Cycle dependence of helioseismic oscillations above the acoustic cut-off frequency
Dmitrii Kolotkov, Anne-Marie Broomhall, Laura Jade Millson, Sergey Belov

TL;DR
This paper models the formation and solar-cycle variability of helioseismic pseudomodes above the acoustic cut-off frequency using an analytical cavity model, revealing their potential as diagnostics for subsurface solar changes.
Contribution
It introduces an analytical Klein-Gordon cavity model to explain pseudomode formation and their solar-cycle related frequency shifts, linking subsurface excitation and atmospheric cut-off effects.
Findings
Model reproduces observed pseudomode spectrum
Solar-cycle modulations cause anti-phase frequency shifts
Variations in cut-off frequency produce harmonic-dependent shifts
Abstract
Helioseismic and recent asteroseismic observations reveal fine structure in the power spectrum with alternating peaks and troughs above the acoustic cut-off frequency. This structure is interpreted as the interference patterns of high-frequency acoustic waves excited in the solar interior and propagating into the atmosphere, known as pseudomodes. Pseudomodes exhibit clear solar-cycle variability, with frequency shifts that occur predominantly in anti-phase with the activity cycle, although the underlying mechanism remains uncertain. This work investigates how the subsurface excitation source location and the photospheric acoustic cut-off frequency influence the formation, frequency distribution, and solar-cycle variability of pseudomodes. We employ an analytical Klein-Gordon subsurface cavity model, which is shown to act as an effective Fabry-P\'erot interferometer for high-frequency…
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Taxonomy
TopicsSolar and Space Plasma Dynamics · Stellar, planetary, and galactic studies · Ionosphere and magnetosphere dynamics
