English

Diagnosing collisionless energy transfer using field-particle correlations: Alfven-Ion Cyclotron Turbulence

Plasma Physics 2020-08-26 v1 Solar and Stellar Astrophysics Space Physics

Abstract

We apply field-particle correlations -- a technique that tracks the time-averaged velocity-space structure of the energy density transfer rate between electromagnetic fields and plasma particles -- to data drawn from a hybrid Vlasov-Maxwell simulation of Alfv\'en Ion-Cyclotron turbulence. Energy transfer in this system is expected to include both Landau and cyclotron wave-particle resonances, unlike previous systems to which the field-particle correlation technique has been applied. In this simulation, the energy transfer rate mediated by the parallel electric field EE_\parallel comprises approximately 60%60\% of the total rate, with the remainder mediated by the perpendicular electric field EE_\perp. The parallel electric field resonantly couples to protons, with the canonical bipolar velocity-space signature of Landau damping identified at many points throughout the simulation. The energy transfer mediated by EE_\perp preferentially couples to particles with vtpv3vtpv_{tp} \lesssim v_\perp \lesssim 3 v_{tp} in agreement with the expected formation of a cyclotron diffusion plateau. Our results demonstrate clearly that the field-particle correlation technique can distinguish distinct channels of energy transfer using single-point measurements, even at points in which multiple channels act simultaneously, and can be used to determine quantitatively the rates of particle energization in each channel.

Keywords

Cite

@article{arxiv.2006.02563,
  title  = {Diagnosing collisionless energy transfer using field-particle correlations: Alfven-Ion Cyclotron Turbulence},
  author = {Kristopher G. Klein and Gregory G. Howes and Jason M. TenBarge and Francesco Valentini},
  journal= {arXiv preprint arXiv:2006.02563},
  year   = {2020}
}

Comments

32 pages, 14 figures, accepted for publication in Journal of Plasma Physics