English

Energy transfer, pressure tensor and heating of kinetic plasma

Plasma Physics 2017-11-02 v1 Solar and Stellar Astrophysics Space Physics

Abstract

Kinetic plasma turbulence cascade spans multiple scales ranging from macroscopic fluid flow to sub-electron scales. Mechanisms that dissipate large scale energy, terminate the inertial range cascade and convert kinetic energy into heat are hotly debated. Here we revisit these puzzles using fully kinetic simulation. By performing scale-dependent spatial filtering on the Vlasov equation, we extract information at prescribed scales and introduce several energy transfer functions. This approach allows highly inhomogeneous energy cascade to be quantified as it proceeds down to kinetic scales. The pressure work, (P)u-\left( \boldsymbol{P} \cdot \nabla \right) \cdot \boldsymbol{u}, can trigger a channel of the energy conversion between fluid flow and random motions, which is a collision-free generalization of the viscous dissipation in collisional fluid. Both the energy transfer and the pressure work are strongly correlated with velocity gradients.

Keywords

Cite

@article{arxiv.1705.02054,
  title  = {Energy transfer, pressure tensor and heating of kinetic plasma},
  author = {Y. Yang and W. H. Matthaeus and T. N. Parashar and C. C. Haggerty and V. Roytershteyn and W. Daughton and M. Wan and Y. Shi and S. Chen},
  journal= {arXiv preprint arXiv:1705.02054},
  year   = {2017}
}

Comments

28 pages, 10 figures