Improved Moving-Puncture Techniques for Compact Binary Simulations
arXiv:2404.01137 · doi:10.1103/PhysRevD.110.064045
Abstract
To fully unlock the scientific potential of upcoming gravitational wave (GW) interferometers, numerical relativity (NR) simulation accuracy will need to be greatly enhanced. We present three infrastructure-agnostic improvements to the moving-puncture approach for binary black hole (BBH) simulations, aimed at greatly reducing constraint violation and improving GW predictions. Although these improvements were developed within the highly efficient NR code BlackHoles@Home, we demonstrate their effectiveness in the widely-adopted Einstein Toolkit/Carpet AMR framework. Our improvements include a modified Kreiss-Oliger dissipation prescription, a Hamiltonian-constraint-damping adjustment to the BSSN equations, and an extra term to the 1+log lapse evolution equation that slows the development of the sharp lapse feature, which dominates numerical errors in BBH simulations. With minimal increase in computational cost, these improvements greatly reduce GW noise, enabling the extraction of high-order GW modes previously obscured by numerical noise. They also improve convergence properties near and inside the convergent regime, reduce Hamiltonian (momentum) constraint violations in the strong-field region by roughly two (three) orders of magnitude, and in the GW-extraction zone by five (two) orders of magnitude. To promote community adoption, we have open-sourced the improved Einstein Toolkit thorn BaikalVacuum used in this work. Although our focus is on BBH evolutions and the BSSN formulation, these improvements may also benefit compact binary simulations involving matter and other formulations, a focus for future investigations.
17 pages, 15 figures; matches published version
References in corpus (7)
- How to move a black hole without excision: gauge conditions for the numerical evolution of a moving puncture
- High-spin binary black hole mergers
- Binary black hole mergers: large kicks for generic spin orientations
- Covariant formulations of BSSN and the standard gauge
- Evolution of near-extremal-spin black holes using the moving puncture technique
- Probing the puncture for black hole simulations
- Improved Moving Puncture Gauge Conditions for Compact Binary Evolutions
Cited by in corpus (9)
- The Science of the Einstein Telescope
- Parameter control for eccentric, precessing binary black hole simulations with SpEC
- Exploring the Dynamics of General Relativistic Binary-Single and Binary-Binary Encounters of Black Holes
- Black hole accretion of scalar clouds with spontaneous symmetry breaking
- Nyquist-resolving gravitational waves via orbital frequency-based refinement
- Stable long-term evolution in numerical relativity
- BHaHAHA: A Fast, Robust Apparent Horizon Finder Library for Numerical Relativity
- superB/NRPy: Scalable, Task-Based Numerical Relativity for 3G Gravitational Wave Science
- Gravitational-Wave Signatures of Massive Black Hole Formation