hole initial data sets, consisting of single black holes distorted by strong gravitational waves, with a full 3D, nonlinear evolution code. These data sets mimic the late stages of coalescing black holes. We compare various aspects of the evolution of axisymmetric initial data sets, obtained with this 3D code, to results obtained from a well established axisymmetric code. In both codes we examine and compare the behavior of metric functions, apparent horizon properties, and waveforms, and show that these dynamic black holes can be accurately evolved in 3D. In particular we show that with present computational resources and techniques, the process of excitation and ringdown of the black hole can be evolved, and one can now extract accurately the gravitational waves emitted from the 3D Cartesian metric functions, even when they carry away only a small fraction () of the rest mass energy of the system. Waveforms for both the and the much more difficult and modes are computed and compared with axisymmetric calculations. In addition to exploring the physics of distorted black hole data sets, and showing the extent to which the waves can be accurately extracted, these results also provide important testbeds for all fully nonlinear numerical codes designed to evolve black hole spacetimes in 3D, whether they use singularity avoiding slicings, apparent horizon boundary conditions, or other evolution methods.
16 pages, 12 figures. Submitted to Phys. Rev. D
References in corpus (6)
- Measuring gravitational waves from binary black hole coalescences: II. the waves' information and its extraction, with and without templates
- Boosted three-dimensional black-hole evolutions with singularity excision
- First order hyperbolic formalism for Numerical Relativity
- Stable characteristic evolution of generic 3-dimensional single-black-hole spacetimes
- Numerical Evolution of Black Holes with a Hyperbolic Formulation of General Relativity
- Adaptive computation of gravitational waves from black hole interactions
Cited by in corpus (24)
- Black-hole binaries, gravitational waves, and numerical relativity
- Recoil velocities from equal-mass binary black-hole mergers: a systematic investigation of spin-orbit aligned configurations
- Three-dimensional general relativistic hydrodynamics II: long-term dynamics of single relativistic stars
- Gauge-invariant Non-spherical Metric Perturbations of Schwarzschild Black-Hole Spacetimes
- Black Hole Excision for Dynamic Black Holes
- Extraction of Gravitational Waves in Numerical Relativity
- Collapse of differentially rotating neutron stars and cosmic censorship
- Characteristic extraction in numerical relativity: binary black hole merger waveforms at null infinity
- Gravitational Wave Extraction in Simulations of Rotating Stellar Core Collapse
- Numerical evolutions of a black hole-neutron star system in full General Relativity: I. Head-on collision
- The numerical relativity breakthrough for binary black holes
- Gravitational-Wave Emission from Rotating Gravitational Collapse in three Dimensions
- Test-beds and applications for apparent horizon finders in numerical relativity
- Black hole head-on collisions and gravitational waves with fixed mesh-refinement and dynamic singularity excision
- Gravitational-Wave Extraction from Neutron Star Oscillations: comparing linear and nonlinear techniques
- How far away is far enough for extracting numerical waveforms, and how much do they depend on the extraction method?
- Evolution of 3D Boson Stars with Waveform Extraction
- Gravitational wave extraction based on Cauchy-characteristic extraction and characteristic evolution
- Initial data for Einstein's equations with superposed gravitational waves
- New approach to calculating the News
- Non-linear harmonic generation in finite amplitude black hole oscillations
- Numerical Relativity in 3+1 Dimensions
- Dark Energy Gravitational Wave Observations and Ice Age Periodicity
- Gravitational Wave Formation from the Collapse of Dark Energy Field Configurations