Dynamic Fisheye Grids for Binary Black Holes Simulations
arXiv:1309.2960 · doi:10.1088/0264-9381/31/6/065013
Abstract
We present a new warped gridding scheme adapted to simulating gas dynamics in binary black hole spacetimes. The grid concentrates grid points in the vicinity of each black hole to resolve the smaller scale structures there, and rarefies grid points away from each black hole to keep the overall problem size at a practical level. In this respect, our system can be thought of as a "double" version of the fisheye coordinate system, used before in numerical relativity codes for evolving binary black holes. The gridding scheme is constructed as a mapping between a uniform coordinate system--in which the equations of motion are solved--to the distorted system representing the spatial locations of our grid points. Since we are motivated to eventually use this system for circumbinary disc calculations, we demonstrate how the distorted system can be constructed to asymptote to the typical spherical polar coordinate system, amenable to efficiently simulating orbiting gas flows about central objects with little numerical diffusion. We discuss its implementation in the Harm3d code, tailored to evolve the magnetohydrodynamics equations in curved spacetimes. We evaluate the performance of the system's implementation in Harm3d with a series of tests, such as the advected magnetic field loop test, magnetized Bondi accretion, and evolutions of hydrodynamic discs about a single black hole and about a binary black hole. Like we have done with Harm3d, this gridding scheme can be implemented in other unigrid codes as a (possibly) simpler alternative to adaptive mesh refinement.
35 pages, 13 figures. Matches published version in CQG
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- Quasi-Periodic Behavior of Mini-Disks in Binary Black Holes Approaching Merger
- Relativistic Dynamics and Mass Exchange in Binary Black Hole Mini-Disks
- Numerical Relativity of Compact Binaries in the 21st Century
- The numerical relativity breakthrough for binary black holes
- Quasi-Periodicity of Supermassive Binary Black Hole Accretion Approaching Merger
- Mini-disk accretion onto spinning black hole binaries: quasi-periodicities and outflows
- Iharm3D: Vectorized General Relativistic Magnetohydrodynamics
- Puncture Initial Data for Black-Hole Binaries with High Spins and High Boosts
- Superposed metric for spinning black hole binaries approaching merger
- Resolving the relative influence of strong field spacetime dynamics and MHD on circumbinary disk physics
- HARM3D+NUC: A new method for simulating the post-merger phase of binary neutron star mergers with GRMHD, tabulated EOS and neutrino leakage
- Inspiralling, Non-Precessing, Spinning Black Hole Binary Spacetime via Asymptotic Matching
- Handing off the outcome of binary neutron star mergers for accurate and long-term post-merger simulations
- Inspiraling black-hole binary spacetimes: Challenges in transitioning from analytical to numerical techniques
- PATOKA: Simulating Electromagnetic Observables of Black Hole Accretion