Unveiling the Velocity-Space Signature of Ion Cyclotron Damping Using Liouville Mapping
Rui Huang, Gregory G. Howes

TL;DR
This paper introduces a combined Liouville mapping and field-particle correlation method to identify and analyze the velocity-space signatures of ion cyclotron damping, enhancing understanding of wave-particle interactions in plasmas.
Contribution
It develops a novel, efficient approach to detect ion cyclotron damping signatures in velocity space, validated against known Landau damping patterns and applied to ion cyclotron waves.
Findings
Identified quadrupolar pattern in perpendicular velocity space.
Localized energization near the n=1 resonant velocity.
Minimal dependence of signatures on ion plasma beta _i.
Abstract
Ion cyclotron damping is a key mechanism for the dissipation of electromagnetic wave energy in weakly collisional plasmas. This study presents a combined approach using Liouville mapping and the field-particle correlation technique to investigate qualitatively and quantitatively the velocity-space signature of ion cyclotron damping. Liouville mapping offers a computationally efficient way to predict perturbations to the particle velocity distribution function using single-particle trajectories in prescribed electromagnetic fields. One may apply the field-particle correlation technique to these perturbed velocity distributions to reveal the unique velocity-space signatures of the secular energy transfer rate associated with specific wave-particle interactions. We validate this method by reproducing known Landau damping signatures for kinetic Alfv\'en waves, and then we apply this method…
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