Long-term GRMHD simulation of magnetic field in isolated neutron stars
arXiv:2108.11858 · doi:10.1093/mnras/stac353
Abstract
Strong magnetic fields play an important role in powering the emission of neutron stars. Nevertheless a full understanding of the interior configuration of the field remains elusive. In this work, we present General Relativistic MagnetoHydroDynamics simulations of the magnetic field evolution in neutron stars lasting 500 ms (5 Alfven crossing times) and up to resolutions of 0.231 km using Athena++. We explore two different initial conditions, one with purely poloidal magnetic field and the other with a dominant toroidal component, and study the poloidal and toroidal field energies, the growth times of the various instability-driven oscillation modes and turbulence. We find that the purely poloidal setup generates a toroidal field which later decays exponentially reaching 1% of the total magnetic energy, showing no evidence of reaching equilibrium. The initially stronger toroidal field setup, on the other hand, loses up to 20% of toroidal energy and maintains this state till the end of our simulation. We also explore the hypothesis, drawn from previous MHD simulations, that turbulence plays an important role in the quasi equilibrium state. An analysis of the spectra in our higher resolution setups reveal, however, that in most cases we are not observing turbulence at small scales, but rather a noisy velocity field inside the star. We also observe that the majority of the magnetic energy gets dissipated as heat increasing the internal energy of the star, while a small fraction gets radiated away as electromagnetic radiation.
11 pages, 8 figures; Accepted version in MNRAS
References in corpus (25)
- The Athena++ Adaptive Mesh Refinement Framework: Design and Magnetohydrodynamic Solvers
- Magnetorotational Core-Collapse Supernovae in Three Dimensions
- Modelling magnetically deformed neutron stars
- General relativistic simulations of magnetized binary neutron star mergers
- Magnetorotational collapse of massive stellar cores to neutron stars: Simulations in full general relativity
- A NICER view of PSR J0030+0451: evidence for a global-scale multipolar magnetic field
- Transitions between turbulent and laminar superfluid vorticity states in the outer core of a neutron star
- Magnetically-driven crustquakes in neutron stars
- Hydromagnetic Instabilities in Neutron Stars
- Variability from Nonaxisymmetric Fluctuations Interacting with Standing Shocks in Tilted Black Hole Accretion Disks
- Relativistic stars with purely toroidal magnetic fields
- The stability of poloidal magnetic fields in rotating stars
- The key role of magnetic fields in binary neutron star mergers
- Hall drift and the braking indices of young pulsars
- MHD Turbulence
- General relativistic models for rotating magnetized neutron stars in conformally flat spacetime
- Creation of magnetic spots at the neutron star surface
- On magnetic equilibria in barotropic stars
- Non-axisymmetric instability and fragmentation of general relativistic quasi-toroidal stars
- Magnetic field configurations in neutron stars from MHD simulations
- Evidence for a multipolar magnetic field in SGR J1745-2900 from X-ray light-curve analysis
- Stokes tomography of radio pulsar magnetospheres. I. Linear polarization
- Diffusion as a leading dissipative mechanism in superconducting neutron stars
- The impact of superconductivity and the Hall effect in models of magnetized neutron stars
- Modeling Magnetohydrodynamic Equilibrium in Magnetars with Applications to Continuous Gravitational Wave Production
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- Continuous gravitational wave emission from neutron stars with pinned superfluids in the core
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- General-relativistic resistive-magnetohydrodynamics simulations of self-consistent magnetized rotating neutron stars
- Gravitational-wave evolution of newborn magnetars with different deformed structure
- Strong toroidal magnetic fields sustained by the elastic crust in a neutron star
- Turbulence in Magnetised Neutron Stars
- MIR: a general-relativistic resistive-magneto-hydrodynamic code to study the effect of resistivity in Neutron Star dynamics