Physical Regimes of Electrostatic Wave-Wave nonlinear interactions generated by an Electron Beam Propagating in a Background Plasma
Haomin Sun, Jian Chen, Igor D. Kaganovich, Alexander Khrabrov, Dmytro, Sydorenko

TL;DR
This paper classifies different physical regimes of electron beam and plasma interactions, introduces a new strong turbulence regime with Electron Modulational Instability, and analyzes their distinct nonlinear wave processes through simulations and theory.
Contribution
It identifies and characterizes a novel strong turbulence regime with Electron Modulational Instability in beam-plasma interactions, expanding understanding beyond traditional theories.
Findings
Confirmation of wave-trapping saturation in two-stream instability
Identification of a new Electron Modulational Instability regime
Observation of broadening of Langmuir wave spectrum and electron heating
Abstract
Electron-beam plasma interaction has long been a topic of great interest. Despite the success of Quasi-Linear (QL) theory and Weak Turbulence (WT) theory, their validities are limited by the requirement of sufficiently dense mode spectrum and small wave amplitude. In this paper, we extensively studied the collective processes of a mono-energetic electron beam emitted from a thermionic cathode propagating through a cold plasma by performing a large number of high resolution two-dimensional (2D) particle-in-cell (PIC) simulations and using analytical theories. We confirm that the initial stage of two-stream instability is saturated due to well-known wave-trapping mechanism. Further evolution occurs due to strong wave-wave nonlinear processes. We show that the beam-plasma interaction can be classified into four different physical regimes in the parameter space for the plasma and beam…
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