Particle acceleration by circularly and elliptically polarised dispersive Alfven waves in a transversely inhomogeneous plasma in the inertial and kinetic regimes
D. Tsiklauri (Queen Mary University of London)

TL;DR
This study investigates how dispersive Alfvén waves with different polarizations in inhomogeneous plasma can efficiently accelerate particles, revealing polarization-dependent effects and the role of Landau damping in solar flare contexts.
Contribution
It demonstrates the impact of wave polarization and plasma regimes on particle acceleration efficiency using 2.5D PIC simulations, highlighting new polarization effects and acceleration mechanisms.
Findings
Electron acceleration reaches ~20-35% depending on conditions.
Polarization influences the formation of electron and ion beams.
Parallel electric fields exceed Dreicer value by 8 orders of magnitude.
Abstract
Dispersive Alfven waves (DAWs) offer, an alternative to magnetic reconnection, opportunity to accelerate solar flare particles. We study the effect of DAW polarisation, L-, R-, circular and elliptical, in different regimes inertial and kinetic on the efficiency of particle acceleration. We use 2.5D PIC simulations to study how particles are accelerated when DAW, triggered by a solar flare, propagates in transversely inhomogeneous plasma that mimics solar coronal loop. (i) In inertial regime, fraction of accelerated electrons (along the magnetic field), in density gradient regions is ~20% by the time when DAW develops 3 wavelengths and is increasing to ~30% by the time DAW develops 13 wavelengths. In all considered cases ions are heated in transverse to the magnetic field direction and fraction of the heated particles is ~35%. (ii) The case of R-circular, L- and R- elliptical…
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Taxonomy
TopicsSolar and Space Plasma Dynamics · Ionosphere and magnetosphere dynamics · Magnetic confinement fusion research
