Identification of intermittent multi-fractal turbulence in fully kinetic simulations of magnetic reconnection
arXiv:1302.1749 · doi:10.1103/PhysRevLett.110.205002
Abstract
Recent fully nonlinear, kinetic three-dimensional simulations of magnetic reconnection [Daughton et al. 2011] evolve structures and exhibit dynamics on multiple scales, in a manner reminiscent of turbulence. These simulations of reconnection are among the first to be performed at sufficient spatio-temporal resolution to allow formal quantitative analysis of statistical scaling which we present here. We find that the magnetic field fluctuations generated by reconnection are anisotropic, have non-trivial spatial correlation and exhibit the hallmarks of finite range fluid turbulence; they have non-Gaussian distributions, exhibit Extended Self-Similarity in their scaling and are spatially multifractal. Furthermore, we find that the field J.E is also multifractal, so that magnetic energy is converted to plasma kinetic energy in a manner that is spatially intermittent. This suggests that dissipation in this sense in collisionless reconnection on kinetic scales has an analogue in fluid-like turbulent phenomenology, in that it proceeds via multifractal structures generated by an intermittent cascade.
References in corpus (4)
Cited by in corpus (30)
- Collisionless Magnetic Reconnection in Space Plasmas
- Magnetic Reconnection and Intermittent Turbulence in the Solar Wind
- Magnetic reconnection in the era of exascale computing and multiscale experiments
- Fully kinetic versus reduced-kinetic modelling of collisionless plasma turbulence
- Kinetic Turbulence in Astrophysical Plasmas: Waves and/or Structures?
- Subproton-scale Intermittency in Near-Sun Solar Wind Turbulence Observed by the Parker Solar Probe
- Multi-Spacecraft Measurement of Turbulence within a Magnetic Reconnection Jet
- Scalings of intermittent structures in magnetohydrodynamic turbulence
- Temporal Intermittency of Energy Dissipation in Magnetohydrodynamic Turbulence
- Anisotropic Intermittency of Magnetohydrodynamic Turbulence
- Generation of turbulence in colliding reconnection jets
- Three-dimensional magnetic reconnection in particle-in-cell simulations of anisotropic plasma turbulence
- Kinetic turbulence in fast 3D collisionless guide-field magnetic reconnection
- Magnetic reconnection as an energy cascade process
- ViDA: a Vlasov-DArwin solver for plasma physics at electron scales
- Reconnection-Driven Magnetohydrodynamic Turbulence in a Simulated Coronal-Hole Jet
- Multiscaling in Hall-Magnetohydrodynamic Turbulence: Insights from a Shell Model
- Numerical Simulation of Superhalo Electrons Generated by Magnetic Reconnection in the Solar Wind Source Region
- Stochastic Turbulent Acceleration in a fractal environment
- Particle heating and acceleration by reconnecting and non-reconnecting Current Sheets
- Formation and Evolution of Coherent Structures in 3D Strongly Turbulent Magnetized Plasmas
- A Two-Fluid Study of Oblique Tearing Modes in a Force-Free Current Sheet
- Energy dissipation processes in solar wind turbulence
- Cosmological evolution of quasar radio emission in the view of multifractality
- Strong turbulence and magnetic coherent structures in the interstellar medium
- Filamentary plasma eruptions and the heating and acceleration of electrons
- A Model of Plasma Heating by Large-Scale Flow
- A novel approach to study the variability of NGC 5548
- Light Propagation through Space-Time Non-Markovian Random Media
- Current sheets, plasmoids and flux ropes in the heliosphere. Part II: Theoretical aspects