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GRMHD large eddy simulations with gradient subgrid-scale model

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arxiv 2004.00870 v1 pith:7DWM5NQI submitted 2020-04-02 gr-qc astro-ph.HE

classification gr-qcastro-ph.HE
keywords modelgradientrelativisticscenariossimulationssubgrid-scaleapproachastrophysical
verification ladder T0 review T1 audit T2 compute T3 formal
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The detection of binary neutron star mergers represents one of the most important astrophysical discoveries of the recent years. Due to the extreme matter and gravity conditions and the rich dynamics developed, it becomes a tremendous challenge to accurately simulate numerically all the scales present during the collision. Here we present how to study such systems by using large eddy simulations with a self-consistent subgrid-scale gradient model, that we generalized to the special relativistic case in a previous work and now extend to the general relativistic case. Adapted from nonrelativistic scenarios, the so-called gradient model allows to capture part of the effects of the hidden dynamics on the resolved scales, by means of a physically-agnostic, mathematically-based Taylor expansion of the nonlinear terms in the conservative evolution equations' fluxes. We assess the validity of this approach in bounding-box simulations of the magnetic Kelvin-Helmholtz instability. Several resolutions and a broad range of scenarios are considered in order to carefully test the performance of the model under three crucial aspects: (i) highly curved backgrounds, (ii) jumps on the fluid density profiles and (iii) strong shocks. The results suggest our extension of the gradient subgrid-scale model to general relativistic magnetohydrodynamics is a promising approach for studying binary neutron stars mergers, and potentially to other relevant astrophysical scenarios.

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Cited by 3 Pith papers

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    astro-ph.HE 2026-07 conditional novelty 6.0 of 10

    Saturated MRI turbulence in differentially rotating neutron stars yields ℓ_mix ≈ (0.01–0.1) λ_MRI, largely independent of density, so standard GRLES mixing-length prescriptions overestimate transport by about an order...

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    SACRA-2D is a new axisymmetric relativistic hydrodynamics code with the HLLC solver and adaptive mesh refinement, validated by benchmarks showing improved accuracy over the TVDLF solver.

  3. Implications of Magnetic Flux-Disk Mass Correlation in Black Hole-Neutron Star Mergers for GRB sub-populations

    astro-ph.HE 2025-01 conditional novelty 6.0 of 10

    BH-NS merger simulations find a nearly universal dimensionless magnetic flux on the black hole across two decades of disk mass, which, extrapolated with prior long-term runs, implies all BH-NS mergers produce long-dur...

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