English

Large-scale Control of Kinetic Dissipation in the Solar Wind

Space Physics 2018-08-15 v1

Abstract

In this Letter we study the connection between the large-scale dynamics of the turbulence cascade and particle heating on kinetic scales. We find that the inertial range turbulence amplitude (δBi\delta B_i; measured in the range of 0.01-0.1 Hz) is a simple and effective proxy to identify the onset of significant ion heating and when it is combined with βp\beta_{||p}, it characterizes the energy partitioning between protons and electrons (Tp/TeT_p/T_e), proton temperature anisotropy (T/TT_{\perp}/T_{||}) and scalar proton temperature (TpT_p) in a way that is consistent with previous predictions. For a fixed δBi\delta B_i, the ratio of linear to nonlinear timescales is strongly correlated with the scalar proton temperature in agreement with Matthaeus et al., though for solar wind intervals with βp>1\beta_{||p}>1 some discrepancies are found. For a fixed βp\beta_{||p}, an increase of the turbulence amplitude leads to higher Tp/TeT_p/T_e ratios, which is consistent with the models of Chandran et al. and Wu et al. We discuss the implications of these findings for our understanding of plasma turbulence.

Keywords

Cite

@article{arxiv.1807.04773,
  title  = {Large-scale Control of Kinetic Dissipation in the Solar Wind},
  author = {Daniel Vech and Kristopher G. Klein and Justin C. Kasper},
  journal= {arXiv preprint arXiv:1807.04773},
  year   = {2018}
}

Comments

Accepted in ApJL