An unstable superfluid Stewartson layer in a differentially rotating neutron star
arXiv:0907.3272 · doi:10.1088/0004-637X/701/2/L75
Abstract
Experimental and numerical evidence is reviewed for the existence of a Stewartson layer in spherical Couette flow at small Ekman and Rossby numbers ($\Ek \lsim 10^{-3}$, $\Ro \lsim 10^{-2}$), the relevant hydrodynamic regime in the superfluid outer core of a neutron star. Numerical simulations of a superfluid Stewartson layer are presented for the first time, showing how the layer is disrupted by nonaxisymmetric instabilities. The unstable ranges of $\Ek$ and $\Ro$ are compared with estimates of these quantities in radio pulsars that exhibit glitches. It is found that glitching pulsars lie on the stable side of the instability boundary, allowing differential rotation to build up before a glitch.
4 pages, 3 figures. Accepted for publication in ApJ Letters
References in corpus (9)
- Color superconductivity in dense quark matter
- The ATNF Pulsar Catalogue
- Avalanche dynamics of radio pulsar glitches
- Transitions between turbulent and laminar superfluid vorticity states in the outer core of a neutron star
- Oscillations of rapidly rotating stratified neutron stars
- A hydrodynamical trigger mechanism for pulsar glitches
- Superfluid turbulence and pulsar glitch statistics
- A Cellular Automaton Model of Pulsar Glitches
- Do superfluid instabilities prevent neutron star precession?
Cited by in corpus (18)
- The dynamics of pulsar glitches: Contrasting phenomenology with numerical evolutions
- Pulsar timing noise from superfluid turbulence
- Continuous-wave gravitational radiation from pulsar glitch recovery
- Gravitational Radiation from Hydrodynamic Turbulence in a Differentially Rotating Neutron Star
- Instability of Superfluid Flow in the Neutron Star Inner Crust
- Instability of Superfluid Flow in the Neutron Star Core
- Investigating superconductivity in neutron star interiors with glitch models
- Fast fossil rotation of neutron star cores
- Thermally-Activated Post-Glitch Response of the Neutron Star Inner Crust and Core. I: Theory
- Gravitational-wave bursts and stochastic background from superfluid vortex avalanches during pulsar glitches
- The effect of realistic equations of state and general relativity on the "snowplow" model for pulsar glitches
- Hydrodynamic simulations of pulsar glitch recovery
- Hydrodynamics of rapidly rotating superfluid neutron stars with mutual friction
- Hydrodynamical instabilities in superfluid neutron stars with background flows between the components
- Hydrodynamic Stability Analysis of the Neutron Star Core
- Persistent gravitational radiation from glitching pulsars. II. Updated scaling with vortex number
- Oscillatory superfluid Ekman pumping in Helium II and neutron stars
- Differential rotation in neutron stars with open and closed magnetic topologies