English

One dimensional PIC simulation of relativistic Buneman instability

Plasma Physics 2016-06-13 v1

Abstract

Spatio-temporal evolution of the relativistic Buneman instability has been investigated in one dimension using an in-house developed particle-in-cell simulation code. Starting from the excitation of the instability, its evolution has been followed numerically till its quenching and beyond. As compared to the well understood non-relativistic case, it is found that the maximum growth rate (γmax\gamma_{max}) reduces due to relativistic effects and varies with γe0\gamma_{e0} and m/M as γmax32γe0\biglb(m2M\bigrb)1/3\gamma_{max} \sim \frac{\sqrt{3}}{2\sqrt{\gamma_{e0}}}\biglb(\frac{m}{2M}\bigrb)^{1/3}, where γe0\gamma_{e0} is Lorentz factor associated with the initial electron drift velocity (v0v_{0}) and (m/M) is the electron to ion mass ratio. Further it is observed that in contrast to the non-relativistic results[Hirose,Plasma Phys. 20, 481(1978)] at the saturation point, ratio of electrostatic field energy density (kEk2/8π\sum\limits_{k} |E_{k}|^{2}/8\pi) to initial drift kinetic energy density (W0W_{0}) scales with γe0\gamma_{e0} as 1/γe02\sim 1/\gamma^{2}_{e0}. These simulation results are found to be in good agreement with that derived using fluid theory.

Keywords

Cite

@article{arxiv.1606.03178,
  title  = {One dimensional PIC simulation of relativistic Buneman instability},
  author = {Roopendra Singh Rajawat and Sudip Sengupta},
  journal= {arXiv preprint arXiv:1606.03178},
  year   = {2016}
}
R2 v1 2026-06-22T14:22:14.175Z