Relativistic coronal mass ejections from magnetars
arXiv:2302.08848 · doi:10.1093/mnras/stad2192
Abstract
We study dynamics of relativistic Coronal Mass Ejections (CMEs), from launching by shearing of foot-points (either slowly - the ``Solar flare'' paradigm, or suddenly - the ``star quake" paradigm), to propagation in the preceding magnetar wind. For slow shear, most of the energy injected into the CME is first spent on the work done on breaking through the over-laying magnetic field. At later stages, sufficiently powerful CMEs may experience ``detonation" and lead to opening of the magnetosphere beyond some equipartition radius , where the energy of the CME becomes larger than the decreasing external magnetospheric energy. Post-CME magnetosphere relaxes via formation of a plasmoid-mediated current sheet, initially at and slowly reaching the light cylinder (this transient stage has much higher spindown rate and may produce an ``anti-glitch''). Both the location of the foot-point shear and the global magnetospheric configuration affect the frequent-and-weak versus rare-and-powerful CME dichotomy - to produce powerful flares the slow shear should be limited to field lines that close near the star. After the creation of a topologically disconnected flux tube, the tube quickly (at the light cylinder) comes into force-balance with the preceding wind, and is passively advected/frozen in the wind afterward. For fast shear (a local rotational glitch), the resulting large amplitude Alfven waves lead to opening of the magnetosphere (which later recovers similarly to the slow shear case). At distances much larger than the light cylinder, the resulting shear Alfven waves propagate through the wind non-dissipatively. Implications to Fast Radio Bursts are discussed.
References in corpus (18)
- The strongest cosmic magnets: Soft Gamma-ray Repeaters and Anomalous X-ray Pulsars
- Fast Radio Bursts
- Fast radio bursts as synchrotron maser emission from decelerating relativistic blast waves
- INTEGRAL discovery of a burst with associated radio emission from the magnetar SGR 1935+2154
- Tearing instability in relativistic magnetically dominated plasmas
- Structure and Dynamics of the Sun's Open Magnetic Field
- Magnetar-energized supernova explosions and GRB-jets
- Sub-second periodicity in a fast radio burst
- Inferring the Energy and Distance Distributions of Fast Radio Bursts using the First CHIME/FRB Catalog
- Plasmoid ejection by Alfvén waves and the fast radio bursts from SGR 1935+2154
- Electromagnetic power of merging and collapsing compact objects
- Magnetar activity mediated by plastic deformations of neutron star crust
- Density-shear instability in electron MHD
- Magnetar bursts due to Alfvén wave nonlinear breakout
- Fast radio bursts by high-frequency synchrotron maser emission generated at the reverse shock of a powerful magnetar flare
- Direct Emission of Strong Radio Pulses During Magnetar Flares
- Centrifugal barriers in magnetospheric accretion
- Rotating neutron stars without light cylinders
Cited by in corpus (11)
- Dynamics of baryon ejection in magnetar giant flares: implications for radio afterglows, r-process nucleosynthesis, and fast radio bursts
- On the energy budget of starquake-induced repeating fast radio bursts
- Comparison of magnetic diffusion and reconnection in ideal and resistive relativistic magnetohydrodynamics, ideal magnetodynamics, and resistive force-free electrodynamics
- Force-free wave interaction in magnetar magnetospheres: Computational modeling in axisymmetry
- Nonlinear Alfvén-wave Dynamics and Premerger Emission from Crustal Oscillations in Neutron Star Mergers
- General-relativistic magnetar magnetospheres in 3D with physics-informed neural networks
- Magnetar Eruptions and Electromagnetic Fireworks
- Safety first: Stability and dissipation of line-tied force-free flux tubes in magnetized coronae
- Fast Radio Bursts from non-resonant Alfvén waves and synchrotron maser emission in the magnetar wind
- Magnetar-like flares behind the high-energy emission in LS 5039
- A Criterion for Magnetars Producing Giant Flares