Explosive X-point collapse in relativistic magnetically-dominated plasma
arXiv:1805.05233 · doi:10.1017/S0022377817000629
Abstract
The extreme properties of the gamma ray flares in the Crab Nebula present a clear challenge to our ideas on the nature of particle acceleration in relativistic astrophysical plasma. It seems highly unlikely that standard mechanisms of stochastic type are at work here and hence the attention of theorists has switched to linear acceleration in magnetic reconnection events. In this series of papers, we attempt to develop a theory of explosive magnetic reconnection in highly-magnetized relativistic plasma which can explain the extreme parameters of the Crab flares. In the first paper, we focus on the properties of the X-point collapse. Using analytical and numerical methods (fluid and particle-in-cell simulations) we extend Syrovatsky's classical model of such collapse to the relativistic regime. We find that the collapse can lead to the reconnection rate approaching the speed of light on macroscopic scales. During the collapse, the plasma particles are accelerated by charge-starved electric fields, which can reach (and even exceed) values of the local magnetic field. The explosive stage of reconnection produces non-thermal power-law tails with slopes that depend on the average magnetization . For sufficiently high magnetizations and vanishing guide field, the non-thermal particle spectrum consists of two components: a low-energy population with soft spectrum, that dominates the number census; and a high-energy population with hard spectrum, that possesses all the properties needed to explain the Crab flares.
32 pages, Invited contribution, Plasma Physics of gamma ray emission from pulsars and their nebulae, Journal of Plasma Physics
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Cited by in corpus (17)
- Coherent emission in pulsars, magnetars and Fast Radio Bursts: reconnection-driven free electron laser
- Interpreting Crab Nebula synchrotron spectrum: two acceleration mechanisms
- Particle acceleration in explosive relativistic reconnection events and Crab Nebula gamma-ray flares
- Particle acceleration in explosive relativistic reconnection events and Crab Nebula gamma-ray flares
- Multi-scale dynamics of magnetic flux tubes and inverse magnetic energy transfer
- Black hole magnetosphere with small scale flux tubes--II. Stability and dynamics
- Relativistic Magnetic Reconnection in Astrophysical Plasmas: A Powerful Mechanism of Nonthermal Emission
- Strongly localized magnetic reconnection by the super-Alfvenic shear flow
- Effective Field Theory of Force-Free Electrodynamics
- Turbulent model of Crab nebula radiation
- Statistical description of coalescing magnetic islands via magnetic reconnection
- A systematic study of -ray flares from the Crab Nebula with Fermi-LAT: I. flare detection
- Resistively-limited current sheet implosions in planar anti-parallel (1D) and null-point containing (2D) magnetic field geometries
- Computational General Relativistic Force-Free Electrodynamics: I. Multi-Coordinate Implementation and Testing
- Time-Dependent Electron Acceleration in Pulsar Wind Termination Shocks: Application to the 2007 September Crab Nebula Gamma-Ray Flare
- Scaling of Magnetic Dissipation and Particle Acceleration in ABC Fields
- Resistive relativistic magnetohydrodynamics without Amperes Law