Kinetic plasma turbulence: recent insights and open questions from 3D3V simulations
arXiv:1909.11525 · doi:10.3389/fspas.2019.00064
Abstract
Turbulence and kinetic processes in magnetized space plasmas have been extensively investigated over the past decades via \emph{in-situ} spacecraft measurements, theoretical models and numerical simulations. In particular, multi-point high-resolution measurements from the \emph{Cluster} and \emph{MMS} space missions brought to light an entire new world of processes, taking place at the plasma kinetic scales, and exposed new challenges for their theoretical interpretation. A long-lasting debate concerns the nature of ion and electron scale fluctuations in solar-wind turbulence and their dissipation via collisionless plasma mechanisms. Alongside observations, numerical simulations have always played a central role in providing a test ground for existing theories and models. In this Perspective, we discuss the advances achieved with our 3D3V (reduced and fully) kinetic simulations, as well as the main questions left open (or raised) by these studies. To this end, we combine data from our recent kinetic simulations of both freely decaying and continuously driven fluctuations to assess the similarities and/or differences in the properties of plasma turbulence in the sub-ion range. Finally, we discuss possible future directions in the field and highlight the need to combine different types of numerical and observational approaches to improve the understanding of turbulent space plasmas.
18 pages, 2 figures; Published in "Frontiers in Astronomy and Space Sciences - Space Physics" (special issue: Improving the Understanding of Kinetic Processes in Solar Wind and Magnetosphere: From CLUSTER to MMS)
References in corpus (24)
- Kinetic Simulations of Magnetized Turbulence in Astrophysical Plasmas
- Recent progress in astrophysical plasma turbulence from solar wind observations
- Evidence for Electron Landau Damping in Space Plasma Turbulence
- Solar wind turbulent spectrum at plasma kinetic scales
- Nature of Kinetic Scale Turbulence in the Earth's Magnetosheath
- Magnetic reconnection as a driver for a sub-ion scale cascade in plasma turbulence
- On the Existence of the Kolmogorov Inertial Range in the Terrestrial Magnetosheath Turbulence
- Simulations of Electron Magnetohydrodynamic Turbulence
- Multiscale nature of the dissipation range in gyrokinetic simulations of Alfvénic turbulence
- Gyrokinetic turbulence: a nonlinear route to dissipation through phase space
- Collisionless Reconnection in Magnetohydrodynamic and Kinetic Turbulence
- Magnetosperic Multiscale (MMS) observation of plasma velocity-space cascade: Hermite representation and theory
- Hybrid-Kinetic Simulations of Ion Heating in Alfvénic Turbulence
- Magnetohydrodynamic turbulence mediated by reconnection
- Kinetic cascade in solar-wind turbulence: 3D3V hybrid-kinetic simulations with electron inertia
- Intermittency of Solar Wind Density Fluctuations From Ion to Electron Scales
- Fully kinetic versus reduced-kinetic modelling of collisionless plasma turbulence
- The Structure of Plasma Heating in Gyrokinetic Alfvénic Turbulence
- Nonlinear and Linear Timescales near Kinetic Scales in Solar Wind Turbulence
- On the statistical properties of turbulent energy transfer rate in the inner Heliosphere
- A solvable model of Vlasov-kinetic plasma turbulence in Fourier-Hermite phase space
- Transition to kinetic turbulence at proton scales driven by large-amplitude Kinetic Alfvèn fluctuations
- Anisotropies of the magnetic field fluctuations at kinetic scales in the solar wind : Cluster observations
- Vlasov simulations of Kinetic Alfvén Waves at proton kinetic scales
Cited by in corpus (15)
- Anisotropy of Solar-Wind Turbulence in the Inner Heliosphere at Kinetic Scales: PSP Observations
- On stochastic heating and its phase-space signatures in low- kinetic turbulence
- Three-dimensional magnetic reconnection in particle-in-cell simulations of anisotropic plasma turbulence
- Observational quantification of three-dimensional anisotropies and scalings of space plasma turbulence at kinetic scales
- Statistical Properties of Turbulent Fluctuations Associated with Electron-only Magnetic Reconnection
- Characterizing current structures in 3D hybrid-kinetic simulations of plasma turbulence
- Space-filter techniques for quasi-neutral hybrid-kinetic models
- Turbulent regimes in collisions of 3D Alfvén-wave packets
- Importance of accurate consideration of the electron inertia in hybrid-kinetic simulations of collisionless plasma turbulence: 1. The 2D limit
- Multi-time structure functions and the Lagrangian scaling of turbulence
- Electron inertia effects in 3D hybrid-kinetic collisionless plasma turbulence
- Revisiting the role of cosmic-ray driven Alfvén waves in pre-existing magnetohydrodynamic turbulence. I. Turbulent damping rates and feedback on background fluctuations
- Effects of the Background Turbulence on the Relaxation of Ion Temperature Anisotropy in Space Plasmas
- Preferential acceleration of heavy ions in magnetic reconnection: Hybrid-kinetic simulations with electron inertia
- Anisotropic electron heating in turbulence-driven magnetic reconnection in the near-Sun solar wind