Extending the infrastructure of the BAM code towards resistive general-relativistic magnetohydrodynamics: tests and first applications
Matthew Beaudoin, Maximilano Ujevic, Ramon Jaeger, Anna Neuweiler, Henrique Gieg, Kenta Kiuchi, Tim Dietrich
astro-ph.HE, gr-qc
Submitted: 2026-07-13
Comments: 27 pages, 28 figures
License: http://creativecommons.org/licenses/by-sa/4.0/
The gist: Many astrophysical phenomena, including pulsars and short gamma-ray bursts, are associated with the extremely strong magnetic fields present in neutron stars and neutron star mergers.
Terminology
Abstract
Many astrophysical phenomena, including pulsars and short gamma-ray bursts, are associated with the extremely strong magnetic fields present in neutron stars and neutron star mergers. While the ideal magnetohydrodynamic approximation, which assumes infinite conductivity, provides an excellent description of the neutron-star interior, it cannot capture non-ideal processes such as Ohmic dissipation and magnetic reconnection. To overcome this limitation, we present an extension of the numerical-relativity code BAM incorporating a resistive general-relativistic magnetohydrodynamic (GRMHD) description. We validate the new implementation through an extensive suite of special-relativistic magnetohydrodynamic benchmark tests and by performing stable simulations of isolated and binary neutron star systems. For the latter, we investigate the impact of finite conductivity on magnetic-field amplification, mass ejection, and non-ideal GRMHD effects. In particular, we find that the component of the electric field parallel to the magnetic field, which is zero in the ideal case, can reach up to 10% of the total electric field strength. This highlights the potential importance of non-ideal effects for accurately modeling the long-term evolution of post-merger remnants, particularly in low-density regions. Although the present study is restricted to simplified piecewise-polytropic equations of state, it demonstrates the capabilities of the new resistive GRMHD framework and paves the way for future investigations employing more realistic microphysics.
Sources
- GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral
- Estimating the Contribution of Dynamical Ejecta in the Kilonova Associated with GW170817
- Optical emission from a kilonova following a gravitational-wave-detected neutron-star merger
- Origin of the heavy elements in binary neutron-star mergers from a gravitational wave event
- An Ordinary Short Gamma-Ray Burst with Extraordinary Implications: Fermi-GBM Detection of GRB 170817A
- INTEGRAL Detection of the First Prompt Gamma-Ray Signal Coincident with the Gravitational Wave Event GW170817
- Binary neutron star mergers: a jet engine for short gamma-ray bursts
- A magnetar engine for short GRBs and kilonovae
- Binary and Millisecond Pulsars
- Formation of Double Neutron Star Systems
- Robustness of Magnetic Field Amplification in Neutron Star Mergers
- Turbulent Dynamo Action in Binary Neutron Star Mergers
- The role of turbulence and winding in the development of large-scale, strong magnetic fields in long-lived remnants of binary neutron star mergers
- Impact of a mean field dynamo on neutron star mergers leading to magnetar remnants
- Tayler-Spruit dynamo in binary neutron star merger remnants
- GR-Athena++: General-relativistic magnetohydrodynamics simulations of neutron star spacetimes
- Magnetic Field Configurations in Binary Neutron Star Mergers I: Post-merger Remnant and Disk
- On the impact of neutrinos on the launching of relativistic jets from "magnetars" produced in neutron-star mergers
- Reaction rates and transport in neutron stars
- A resistive MHD module in the GPU-accelerated GRMHD code GRaM-X
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