On the magnetic field evolution timescale in superconducting neutron star cores
arXiv:1704.02016 · doi:10.1093/mnras/stx1192
Abstract
We revisit the various approximations employed to study the long-term evolution of the magnetic field in neutron star cores and discuss their limitations and possible improvements. A recent controversy on the correct form of the induction equation and the relevant evolution timescale in superconducting neutron star cores is addressed and clarified. We show that this ambiguity in the estimation of timescales arises as a consequence of nominally large terms that appear in the induction equation, but which are, in fact, mostly irrotational. This subtlety leads to a discrepancy by many orders of magnitude when velocity fields are absent or ignored. Even when internal velocity fields are accounted for, only the solenoidal part of the electric field contributes to the induction equation, which can be substantially smaller than the irrotational part. We also argue that stationary velocity fields must be incorporated in the slow evolution of the magnetic field as the next level of approximation.
6 pages, version accepted by MNRAS
References in corpus (2)
Cited by in corpus (18)
- Magnetic, thermal and rotational evolution of isolated neutron stars
- Magnetic, thermal and rotational evolution of isolated neutron stars
- Magnetic-field evolution in a plastically-failing neutron-star crust
- Evidence for an abundant old population of Galactic ultra long period magnetars and implications for fast radio bursts
- Sleeping beasts: strong toroidal magnetic field in quiescent magnetars explains their large pulsed fraction
- Magneto-thermal evolution of neutron stars with coupled Ohmic, Hall and ambipolar effects via accurate finite-volume simulations
- Long-period Pulsars as Possible Outcomes of Supernova Fallback Accretion
- Powering Central Compact Objects with a Tangled Crustal Magnetic Field
- Axisymmetric magneto-plastic evolution of neutron-star crusts
- Magnetic field evolution timescales in superconducting neutron stars
- Two-fluid simulations of the magnetic field evolution in neutron star cores in the weak-coupling regime
- Dissipative relativistic magnetohydrodynamics of a multicomponent mixture and its application to neutron stars
- Flux-Vortex Pinning and Neutron Star Evolution
- Combined magnetic field evolution in neutron star cores and crusts: Ambipolar diffusion, Hall effect and Ohmic dissipation
- Dynamical onset of superconductivity and retention of magnetic fields in cooling neutron stars
- Magnetic-field evolution with large-scale velocity circulation in a neutron-star crust
- Evolution of magnetic deformation in neutron star crust
- Revisiting thermoelectric effects in the crust of neutron stars