Large Eddy Simulations of Magnetized Mergers of Neutron Stars with Neutrinos
arXiv:2204.02721 · doi:10.1103/PhysRevD.105.103020
Abstract
Neutron star mergers are very violent events involving extreme physical processes: dynamic, strong-field gravity, large magnetic field, very hot, dense matter, and the copious production of neutrinos. Accurate modeling of such a system and its associated multi-messenger signals, such as gravitational waves, short gamma ray burst, and kilonova, requires the inclusion of all these processes, and is increasingly important in light of advancements in multi-messenger astronomy generally, and in gravitational wave astronomy in particular (such as the development of third-generation detectors). Several general relativistic codes have been incorporating some of these elements with different levels of realism. Here, we extend our code MHDuet, which can perform large eddy simulations of magnetohydrodynamics to help capture the magnetic field amplification during the merger, and to allow for realistic equations of state and neutrino cooling via a leakage scheme. We perform several tests involving isolated and binary neutron stars demonstrating the accuracy of the code.
20 pages, 11 figures. Modified to match the accepted version of the paper
References in corpus (13)
- GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral
- Multi-messenger Observations of a Binary Neutron Star Merger
- Stability of Relativistic Jets from Rotating, Accreting Black Holes via Fully Three-Dimensional Magnetohydrodynamic Simulations
- Calibration of Moving Puncture Simulations
- How to move a black hole without excision: gauge conditions for the numerical evolution of a moving puncture
- The Dynamics of Binary Neutron Star Mergers and of GW170817
- Constraining the Neutron Star Mass-Radius Relation and Dense Matter Equation of State with NICER. II. Emission from Hot Spots on a Rapidly Rotating Neutron Star
- Extraction of Gravitational Waves in Numerical Relativity
- A new general relativistic magnetohydrodynamics code for dynamical spacetimes
- Jet Launching from Binary Neutron Star Mergers: Incorporating Neutrino Transport and Magnetic Fields
- Linear high-resolution schemes for hyperbolic conservation laws: TVB numerical evidence
- Toward a Consistent Framework for High Order Mesh Refinement Schemes in Numerical Relativity
- Spritz: General Relativistic Magnetohydrodynamics with Neutrinos
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- Neutron stars and the dense matter equation of state: from microscopic theory to macroscopic observations
- Impact of systematic nuclear uncertainties on composition and decay heat of dynamical and disk ejecta in compact binary mergers
- Quantifying uncertainties in general relativistic magnetohydrodynamic codes
- Turbulence modelling in neutron star merger simulations
- The Guided Moments formalism: a new efficient full-neutrino treatment for astrophysical simulations
- Performance-Portable Binary Neutron Star Mergers with AthenaK
- Large Eddy Simulations of Magnetized Mergers of Black Holes and Neutron Stars
- On the Role of Muons in Binary Neutron Star Mergers: First Simulations
- Secular Outflows from Long-Lived Neutron Star Merger Remnants
- AsterX: a new open-source GPU-accelerated GRMHD code for dynamical spacetimes
- Global high-order numerical schemes for the time evolution of the general relativistic radiation magneto-hydrodynamics equations
- Assessment of a new sub-grid model for magnetohydrodynamical turbulence. II. Kelvin-Helmholtz instability
- Covariant approach to relativistic large-eddy simulations: Lagrangian filtering
- Higher-level large-eddy filtering strategy for general relativistic fluid simulations
- Do black holes remember what they are made of?
- General relativistic magnetohydrodynamics simulations for binary neutron star mergers