Verification of the standard theory of plasma emission with particle-in-cell simulations
arXiv:2209.11707 · doi:10.3847/1538-4357/ac94c6
Abstract
The standard theory of plasma emission is based on kinetic couplings between a single beam of energetic electrons and unmagnetized thermal plasmas, involving multi-step nonlinear wave-particle and wave-wave interactions. The theory has not yet been completely verified with fully-kinetic electromagnetic particle-in-cell (PIC) simulations. Earlier studies, greatly limited by available computational resources, are controversial regarding whether the fundamental emission can be generated according to the standard theory. To resolve the controversy, we conducted PIC simulations with a large domain of simulation and a large number of macroparticles, among the largest ones of similar studies. We found significant fundamental emission if the relative beam density is small enough (say, 0.01), in line with earlier study with a much-smaller domain; the relative intensity (normalized by the total initial beam energy) of all modes, except the mode associated with the beam-electromagnetic Weibel instability, decreases with increasing relative density of the beam. We also found significant transverse magnetic component associated with the superluminal Langmuir turbulence, which has been mistakenly regarded as evidence of the F emission in earlier study. Further investigations are required to reveal their origin.
References in corpus (7)
- A solar type II radio burst from CME-coronal ray interaction: simultaneous radio and EUV imaging
- Nonlinear Wave Interactions as Emission Process of Type II Radio Bursts
- How Electron Two-Stream Instability Drives Cyclic Langmuir Collapse and Continuous Coherent Emission
- An Eruptive Hot-Channel Structure Observed at Metric Wavelength as a Moving Type-IV Solar Radio Burst
- Plasma Emission Induced By Electron Beam in Weakly Magnetized Plasmas
- PIC Simulation of Double Plasma Resonance and Zebra Pattern of Solar Radio Bursts
- Harmonic ECME Excited by Energetic Electrons Travelling Inside A Coronal Loop