Giant overreflection of magnetohydrodynamic waves from inhomogeneous plasmas with nonuniform shear flows
Seulong Kim, Kihong Kim

TL;DR
This paper theoretically investigates giant overreflection of magnetohydrodynamic waves in inhomogeneous plasmas with shear flows, revealing conditions for resonant amplification and potential observational implications in space plasmas.
Contribution
It introduces a detailed numerical analysis of wave overreflection in inhomogeneous plasmas with shear flows, highlighting the giant overreflection phenomenon and its underlying mechanism.
Findings
Maximum reflectance exceeds 10^5 in broad parameter ranges
Both fast and slow magnetosonic waves cause strong overreflection
Multiple resonances occur inside the plasma, affecting wave energy
Abstract
We study theoretically mode conversion and resonant overreflection of magnetohydrodynamic waves in an inhomogeneous plane-stratified plasma in the presence of a nonuniform shear flow, using precise numerical calculations of the reflection and transmission coefficients and the field distributions based on the invariant imbedding method. The cases where the flow velocity and the external magnetic field are directed perpendicularly to the inhomogeneity direction and both the flow velocity and the plasma density vary arbitrarily along it are considered. When there is a shear flow, the wave frequency is modulated locally by the Doppler shift and resonant amplification and overreflection occur where the modulated frequency is negative and its absolute value matches the local Alfv\'en or slow frequency. For many different types of the density and flow velocity profiles, we find that,…
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Taxonomy
TopicsIonosphere and magnetosphere dynamics · Solar and Space Plasma Dynamics · Geomagnetism and Paleomagnetism Studies
