Contributions to the linear and non-linear theory of the beam-plasma interaction
Nakia Carlevaro, Matteo Del Prete, Giovanni Montani, Fabio Squillaci

TL;DR
This paper refines the understanding of beam-plasma interactions by analyzing linear and non-linear dynamics, including return currents and friction effects, revealing subtle behaviors relevant to nonlinear wave-particle phenomena.
Contribution
It introduces improved models for beam-plasma instability, accounting for return currents and friction, enhancing the accuracy of growth rate and saturation level predictions.
Findings
Return current reduces saturation levels and growth rates.
Friction causes resonance detuning and distribution function deformation.
Subtleties in dynamics are crucial for understanding nonlinear wave-particle interactions.
Abstract
We focus our attention on some relevant aspects of the beam-plasma instability in order to refine some features of the linear and non-linear dynamics. After a re-analysis of the Poisson equation and of the assumption dealing with the background plasma in the form of a linear dielectric, we study the non-perturbative properties of the linear dispersion relation, showing the necessity for a better characterization of the mode growth rate in those flat regions of the distribution function where the Landau formula is no longer predictive. We then upgrade the original N-body approach, in order to include a return current in the background plasma. This correction term is responsible for smaller saturation levels and growth rates of the Langmuir modes, as result of the energy density transferred to the plasma via the return current. Finally, we include friction effects, as those due to the…
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