Dependence of kinetic plasma waves on ion-to-electron mass ratio and light-to-Alfvén speed ratio
arXiv:2004.01676 · doi:10.1093/mnras/staa977
Abstract
The magnetization is an important parameter in plasma astrophysics, where and are the electron gyro-frequency and electron plasma frequency, respectively. It only depends on the mass ratio and the light-to-Alfvén speed ratio , where () is the ion (electron) mass, is the speed of light, and is the ion Alfvén speed. Nonlinear numerical plasma models such as particle-in-cell simulations must often assume unrealistic values for and for . Because linear theory yields exact results for parametric scalings of wave properties at small amplitudes, we use linear theory to investigate the dispersion relations of Alfvén/ion-cyclotron and fast-magnetosonic/whistler waves as prime examples for collective plasma behaviour depending on and . We analyse their dependence on and in quasi-parallel and quasi-perpendicular directions of propagation with respect to the background magnetic field for a plasma with , where is the ratio of the thermal to magnetic pressure for species . Although their dispersion relations are largely independent of for , the mass ratio has a strong effect at scales smaller than the ion inertial length. Moreover, we study the impact of relativistic electron effects on the dispersion relations. Based on our results, we recommend aiming for a more realistic value of than for a more realistic value of in non-relativistic plasma simulations if such a choice is necessary, although
8 pages, 8 figures. Accepted for publication in MNRAS
References in corpus (9)
- Nature of Kinetic Scale Turbulence in the Earth's Magnetosheath
- Predicted Impacts of Proton Temperature Anisotropy on Solar Wind Turbulence
- Kinetic cascade in solar-wind turbulence: 3D3V hybrid-kinetic simulations with electron inertia
- Kinetic cascade beyond magnetohydrodynamics of solar wind turbulence in two-dimensional hybrid simulations
- Relativistic magnetic reconnection in collisionless ion-electron plasmas explored with particle-in-cell simulations
- The energetics of relativistic magnetic reconnection: ion-electron repartition and particle distribution hardness
- Kinetic plasma turbulence: recent insights and open questions from 3D3V simulations
- Vlasov simulations of Kinetic Alfvén Waves at proton kinetic scales
- PIC simulation of a shock tube: Implications for wave transmission in the heliospheric boundary region