Two-fluid simulations of the magnetic field evolution in neutron star cores in the weak-coupling regime
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2020Metadata
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Castillo, F.
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Two-fluid simulations of the magnetic field evolution in neutron star cores in the weak-coupling regime
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Abstract
In a previous paper, we reported simulations of the evolution of the magnetic field in neutron star (NS) cores through ambipolar diffusion, taking the neutrons as a motionless uniform background. However, in real NSs, 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 equillibria', 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.
Patrocinador
Comision Nacional de Investigacion Cientifica y Tecnologica (CONICYT)
CONICYT FONDECYT
3180700
1201582
1190703
Center for Astrophysics and Associated Technologies (CATA; CONICYT/ANID project Basal)
AFB-170002
Center for the Development of Nanoscience and Nanotechnology (CEDENNA) under CONICYT/ANID
FB0807
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Artículo de publicación ISI Artículo de publicación SCOPUS
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Monthly Notices of The Royal Astronomical Society Volumen: 498 Número: 2 Páginas: 3000-3012 Oct 2020
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