The effect of non-linear mutual friction on pulsar glitch sizes and rise times

Author:

Celora T1ORCID,Khomenko V2,Antonelli M2ORCID,Haskell B2

Affiliation:

1. Mathematical Sciences and STAG Research Centre, University of Southampton, Southampton SO17 1BJ, UK

2. Nicolaus Copernicus Astronomical Center of the Polish Academy of Sciences, ul. Bartycka 18, PL-00-716 Warsaw, Poland

Abstract

ABSTRACT Observations of pulsar glitches have the potential to provide constraints on the dynamics of the high density interior of neutron stars. However, to do so, realistic glitch models must be constructed and compared to the data. We take a step towards this goal by testing non-linear models for the mutual friction force, which is responsible for the exchange of angular momentum between the neutron superfluid and the observable normal component in a glitch. In particular, we consider a non-linear dependence of the drag force on the relative velocity between superfluid vortices and the normal component, in which the contributions of both kelvin and phonon excitations are included. This non-linear model produces qualitatively new features, and is able to reproduce the observed bimodal distribution of glitch sizes in the pulsar population. The model also suggests that the differences in size distributions in individual pulsars may be due to the glitches being triggered in regions with different pinning strengths, as stronger pinning leads to higher vortex velocities and a qualitatively different mutual friction coupling with respect to the weak pinning case. Glitches in pulsars that appear to glitch quasi-periodically with similar sizes may thus be due to the same mechanisms as smaller events in pulsars that have no preferred glitch size, but simply originate in stronger pinning regions, possibly in the core of the star.

Funder

European Cooperation in Science and Technology

Narodowe Centrum Nauki

U.S. Department of Energy

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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1. Pulsar glitches from quantum vortex networks;Scientific Reports;2024-04-03

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3. Classification of pulsar glitch amplitudes using extreme deconvolution;Journal of High Energy Astrophysics;2023-03

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