Electron acceleration from the interaction of three crossed parallel Alfvén waves
arXiv:2203.02575 · doi:10.1017/S0022377822000125
Abstract
We study the non-linear interaction of three parallel Alfvén wave packets (AWP) in an initially uniform plasma using 2.5D particle-in-a-cell (PIC) numerical simulations. We aim to help to explain the observation of suprathermal electrons by multiple Alfvén waves collision in regions where these waves are trapped like IAR (Ionospheric Alfvén Resonator), Earth radiation belts or coronal magnetic loops. In the context of APAWI process that have been described by Mottez (2012, 2015), the interaction of two parallel Alfvén waves (AW) generates longitudinal density modulations and parallel electric field at the APAWI crossing region that can accelerate particles effectively in the direction of the background magnetic field. Our simulations show that when a third parallel AWP of different initial position arrives at the APAWI crossing region, it gives rise to a strong parallel electron beams () at longitudinal cavity density gradients. We suggest that velocity drift from outgoing AW generates interface waves in the transverse direction, which allows propagating waves to develop parallel electric fields by phase mixing process when the transverse scale of the wavy density gradient (oblique gradient) is in the range of the electron inertial length.
15 pages, 7 figures, Journal of Plasma Physics (2022) PLA2200012_R1
References in corpus (6)
- Impulsive phase flare energy transport by large-scale Alfven waves and the electron acceleration problem
- A nonlocal wave-wave interaction among Alfven waves in an intermediate-beta plasma
- A minimal model of parallel electric field generation in a transversely inhomogeneous plasma
- Physics of collisionless phase mixing
- Collisionless, phase-mixed, dispersive, Gaussian Alfven pulse in transversely inhomogeneous plasma
- Electron acceleration and small scale coherent structures formation by an Alfvén wave propagating in coronal interplume region