SH025-04
The interaction between pulsed electron beams and magnetized plasmas

Thursday, 10 December 2020: 10:39
Virtual
Gian Luca Delzanno1, Vadim Roytershteyn2, Quinn Marksteiner1, Leanne Delma Duffy3, Nikolai Yampolsky1 and Kateryna Yakymenko4, (1)Los Alamos National Laboratory, Los Alamos, NM, United States, (2)Space Science Institute, Boulder, CO, United States, (3)Los Alamos National Laboratory, AOT-AE, Los Alamos, NM, United States, (4)Institute Geospheres Dynamics, Moscow, Russia
Abstract:
The recent development of compact relativistic accelerators might open up a new era of active experiments in space, driven by important scientific and national security applications. Examples include using electron beams to trace magnetic field lines and establish causality between physical processes occurring in the magnetosphere and those in the ionosphere. Another example is the use of electron beams to trigger waves in the near-Earth environment. Waves could induce pitch-angle scattering and precipitation of energetic electrons, acting as an effective radiation belt remediation scheme.

In this work, we revisit the coupling between an electron beam and a magnetized plasma in the framework of cold-plasma theory. We show that coupling can occur through two different regimes. In the first, a non-relativistic beam radiates through whistler waves. This is well known, and was in fact the focus of many rockets and space-shuttle campaigns aimed at demonstrating whistler emissions in the eighties. In the second regime, the beam radiates through extraordinary (X) modes. Nonlinear simulations with a highly-accurate Vlasov code support the theoretical results qualitatively and demonstrate that the radiated power through X modes can be much larger than in the whistler regime. Test-particle simulations in the wave electromagnetic field will also be presented to assess the efficiency of these waves in inducing pitch-angle scattering via wave-particle interactions. Finally, these results will be discussed in the context of broader space physics applications.