Beyond GRMHD: A Robust Numerical Scheme for Extended, Non-Ideal General Relativistic Multifluid Simulations
Jonathan Gorard, James Juno, Ammar Hakim

TL;DR
This paper introduces a robust numerical scheme for a generalized relativistic multifluid model that overcomes limitations of traditional GRMHD, enabling stable simulations of high-energy astrophysical phenomena with large Lorentz factors and strong magnetic fields.
Contribution
The paper develops a new multifluid model and numerical scheme that incorporate non-ideal effects and improve robustness over GRMHD in extreme conditions.
Findings
Able to simulate larger Lorentz factors and higher magnetizations
Maintains accuracy and stability in high-energy regimes
Validated against existing GRMHD schemes
Abstract
The equations of general relativistic magnetohydrodynamics (GRMHD) have become the standard mathematical framework for modeling high-energy plasmas in curved spacetimes. However, the fragility of the primitive variable reconstruction operation in GRMHD, as well as the difficulties in maintaining strong hyperbolicity of the equations, sharply limit the applicability of the GRMHD model in scenarios involving large Lorentz factors and high magnetizations, such as around neutron stars. Non-ideal effects, such as electron inertia and Hall terms, are also neglected, and the absence of an explicitly evolved electric field precludes the self-consistent modeling of the strong poloidal fields found around spinning black holes, which are known to be crucial for jet formation. Here, we present a general relativistic multifluid model which strictly generalizes the GRMHD equations, consisting of an…
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