English

Two-dimensional PIC simulations of ion-beam instabilities in Supernova-driven plasma flows

Astrophysics 2017-08-02 v1

Abstract

Supernova remnant (SNR) blast shells can reach the flow speed vs=0.1cv_s = 0.1 c and shocks form at its front. Instabilities driven by shock-reflected ion beams heat the plasma in the foreshock, which may inject particles into diffusive acceleration. The ion beams can have the speed vbvsv_b \approx v_s. For vbvsv_b \ll v_s the Buneman or upper-hybrid instabilities dominate, while for vbvsv_b \gg v_s the filamentation and mixed modes grow faster. Here the relevant waves for vbvsv_b \approx v_s are examined and how they interact nonlinearly with the particles. The collision of two plasma clouds at the speed vsv_s is modelled with particle-in-cell (PIC) simulations, which convect with them magnetic fields oriented perpendicular to their flow velocity vector. One simulation models equally dense clouds and the other one uses a density ratio of 2. Both simulations show upper-hybrid waves that are planar over large spatial intervals and that accelerate electrons to \sim 10 keV. The symmetric collision yields only short oscillatory wave pulses, while the asymmetric collision also produces large-scale electric fields, probably through a magnetic pressure gradient. The large-scale fields destroy the electron phase space holes and they accelerate the ions, which facilitates the formation of a precursor shock.

Keywords

Cite

@article{arxiv.0804.2677,
  title  = {Two-dimensional PIC simulations of ion-beam instabilities in Supernova-driven plasma flows},
  author = {M. E. Dieckmann and A. Meli and P. K. Shukla and L. O. C. Drury and A. Mastichiadis},
  journal= {arXiv preprint arXiv:0804.2677},
  year   = {2017}
}

Comments

15 pages, 11 figures, accepted for publication in Plasma Physics and Controlled Fusion

R2 v1 2026-06-21T10:31:46.480Z