Turbulent, pinned superfluids in neutron stars and pulsar glitch recoveries
arXiv:2007.02748 · doi:10.1093/mnras/staa2678
Abstract
Pulsar glitches offer an insight into the dynamics of superfluids in the high density interior of a neutron star. To model these phenomena, however, one needs to have an understanding of the dynamics of a turbulent array of superfluid vortices moving through a pinning lattice. In this paper we develop a theoretical approach to describe vortex mediated mutual friction in a pinned, turbulent and rotating superfluid. Our model is then applied to the study of the post glitch rotational evolution in the Vela pulsar and in PSR J0537-6910. We show that in both cases a turbulent model fits the evolution of the spin frequency derivative better than a laminar one. We also predict that the second derivative of the frequency after a glitch should be correlated with the waiting time since the previous glitch, which we find to be consistent with observational data for these pulsars. The main conclusion of this paper is that in the post-glitch rotational evolution of these two pulsars we are most likely observing the response to the glitch of a pinned turbulent region of the star (possibly the crust) and not the laminar response of a regular straight vortex array.
Submitted to MNRAS
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Cited by in corpus (13)
- The impact of glitches on young pulsar rotational evolution
- A superfluid perspective on neutron star dynamics
- Insights into the physics of neutron star interiors from pulsar glitches
- Timing six energetic rotation-powered X-ray pulsars, including the fast-spinning young PSR J0058-7218 and Big Glitcher PSR J0537-6910
- Inferring neutron star properties with continuous gravitational waves
- Anti-glitches in accreting pulsars from superfluid vortex avalanches
- The Green Bank North Celestial Cap Survey IX: Timing Follow-up for 128 Pulsars
- Quantum vortices in fermionic superfluids: from ultracold atoms to neutron stars
- Long-term statistics of pulsar glitches due to history-dependent avalanches
- Persistent gravitational radiation from glitching pulsars. II. Updated scaling with vortex number
- Superfluid drain vortex
- Superfluid Spin-up: 3D Simulations of Post-Glitch Dynamics in Neutron Star Cores
- PSR J0537-6910: Exponential recoveries detected for 12 glitches