Lagrangian perturbation theory for a superfluid immersed in an elastic neutron star crust
arXiv:1105.1244 · doi:10.1111/j.1365-2966.2011.19015.x
Abstract
The inner crust of mature neutron stars, where an elastic lattice of neutron-rich nuclei coexists with a neutron superfluid, impacts on a range of astrophysical phenomena. The presence of the superfluid is key to our understanding of pulsar glitches, and is expected to affect the thermal conductivity and hence the evolution of the surface temperature. The coupling between crust and superfluid must also be accounted for in studies of neutron star dynamics, discussions of global oscillations and associated instabilities. In this paper we develop Lagrangian perturbation theory for this problem, paying attention to key issues like superfluid entrainment, potential vortex pinning, dissipative mutual friction and the star's magnetic field. We also discuss the nature of the core-crust interface. The results provide a theoretical foundation for a range of interesting astrophysical applications.
13 pages, no figures, to appear in MNRAS
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Cited by in corpus (9)
- Relativistic fluid dynamics: physics for many different scales
- Dynamical tides in neutron stars: The impact of the crust
- Tidal deformations of neutron stars: The role of stratification and elasticity
- Superfluid vortex-mediated mutual friction in non-homogeneous neutron star interiors
- Relativistic finite temperature multifluid hydrodynamics in a neutron star from a variational principle
- Hydrodynamic simulations of pulsar glitch recovery
- Pinned vortex hopping in a neutron star crust
- Dynamical tides in superfluid neutron stars
- Detecting Entrainment in Fermi-Bose Mixtures