Dynamical Systems' approach to relativistic nonlinear wave-particle interaction in weakly collisional plasmas
A. Osmane, A.M. Hamza

TL;DR
This paper applies a dynamical systems approach to analyze relativistic wave-particle interactions in plasmas, revealing how wave obliquity influences particle dynamics and potential acceleration mechanisms relevant to space and cosmic plasmas.
Contribution
It introduces a novel dynamical systems framework to study relativistic nonlinear wave-particle interactions, emphasizing the effects of wave obliquity and resonance phenomena.
Findings
Wave obliquity significantly affects particle dynamics.
Hopf bifurcations lead to trapping and surfatron acceleration.
Conditions for Arnold diffusion and stochastic acceleration are identified.
Abstract
In this report, we present a dynamical systems' approach to study the exact nonlinear wave-particle interaction in relativistic regime. We give a particular attention to the effect of wave obliquity on the dynamics of the orbits by studying the specific cases of parallel () and perpendicular () propagations in comparison to the general case of oblique propagation . We found that the fixed points of the system correspond to Landau resonance, and that the dynamics can evolve from trapping to surfatron acceleration for propagation angles obeying a Hopf bifurcations condition. Cyclotron-resonant particles are also studied by the construction of a pseudo-potential structure in the Lorentz factor . We derived a condition for which Arnold diffusion results in relativistic stochastic acceleration. Hence, two general conclusions are drawn : 1)…
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Taxonomy
TopicsSolar and Space Plasma Dynamics · Cold Atom Physics and Bose-Einstein Condensates · Ionosphere and magnetosphere dynamics
