Nonlinear evolution of the magnetized Kelvin-Helmholtz instability: from fluid to kinetic modeling
arXiv:1310.7707 · doi:10.1063/1.4826214
Abstract
The nonlinear evolution of collisionless plasmas is typically a multi-scale process where the energy is injected at large, fluid scales and dissipated at small, kinetic scales. Accurately modelling the global evolution requires to take into account the main micro-scale physical processes of interest. This is why comparison of different plasma models is today an imperative task aiming at understanding cross-scale processes in plasmas. We report here the first comparative study of the evolution of a magnetized shear flow, through a variety of different plasma models by using magnetohydrodynamic, Hall-MHD, two-fluid, hybrid kinetic and full kinetic codes. Kinetic relaxation effects are discussed to emphasize the need for kinetic equilibriums to study the dynamics of collisionless plasmas in non trivial configurations. Discrepancies between models are studied both in the linear and in the nonlinear regime of the magnetized Kelvin-Helmholtz instability, to highlight the effects of small scale processes on the nonlinear evolution of collisionless plasmas. We illustrate how the evolution of a magnetized shear flow depends on the relative orientation of the fluid vorticity with respect to the magnetic field direction during the linear evolution when kinetic effects are taken into account. Even if we found that small scale processes differ between the different models, we show that the feedback from small, kinetic scales to large, fluid scales is negligable in the nonlinear regime. This study show that the kinetic modeling validates the use of a fluid approach at large scales, which encourages the development and use of fluid codes to study the nonlinear evolution of magnetized fluid flows, even in the colisionless regime.
References in corpus (1)
Cited by in corpus (26)
- Investigating Mercury's Environment with the Two-Spacecraft BepiColombo Mission
- Reconnection-driven particle acceleration in relativistic shear flows
- Nonequilibrium and morphological characterizations of Kelvin-Helmholtz instability in compressible flows
- Fully kinetic versus reduced-kinetic modelling of collisionless plasma turbulence
- Turbulent Dissipation Challenge: A community Driven Effort
- Fluid simulations of plasma turbulence at ion scales: comparison with Vlasov-Maxwell simulations
- North-South asymmetric Kelvin-Helmholtz instability and induced reconnection at the Earth's magnetospheric flanks
- Pressure tensor in the presence of velocity shear: stationary solutions and self-consistent equilibria
- Exact hybrid-Vlasov equilibria for sheared plasmas with in-plane and out-of-plane magnetic field
- PolyPIC: the Polymorphic-Particle-in-Cell Method for Fluid-Kinetic Coupling
- Bridging hybrid- and full-kinetic models with Landau-fluid electrons: I. 2D magnetic reconnection
- Kelvin-Helmholtz instability at proton scales with an exact kinetic equilibrium
- Role of stable modes in driven shear-flow turbulence
- Electromagnetic Electron Kelvin-Helmholtz Instability
- Signatures of Secondary Collisionless Magnetic Reconnection Driven by Kink Instability of a Flux Rope
- Kinetic features for the identification of Kelvin-Helmholtz vortices in \textit{in situ} observations
- Can Hall effect trigger Kelvin-Helmholtz instability in sub-Alfvenic flows?
- Interplay between Kelvin-Helmholtz and Lower-Hybrid Drift instabilities
- Finite-Larmor-radius equilibrium and currents of the Earth's flank magnetopause
- Particle orbits at the magnetopause: Kelvin-Helmholtz induced trapping
- Exact hybrid-kinetic equilibria for magnetized plasmas with shearing flows
- Resistive instabilities in sinusoidal shear flows with a streamwise magnetic field
- Plasma Compressibility and the Generation of Electrostatic Electron Kelvin-Helmholtz Instability
- Transport of electrons in tangled magnetic fields
- Simultaneous Mars-orbit observations reveal Kelvin-Helmholtz instability-driven bulk atmospheric ion escape
- Optimal Landau-type closure parameters for two-fluid simulations of plasma turbulence at kinetic scales