Neutron-superfluid vortices and proton-superconductor flux tubes: Development of a minimal model for pulsar glitches
arXiv:2405.12127 · doi:10.1103/PhysRevD.110.083002
Abstract
We develop a theoretical framework that allows us to explore the coupled motion of neutron-superfluid vortices and proton-superconductor flux tubes in a gravitationally collapsed condensate, which describe neutron stars that form pulsars. Our framework uses the 3D Gross-Pitaevskii-Poisson-Equation (GPPE) for neutron Cooper pairs, the Real-Time-Ginzburg-Landau equation (RTGLE) for proton Cooper pairs, the Maxwell equations for the vector potential , and Newtonian gravity and interactions, both direct and induced by the Poisson equation, between the neutron and proton subsystems. For a pulsar we include a crust potential, characterized by an angle , and frictional drag. By carrying out extensive direct numerical simulations, we obtain a variety of interesting results. We show that a rotating proton superconductor generates a uniform London magnetic field, which changes the field distribution inside flux tubes. In the absence of any direct interaction between the two species, they interact through the gravitational Poisson equation. The presence of attractive (repulsive) density-density interaction leads to the attraction (repulsion) between neutron vortices and proton flux tubes. The inclusion of the current-current interaction and the complete Maxwell equations allows us to quantify the entrainment effect that leads to induced magnetization of neutron vortices. We show that, with a strong external magnetic field , proton flux tubes are anchored to the crust, whereas neutron vortices leave the condensate and lead to abrupt changes of the crust angular momentum . The frictional term in the dynamical equation for yields stick-slip dynamics that leads, in turn, to glitches in the time series of . By calculating various statistical properties of this time series, we demonstrate that they display self-organised criticality(SOC).
18 pages, 13 figures
References in corpus (17)
- Models of Pulsar Glitches
- Avalanche dynamics of radio pulsar glitches
- Pulsar Rotation Measures and Large-scale Magnetic Field Reversals in the Galactic Disk
- Scalar Field Dark Matter: head-on interaction between two structures
- Unpinning triggers for superfluid vortex avalanches
- Violation of the London Law and Onsager-Feynman quantization in multicomponent superconductors
- Evolution and dynamical properties of Bose-Einstein condensate dark matter stars
- Collisional interactions between self-interacting non-relativistic boson stars: effective potential analysis and numerical simulations
- Glitches in rotating supersolids
- Stability of interlinked neutron vortex and proton flux tube arrays in a neutron star: equilibrium configurations
- Dynamics of reversals and condensates in 2D Kolmogorov flows
- Stability of interlinked neutron vortex and proton flux tube arrays in a neutron star. II. Far-from-equilibrium dynamics
- Magnetic field evolution and reversals in spiral galaxies
- Statistical theory of reversals in two-dimensional confined turbulent flows
- 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
- Gravity- and temperature-driven phase transitions in a model for collapsed axionic condensates
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- Vortex Retention Mediated Turbulent Transitions in Self-Gravitating Bosonic and Axionic Condensates