Omnipresent long-period intensity oscillations in open coronal structures
S. Krishna Prasad, D. Banerjee, T. Van Doorsselaere, J. Singh

TL;DR
This study investigates long-period intensity oscillations in open coronal structures, finding they are consistent with slow magneto-acoustic waves and are omnipresent at larger heights, with properties varying across different temperature channels.
Contribution
The paper provides observational evidence that long-period oscillations in coronal structures are predominantly caused by slow magneto-acoustic waves, supported by wavelet analysis and comparison with wave models.
Findings
Long-period oscillations are significant along coronal loops.
Propagation speeds are higher in hotter channels and decrease with distance.
Damping lengths are shorter in hotter channels, indicating acoustic dependence.
Abstract
Quasi-periodic propagating disturbances in coronal structures have been interpreted as slow magneto-acoustic waves and/or periodic upflows. Here we aim to understand their nature from the observed properties using a three-hour imaging sequence from AIA/SDO in two different temperature channels. We also compare the characteristics with a simple wave model. We searched for propagating disturbances in open-loop structures at three different locations; a fan loop-structure off-limb, an on-disk plume-like structure and the plume/interplume regions in the north pole of the sun. In each of the subfield regions chosen to cover these structures, the time series at each pixel location was subjected to wavelet analysis to find the different periodicities. We then constructed powermaps in three different period ranges. We also constructed space-time maps for the on-disk plume structure to estimate…
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