Constraining the Origin of Magnetar Flares
arXiv:1312.5144 · doi:10.1093/mnras/stu584
Abstract
Sudden relaxation of the magnetic field in the core of a magnetar produces mechanical energy primarily in the form of shear waves which propagate to the surface and enter the magnetosphere as relativistic Alfvén waves. Due to a strong impedance mismatch, shear waves excited in the star suffer many reflections before exiting the star. If mechanical energy is deposited in the core and is converted {\em directly} to radiation upon propagation to the surface, the rise time of the emission is at least seconds to minutes, and probably minutes to hours for a realistic magnetic field geometry, at odds with observed rise times of $\lap 10$ ms for both and giant flares. Mechanisms for both small and giant flares that rely on the sudden relaxation of the magnetic field of the core are rendered unviable by the impedance mismatch, requiring the energy that drives these events to be stored in the magnetosphere just before the flare. ends, unless the waves are quickly damped.
Final version in Monthly Notices of the Royal Astronomical Society. 13 pages, 5 figures
References in corpus (18)
- Neutron conduction in the inner crust of a neutron star in the framework of the band theory of solids
- Neutron Star Asteroseismology. Axial Crust Oscillations in the Cowling Approximation
- Crustal Entrainment and Pulsar Glitches
- Analytical representations of unified equations of state of neutron-star matter
- Torsional Oscillations of Relativistic Stars with Dipole Magnetic Fields
- QPOs during magnetar flares are not driven by mechanical normal modes of the crust
- On the theory of magnetar QPOs
- Constraints on Neutron Star Crusts From Oscillations in Giant Flares
- Elastic or magnetic? A toy model for global magnetar oscillations with implications for QPOs during flares
- Alfvén QPOs in Magnetars
- Tearing instability in relativistic magnetically dominated plasmas
- Magnetars oscillations in the presence of a crust
- Entrainment parameters in cold superfluid neutron star core
- The first XMM-Newton observations of the Soft Gamma-ray Repeater SGR 1900+14
- Axisymmetric oscillations of magnetic neutron stars
- A Search for Planets Transiting the M Dwarf Debris Disk Host, AU Microscopii
- Quiet but still bright: XMM-Newton observations of the soft gamma-ray repeater SGR 0526-66
- Observation of Energetic particles between a pair of Corotating Interaction Regions
Cited by in corpus (22)
- Magnetars
- Magnetars: the physics behind observations
- Measuring the neutron star equation of state using X-ray timing
- Global Crustal Dynamics of Magnetars in Relation to their Bright X-ray Outbursts
- Magnetar field evolution and crustal plasticity
- Magnetar activity mediated by plastic deformations of neutron star crust
- Physics in Very Strong Magnetic Fields: Introduction and Overview
- Modulating the magnetosphere of magnetars by internal magneto-elastic oscillations
- Coherent magneto-elastic oscillations in superfluid magnetars
- Instability of twisted magnetar magnetospheres
- Long-term evolution of the force-free twisted magnetosphere of a magnetar
- Quasi-periodic oscillations in superfluid, relativistic magnetars with nuclear pasta phases
- The impulsive phase of magnetar giant flares: assessing linear tearing as the trigger mechanism
- Magnetar Giant Flares in Multipolar Magnetic Fields --- II. Flux Rope Eruptions With Current Sheets
- Search for Long-duration Gravitational-wave Signals Associated with Magnetar Giant Flares
- Central compact objects in Kes 79 and RCW 103 as "hidden" magnetars with crustal activity
- Interpreting the AXP 1E 2259+586 antiglitch as a change in internal magnetization
- Radio Emission of Pulsars. I. Slow Tearing of a Quantizing Magnetic Field
- The radio shut-off, glitch, and X-ray burst in 1E 1547.0-5408 interpreted through magnetic reconfiguration
- Tangled magnetic field model of QPOs
- Self-organized criticality in a spherically closed cellular automaton: Modeling soft gamma repeater bursts driven by magnetic reconnection
- A Criterion for Magnetars Producing Giant Flares