Observational signatures of transverse MHD waves and associated dynamic instabilities
Patrick Antolin, Ineke De Moortel, Tom Van Doorsselaere, Takaaki, Yokoyama

TL;DR
This study uses 3D MHD simulations to identify observational signatures of transverse waves and instabilities in coronal loops, revealing how different processes affect wave detection and energy estimates in the solar atmosphere.
Contribution
It provides new insights into how Kelvin-Helmholtz instability, resonant absorption, and phase mixing influence observable signatures of transverse MHD waves in coronal loops.
Findings
Detection signatures include intensity modulation and fine strand structures.
Resonant absorption reduces observed kinetic energy significantly.
Hidden wave energy is estimated to be 5-10 times the observed energy.
Abstract
MHD waves permeate the solar atmosphere and constitute potential coronal heating agents. Yet, the waves detected so far may be but a small subset of the true existing wave power. Detection is limited by instrumental constraints, but also by wave processes that localise the wave power in undetectable spatial scales. In this study we conduct 3D MHD simulations and forward modelling of standing transverse MHD waves in coronal loops with uniform and non-uniform temperature variation in the perpendicular cross-section. The observed signatures are largely dominated by the combination of the Kelvin-Helmholtz instability (KHI), resonant absorption and phase mixing. In the presence of a cross-loop temperature gradient we find that emission lines sensitive to the loop core catch different signatures than those more sensitive to the loop boundary and the surrounding corona, leading to an…
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Taxonomy
TopicsSolar and Space Plasma Dynamics · Ionosphere and magnetosphere dynamics · Geomagnetism and Paleomagnetism Studies
