Nonlinear evolution of fluting oscillations in coronal flux tubes
Roberto Soler, Andrew Hillier

TL;DR
This study uses 3D ideal MHD simulations to explore the nonlinear behavior and damping mechanisms of fluting oscillations in coronal flux tubes, revealing their short-lived nature due to resonant absorption and instabilities.
Contribution
It provides the first detailed analysis of the nonlinear evolution and damping of fluting modes in coronal flux tubes with nonuniform boundaries using 3D MHD simulations.
Findings
Fluting modes are short-lived and quickly damped.
Resonant absorption overdamps fluting oscillations.
Shear flows induce Kelvin-Helmholtz and Rayleigh-Taylor instabilities.
Abstract
Magnetic flux tubes in the solar corona support a rich variety of transverse oscillations, which are theoretically interpreted as magnetohydrodynamic (MHD) modes with a fast and/or Alfv\'enic character. In the standard flux tube model made of a straight cylindrical tube, these modes can be classified according to their azimuthal wavenumber, . Sausage modes produce periodic expansion and contraction of the tube cross section and are observed during solar flares. Kink modes laterally displace the tube axis and are related to, for example, post-flare global transverse oscillations of coronal loops. Fluting modes produce disturbances that are mainly confined to the tube boundary, but their observation remains elusive to date. We use 3D ideal MHD numerical simulations to investigate the nonlinear evolution of fluting modes in coronal flux tubes with transversely…
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Taxonomy
TopicsSolar and Space Plasma Dynamics
