English

A Dynamical Model of Plasma Turbulence in the Solar Wind

Solar and Stellar Astrophysics 2015-08-19 v1 Plasma Physics Space Physics

Abstract

A dynamical approach, rather than the usual statistical approach, is taken to explore the physical mechanisms underlying the nonlinear transfer of energy, the damping of the turbulent fluctuations, and the development of coherent structures in kinetic plasma turbulence. It is argued that the linear and nonlinear dynamics of Alfven waves are responsible, at a very fundamental level, for some of the key qualitative features of plasma turbulence that distinguish it from hydrodynamic turbulence, including the anisotropic cascade of energy and the development of current sheets at small scales. The first dynamical model of kinetic turbulence in the weakly collisional solar wind plasma that combines self-consistently the physics of Alfven waves with the development of small-scale current sheets is presented and its physical implications are discussed. This model leads to a simplified perspective on the nature of turbulence in a weakly collisional plasma: the nonlinear interactions responsible for the turbulent cascade of energy and the formation of current sheets are essentially fluid in nature, while the collisionless damping of the turbulent fluctuations and the energy injection by kinetic instabilities are essentially kinetic in nature.

Keywords

Cite

@article{arxiv.1502.04109,
  title  = {A Dynamical Model of Plasma Turbulence in the Solar Wind},
  author = {G. G. Howes},
  journal= {arXiv preprint arXiv:1502.04109},
  year   = {2015}
}

Comments

29 pages, 2 figures, 196 references, accepted for publication in Theme Issue on "Dissipation & Heating in Solar Wind Turbulence" in Philosophical Transactions of the Royal Society A