Two-fluid simulations of the magnetic field evolution in neutron star cores in the weak-coupling regime
arXiv:2006.13186 · doi:10.1093/mnras/staa2543
Abstract
In a previous paper, we reported simulations of the evolution of the magnetic field in neutron star cores through ambipolar diffusion, taking the neutrons as a motionless uniform background. However, in real neutron stars, neutrons are free to move, and a strong composition gradient leads to stable stratification (stability against convective motions) both of which might impact on the time-scales of evolution. Here we address these issues by providing the first long-term two-fluid simulations of the evolution of an axially symmetric magnetic field in a neutron star core composed of neutrons, protons, and electrons with density and composition gradients. Again, we find that the magnetic field evolves towards barotropic "Grad-Shafranov equilibria", in which the magnetic force is balanced by the degeneracy pressure gradient and gravitational force of the charged particles. However, the evolution is found to be faster than in the case of motionless neutrons, as the movement of charged particles (which are coupled to the magnetic field, but are also limited by the collisional drag forces exerted by neutrons) is less constrained, since neutrons are now allowed to move. The possible impact of non-axisymmetric instabilities on these equilibria, as well as beta decays, proton superconductivity, and neutron superfluidity, are left for future work.
References in corpus (14)
- Magnetic field dissipation in neutron star crusts: from magnetars to isolated neutron stars
- A new code for the Hall-driven magnetic evolution of neutron stars
- Hall drift and the braking indices of young pulsars
- Magnetic Field Evolution of Neutron Stars I: Basic formalism, numerical techniques, and first results
- Magnetic-field evolution in a plastically-failing neutron-star crust
- Magnetic Field Evolution in Neutron Stars: One-Dimensional Multi-Fluid Model
- The relevance of ambipolar diffusion for neutron star evolution
- Instability of Magnetic Equilibria in Barotropic Stars
- Relativistic dynamics of superfluid-superconducting mixtures in the presence of topological defects and an electromagnetic field with application to neutron stars
- On magnetic equilibria in barotropic stars
- On the magnetic field evolution timescale in superconducting neutron star cores
- Stability of Hall equilibria in neutron star crusts
- Force on proton vortices in superfluid neutron stars
- Magnetic field evolution in neutron stars
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- 3D code for MAgneto-Thermal evolution in Isolated Neutron Stars, MATINS: thermal evolution and lightcurves
- Combined magnetic field evolution in neutron star cores and crusts: Ambipolar diffusion, Hall effect and Ohmic dissipation
- Magnetic fields in late-stage proto-neutron stars
- Evolution of magnetic deformation in neutron star crust
- The impact of superconductivity and the Hall effect in models of magnetized neutron stars
- Three-dimensional numerical simulations of ambipolar diffusion in NS cores in the one-fluid approximation: instability of poloidal magnetic field
- Thermal luminosity degeneracy of magnetized neutron stars with and without hyperon cores
- Transport coefficients of magnetized neutron star cores
- Validating and improving two-fluid simulations of the magnetic field evolution in neutron star cores
- Constraints on the internal physics of neutron stars from the observational data of several young pulsars: the role of a power-law decaying dipole magnetic field
- Dissipative superfluid relativistic magnetohydrodynamics of a multicomponent fluid: the combined effect of particle diffusion and vortices
- Ambipolar decay of magnetic field in magnetars and the observed magnetar activities