Particle acceleration by counter-propagating circularly polarized Alfvén waves
arXiv:2204.06707 · doi:10.3847/1538-4357/acbb6d
Abstract
Counterpropagating Alfvén waves are ubiquitously observed in many astrophysical environments, such as a star surface and a planetary foreshock. We discuss an efficient particle acceleration mechanism in two counterpropagating circularly polarized Alfvén waves. Phase transitions of particle behavior occur when wave amplitudes exceed two critical values. Above the critical amplitudes, the numerical simulation shows that any particles irreversibly gain relativistic energy within a short time regardless of their initial position and energy once the coherent waveform is formed. The accelerated particles have spatial coherence. Higher wave phase velocity requires smaller critical amplitudes, while the maximum attainable energy increases as the wavenumber and the frequency decrease. The results may be applicable in some astrophysical phenomena, as well as a future laboratory experiment using high-power lasers.
References in corpus (5)
- Three-dimensional simulation of the fast solar wind driven by compressible magnetohydrodynamic turbulence
- Mildly relativistic magnetized shocks in electron-ion plasmas -- II. Particle acceleration and heating
- Broadening of Cyclotron Resonance Conditions in the Relativistic Interaction of an Intense Laser with Overdense Plasmas
- Thermonuclear Fusion Triggered by Collapsing Standing Whistler Waves in Magnetized Overdense Plasmas
- Ultrafast Wave-Particle Energy Transfer in the Collapse of Standing Whistler Waves