Electron Weibel Instability in Relativistic Counter-Streaming Plasmas with Flow-Aligned External Magnetic Fields
arXiv:1612.03934 · doi:10.1103/PhysRevE.95.023203
Abstract
The Weibel instability driven by two symmetric counter-streaming relativistic electron plasmas, also referred to as current-filamentation instability, is studied in a constant and uniform external magnetic field aligned with the plasma flows. Both the linear and non linear stages of the instability are investigated using analytical modeling and Particle-In-Cell (PIC) simulations. While previous studies have already described the stabilizing effect of the magnetic field, we show here that the saturation stage is only weakly affected. The different mechanisms responsible for the saturation are discussed in detail in the relativistic cold fluid framework considering a single unstable mode. The application of an external field leads to a slighlt increase of the saturation level for large wavelengths, while it does not affect the small wavelengths. Multi-mode and temperature effects are then investigated. While at large temperature the saturation level is independent of the external magnetic field, at small but finite temperature the competition between different modes in the presence of an external magnetic field leads to a saturation level lower with respect to the unmagnetized case.
Submitted to Phys. Rev. E
References in corpus (3)
Cited by in corpus (8)
- Weibel instability in hot plasma flows with production of gamma-rays and electron-positron pairs
- Enhanced Magnetic Field Amplification by Ion-Beam Weibel Instability in Weakly Magnetized Astrophysical Shocks
- Electron Weibel instability and~quasi-magnetostatic structures in~an~expanding collisionless plasma
- Magnetic Field Amplification and Particle Acceleration in Weakly Magnetized Trans-relativistic Electron-ion Shocks
- Discontinuous Galerkin Representation of the Maxwell-Jüttner Distribution
- Dark plasmas in the nonlinear regime: constraints from particle-in-cell simulations
- Density filamentation nonlinearly driven by the Weibel instability in relativistic beam plasmas
- Electron penetration heating in turbulent magnetic loops driven by nonrelativistic laser-plasma interaction