Effective resistivity in relativistic collisionless plasmoid-mediated reconnection
arXiv:2211.04553 · doi:10.3847/1538-4357/acd0b0
Abstract
Magnetic reconnection can power spectacular high-energy astrophysical phenomena by producing non-thermal energy distributions in highly magnetized regions around compact objects. By means of two-dimensional fully kinetic particle-in-cell (PIC) simulations we investigate relativistic collisionless plasmoid-mediated reconnection in magnetically dominated pair plasmas with and without guide field. In X-points, where diverging flows result in a non-diagonal thermal pressure tensor, a finite residence time for particles gives rise to a localized collisionless effective resistivity. Here, for the first time for relativistic reconnection in a fully developed plasmoid chain we identify the mechanisms driving the non-ideal electric field using a full Ohm's law by means of a statistical analysis based on our PIC simulations. We show that the non-ideal electric field is predominantly driven by gradients of nongyrotropic thermal pressures. We propose a kinetic physics motivated non-uniform effective resistivity model, which is negligible on global scales and becomes significant only locally in X-points, that captures the properties of collisionless reconnection with the aim of mimicking its essentials in non-ideal magnetohydrodynamic descriptions. This effective resistivity model provides a viable opportunity to design physically grounded global models for reconnection-powered high-energy emission.
12 pages, 4 figures
References in corpus (38)
- Relativistic Reconnection: an Efficient Source of Non-Thermal Particles
- Fast magnetic reconnection in the plasmoid-dominated regime
- Black hole flares: ejection of accreted magnetic flux through 3D plasmoid-mediated reconnection
- Magnetic Reconnection and Hot Spot Formation in Black Hole Accretion Disks
- Imaging Optically-Thin Hot Spots Near the Black Hole Horizon of Sgr A* at Radio and Near-Infrared Wavelengths
- Reconnection-driven plasmoids in blazars: fast flares on a slow envelope
- Non-thermal particle acceleration in collisionless relativistic electron-proton reconnection
- Extreme particle acceleration in magnetic reconnection layers. Application to the gamma-ray flares in the Crab Nebula
- Ab-Initio Pulsar Magnetosphere: Particle acceleration in Oblique Rotators and High-energy Emission Modeling
- Blazar flares powered by plasmoids in relativistic reconnection
- Fast radio bursts from reconnection in magnetar magnetosphere
- Efficient Production of High-energy Nonthermal Particles during Magnetic Reconnection in a Magnetically-dominated Ion-Electron Plasma
- Flares in the Galactic center I: orbiting flux tubes in Magnetically Arrested Black Hole Accretion Disks
- Radiative magnetic reconnection near accreting black holes
- Sgr A* near-infrared flares from reconnection events in a magnetically arrested disc
- Plasmoid formation in global GRMHD simulations and AGN flares
- Pulsar Radio Emission Mechanism: Radio Nanoshots as a Low Frequency Afterglow of Relativistic Magnetic Reconnection
- Particle Acceleration and the Origin of X-ray Flares in GRMHD simulations of Sgr A*
- Magnetic Hair and Reconnection in Black Hole Magnetospheres
- Fast reconnection in relativistic plasmas: the magnetohydrodynamics tearing instability revisited
- General relativistic resistive magnetohydrodynamics with robust primitive variable recovery for accretion disk simulations
- On the Value of the Reconnection Rate
- Kinetic Simulations of Radiative Magnetic Reconnection in the Coronae of Accreting Black Holes
- Electromagnetic precursors to gravitational wave events: Numerical simulations of flaring in pre-merger binary neutron star magnetospheres
- Sgr A* X-ray flares from non-thermal particle acceleration in a magnetically arrested disc
- Effects of synchrotron cooling and pair production on collisionless relativistic reconnection
- Radiative reconnection-powered TeV flares from the black hole magnetosphere in M87
- Magnetic reconnection and plasmoid formation in three-dimensional accretion flows around black holes
- Radio emission from the Crab and Crab-like pulsars
- Twisting, reconnecting magnetospheres and magnetar spindown
- Relativistic resistive magnetohydrodynamic reconnection and plasmoid formation in merging flux tubes
- Electromagnetic fireworks: Fast radio bursts from rapid reconnection in the compressed magnetar wind
- Slowly balding black holes
- Comptonization by Reconnection Plasmoids in Black Hole Coronae I: Magnetically Dominated Pair Plasma
- Highly magnetized region in pulsar wind nebulae and origin of the Crab gamma-ray flares
- Modeling general-relativistic plasmas with collisionless moments and dissipative two-fluid magnetohydrodynamics
- Variations in emission from episodic plasmoid ejecta around black holes
- Non-ideal fields solve the injection problem in relativistic reconnection
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- Current sheet alignment in oblique black hole magnetospheres -- a black hole pulsar?
- Relativistic reconnection with effective resistivity: I. Dynamics and reconnection rate
- The impact of resistivity on the variability of black hole accretion flows
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