Axially symmetric equations for differential pulsar rotation with superfluid entrainment
arXiv:1603.02838 · doi:10.1093/mnras/stw2376
Abstract
In this article we present an analytical two-component model for pulsar rotational dynamics. Under the assumption of axial symmetry, implemented by a paraxial array of straight vortices that thread the entire neutron superfluid, we are able to project exactly the 3D hydrodynamical problem to a 1D cylindrical one. In the presence of density dependent entrainment the superfluid rotation is non-columnar: we circumvent this by using an auxiliary dynamical variable directly related to the areal density of vortices. The main result is a system of differential equations that take consistently into account the stratified spherical structure of the star, the dynamical effects of non-uniform entrainment, the differential rotation of the superfluid component and its coupling to the normal crust. These equations represent a mathematical framework in which to test quantitatively the macroscopic consequences of the presence of a stable vortex array, a working hypothesis widely used in glitch models. Even without solving the equations explicitly, we are able to draw some general quantitative conclusions; in particular, we show that the reservoir of angular momentum (corresponding to recent values of the pinning forces) is enough to reproduce the largest glitch observed in the Vela pulsar, provided its mass is not too large.
14 pages, 11 figures, 2 tables. Submitted to MNRAS in Feb-2016
References in corpus (9)
- Models of Pulsar Glitches
- Crustal Entrainment and Pulsar Glitches
- Avalanche dynamics of radio pulsar glitches
- Transitions between turbulent and laminar superfluid vorticity states in the outer core of a neutron star
- Mesoscopic pinning forces in neutron star crusts
- A hydrodynamical trigger mechanism for pulsar glitches
- Entrainment parameters in cold superfluid neutron star core
- Two-fluid models of superfluid neutron star cores
- Spin-down Rate of Pinned Superfluid
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- Core and crust contributions in overshooting glitches: the Vela pulsar 2016 glitch
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- Stochastic processes for pulsar timing noise: fluctuations in the internal and external torques
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- The effect of non-linear mutual friction on pulsar glitch sizes and rise times
- Parameter estimation of a two-component neutron star model with spin wandering
- Bayesian estimate of the superfluid moments of inertia from the 2016 glitch in the Vela pulsar
- Gapless neutron superfluidity in the crust of the accreting neutron stars KS 1731-260 and MXB 1659-29
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