Nonaxisymmetric Hall instability: A key to understanding magnetars
arXiv:2001.03335 · doi:10.1103/PhysRevResearch.1.032049
Abstract
It is generally accepted that the non-linear, dynamical evolution of magnetic fields in the interior of neutron stars plays a key role in the explanation of the observed phenomenology. Understanding the transfer of energy between toroidal and poloidal components, or between different scales, is of particular relevance. In this letter, we present the first 3D simulations of the Hall instability in a neutron star crust, confirming its existence for typical magnetar conditions. We confront our results to estimates obtained by a linear perturbation analysis, which discards any interpretation as numerical instabilities and confirms its physical origin. Interestingly, the Hall instability creates locally strong magnetic structures that occasionally can make the crust yield to the magnetic stresses and generates coronal loops, similarly as solar coronal loops find their way out through the photosphere. This supports the viability of the mechanism, which has been proposed to explain magnetar outbursts.
5 pages, 3 Figures, Published in Physical Review Research, Rapid Communication
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Cited by in corpus (5)
- Powering Central Compact Objects with a Tangled Crustal Magnetic Field
- 3D code for MAgneto-Thermal evolution in Isolated Neutron Stars, MATINS: The Magnetic Field Formalism
- Magnetic Field Evolution in Neutron Star Crusts: Beyond the Hall Effect
- Combined magnetic field evolution in neutron star cores and crusts: Ambipolar diffusion, Hall effect and Ohmic dissipation
- Thermal luminosity degeneracy of magnetized neutron stars with and without hyperon cores