English

Magnetically-driven crustquakes in neutron stars

High Energy Astrophysical Phenomena 2015-06-23 v2 Solar and Stellar Astrophysics

Abstract

Crustquake events may be connected with both rapid spin-up `glitches' within the regular slowdown of neutron stars, and high-energy magnetar flares. We argue that magnetic field decay builds up stresses in a neutron star's crust, as the elastic shear force resists the Lorentz force's desire to rearrange the global magnetic-field equilibrium. We derive a criterion for crust-breaking induced by a changing magnetic-field configuration, and use this to investigate strain patterns in a neutron star's crust for a variety of different magnetic-field models. Universally, we find that the crust is most liable to break if the magnetic field has a strong toroidal component, in which case the epicentre of the crustquake is around the equator. We calculate the energy released in a crustquake as a function of the fracture depth, finding that it is independent of field strength. Crust-breaking is, however, associated with a characteristic local field strength of 2.4×10142.4\times 10^{14} G for a breaking strain of 0.0010.001, or 2.4×10152.4\times 10^{15} G at a breaking strain of 0.10.1. We find that even the most luminous magnetar giant flare could have been powered by crustal energy release alone.

Keywords

Cite

@article{arxiv.1412.5852,
  title  = {Magnetically-driven crustquakes in neutron stars},
  author = {S. K. Lander and N. Andersson and D. Antonopoulou and A. L. Watts},
  journal= {arXiv preprint arXiv:1412.5852},
  year   = {2015}
}

Comments

13 pages, 8 figures. Minor changes to match MNRAS-accepted version

R2 v1 2026-06-22T07:36:51.423Z