Stability of interlinked neutron vortex and proton flux tube arrays in a neutron star: equilibrium configurations
arXiv:1709.02254 · doi:10.1093/mnras/stx2301
Abstract
Three-dimensional, Gross-Pitaevskii equation (GPE) simulations are presented of the interaction between neutron superfluid vortices and proton superconductor flux tubes in a rotating, harmonic trap, representing an idealised model of the outer core of a neutron star. Low-energy states of the neutron condensate are calculated by evolving the GPE in imaginary time in the presence of a prescribed, static, rectilinear flux tube array. The calculations are carried out as a function of the angle between the global magnetic and rotation axes, and the amplitude and sign of the current-current and density couplings between the neutron and proton condensates. It is found that the system is frustrated by the competition between vortex-vortex repulsion and vortex-flux-tube attraction (pinning), leading to the formation of vortex tangles and "glassy" behaviour characterized by multiple metastable states spaced closely in energy. The dimensionless parameters in the simulations are ordered as one expects in a neutron star, but the dynamic range is many orders of magnitude smaller than in reality, so caution must be exercised when assessing the astrophysical implications. Nevertheless the results suggest that tangled vorticity may be endemic in neutron star outer cores.
21 pages, 20 figures, accepted for publication in MNRAS
References in corpus (12)
- Theory of ultracold Fermi gases
- Transitions between turbulent and laminar superfluid vorticity states in the outer core of a neutron star
- Evolution in complex systems
- Entrainment parameters in cold superfluid neutron star core
- Unpinning triggers for superfluid vortex avalanches
- Quantum calculation of vortices in the inner crust of neutron stars
- Vortex-nucleus interaction in the inner crust of neutron stars
- Flux tubes and the type-I/type-II transition in a superconductor coupled to a superfluid
- Type I and Two-Gap Superconductivity in Neutron Star Magnetism
- Persistent crust-core spin lag in neutron stars
- Towards Quantum Turbulence in Cold Atomic Fermionic Superfluids
- Strongly Interacting Fermi Gases
Cited by in corpus (23)
- Glitches in rotating supersolids
- Vortex pinning in the superfluid core of neutron stars and the rise of pulsar glitches
- Stability of interlinked neutron vortex and proton flux tube arrays in a neutron star. II. Far-from-equilibrium dynamics
- A superfluid perspective on neutron star dynamics
- Insights into the physics of neutron star interiors from pulsar glitches
- Vortex Pinning in Neutron Stars, Slip-stick Dynamics, and the Origin of Spin Glitches
- Parameter estimation of a two-component neutron star model with spin wandering
- Rapid parameter estimation of a two-component neutron star model with spin wandering using a Kalman filter
- Simulating pulsar glitches: an -body solver for superfluid vortex motion in two dimensions
- An updated glitch rate law inferred from radio pulsars
- Anti-glitches in accreting pulsars from superfluid vortex avalanches
- Stability of interlinked neutron vortex and proton flux-tube arrays in a neutron star -- III. Proton feedback
- Neutron-superfluid vortices and proton-superconductor flux tubes: Development of a minimal model for pulsar glitches
- Vortex depinning in a two-dimensional superfluid
- Statistical estimates of the pulsar glitch activity
- Persistent gravitational radiation from glitching pulsars. II. Updated scaling with vortex number
- Vortex Avalanches and Collective Motion in Neutron Stars
- Strongly interacting matter in extreme magnetic fields
- Differential rotation in neutron stars with open and closed magnetic topologies
- Magnetic coupling through flux branching of adjacent type-I and -II superconductors in a neutron star
- Surface energy of magnetized superconducting matter in the neutron star cores
- Measuring the crust-superfluid coupling time-scale for 105 UTMOST pulsars with a Kalman filter
- Flux tube clustering from magnetic coupling of adjacent type-I and -II superconductors in a neutron star: persistent gravitational radiation