English

Hall cascade with fractional magnetic helicity in neutron star crusts

High Energy Astrophysical Phenomena 2020-09-18 v4 Fluid Dynamics

Abstract

The ohmic decay of magnetic fields in the crusts of neutron stars is generally believed to be governed by Hall drift which leads to what is known as a Hall cascade. Here we show that helical and fractionally helical magnetic fields undergo strong inverse cascading like in magnetohydrodynamics (MHD), but the magnetic energy decays more slowly with time tt: t2/5\propto t^{-2/5} instead of t2/3\propto t^{-2/3} in MHD. Even for a nonhelical magnetic field there is a certain degree of inverse cascading for sufficiently strong magnetic fields. The inertial range scaling with wavenumber kk is compatible with earlier findings for the forced Hall cascade, i.e., proportional to k7/3k^{-7/3}, but in the decaying cases, the subinertial range spectrum steepens to a novel k5k^5 slope instead of the k4k^4 slope in MHD. The energy of the large-scale magnetic field can increase quadratically in time through inverse cascading. For helical fields, the energy dissipation is found to be inversely proportional to the large-scale magnetic field and proportional to the fifth power of the root-mean square (rms) magnetic field. For neutron star conditions with an rms magnetic field of a few times 101410^{14}\,G, the large-scale magnetic field might only be 101110^{11}\,G, while still producing magnetic dissipation of 103310^{33}\,erg\,s1^{-1} for thousands of years, which could manifest itself through X-ray emission. Finally, it is shown that the conclusions from local unstratified models agree rather well with those from stratified models with boundaries.

Keywords

Cite

@article{arxiv.2006.12984,
  title  = {Hall cascade with fractional magnetic helicity in neutron star crusts},
  author = {Axel Brandenburg},
  journal= {arXiv preprint arXiv:2006.12984},
  year   = {2020}
}

Comments

14 pages, 17 figures, 5 tables, ApJ, in press