English

Plasma turbulence at ion scales: a comparison between PIC and Eulerian hybrid-kinetic approaches

Plasma Physics 2017-05-24 v1 Solar and Stellar Astrophysics Space Physics

Abstract

Kinetic-range turbulence in magnetized plasmas and, in particular, in the context of solar-wind turbulence has been extensively investigated over the past decades via numerical simulations. Among others, one of the widely adopted reduced plasma model is the so-called hybrid-kinetic model, where the ions are fully kinetic and the electrons are treated as a neutralizing (inertial or massless) fluid. Within the same model, different numerical methods and/or approaches to turbulence development have been employed. In the present work, we present a comparison between two-dimensional hybrid-kinetic simulations of plasma turbulence obtained with two complementary approaches spanning about two decades in wavenumber - from MHD inertial range to scales well below the ion gyroradius - with a state-of-the-art accuracy. One approach employs hybrid particle-in-cell (HPIC) simulations of freely-decaying Alfv\'enic turbulence, whereas the other consists of Eulerian hybrid Vlasov-Maxwell (HVM) simulations of turbulence continuously driven with partially-compressible large-scale fluctuations. Despite the completely different initialization and injection/drive at large scales, the same properties of turbulent fluctuations at kρi1k_\perp\rho_i\gtrsim1 are observed. The system indeed self-consistently "reprocesses" the turbulent fluctuations while they are cascading towards smaller and smaller scales, in a way which actually depends on the plasma beta parameter. Small-scale turbulence has been found to be mainly populated by kinetic Alfv\'en wave (KAW) fluctuations for β1\beta\geq1, whereas KAW fluctuations are only sub-dominant for low-β\beta.

Keywords

Cite

@article{arxiv.1703.02443,
  title  = {Plasma turbulence at ion scales: a comparison between PIC and Eulerian hybrid-kinetic approaches},
  author = {S. S. Cerri and L. Franci and F. Califano and S. Landi and P. Hellinger},
  journal= {arXiv preprint arXiv:1703.02443},
  year   = {2017}
}

Comments

18 pages, 4 figures, accepted for publication in J. Plasma Phys. (Collection: "The Vlasov equation: from space to laboratory plasma physics")