PIC Simulations of the Temperature Anisotropy-Driven Weibel Instability: Analyzing the perpendicular mode
arXiv:1006.3057 · doi:10.1088/0741-3335/52/8/085009
Abstract
An instability driven by the thermal anisotropy of a single electron species is investigated in a 2D particle-in-cell (PIC) simulation. This instability is the one considered by Weibel and it differs from the beam driven filamentation instability. A comparison of the simulation results with analytic theory provides similar exponential growth rates of the magnetic field during the linear growth phase of the instability. We observe in accordance with previous works the growth of electric fields during the saturation phase of the instability. Some components of this electric field are not accounted for by the linearized theory. A single-fluid-based theory is used to determine the source of this nonlinear electric field. It is demonstrated that the magnetic stress tensor, which vanishes in a 1D geometry, is more important in this 2-dimensional model used here. The electric field grows to an amplitude, which yields a force on the electrons that is comparable to the magnetic one. The peak energy density of each magnetic field component in the simulation plane agrees with previous estimates. Eddy currents develop, which let the amplitude of the third magnetic field component grow, which is not observed in a 1D simulation.
accepted by Plasma Physics and Controlled Fusion
References in corpus (4)
- PIC simulations of the Thermal Anisotropy-Driven Weibel Instability: Field growth and phase space evolution upon saturation
- Nonlinear Kinetic Development of the Weibel Instability and the generation of electrostatic coherent structures
- Growth rates of the Weibel and tearing mode instabilities in a relativistic pair plasma
- The filamentation instability driven by warm electron beams: Statistics and electric field generation
Cited by in corpus (4)
- Impact of continuous particle injection on generation and decay of the magnetic field in collisionless shocks
- Particle simulation study of electron heating by counterstreaming ion beams ahead of supernova remnant shocks
- PIC simulation of a thermal anisotropy-driven Weibel instability in a circular rarefaction wave
- Magnetic instability in a dilute circular rarefaction wave