Physical Review Letters · 2011 · 244 citations · 26 references
EngineeringIon Entropy CascadeTurbulenceSolar-terrestrial InteractionSpace Plasma PhysicSolar PhysicGyrokinetic SimulationsPlasma SimulationMagnetohydrodynamicsSolar WindPlasma TurbulencePhysicsCosmic RayElectromagnetic Turbulence SimulationSpace WeatherMagnetospheric PlasmaElectron ScalesAerospace EngineeringTurbulence ModelingAerodynamicsSolar Wind Turbulence
A three-dimensional, nonlinear gyrokinetic simulation of plasma turbulence resolving scales from the ion to electron gyroradius with a realistic mass ratio is presented, where all damping is provided by resolved physical mechanisms. The resulting energy spectra are quantitatively consistent with a magnetic power spectrum scaling of k(-2.8) as observed in in situ spacecraft measurements of the "dissipation range" of solar wind turbulence. Despite the strongly nonlinear nature of the turbulence, the linear kinetic Alfvén wave mode quantitatively describes the polarization of the turbulent fluctuations. The collisional ion heating is measured at subion-Larmor radius scales, which provides evidence of the ion entropy cascade in an electromagnetic turbulence simulation.
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Kinetic Physics of the Solar Corona and Solar Wind
E. Marsch · Living Reviews in Solar Physics · 2006 · 693 citations · Full text