Decomposing wave activity in the solar atmosphere: Shocks, jets and swirls in the quiet Sun
arXiv:2509.11179 · doi:10.1051/0004-6361/202557226
Abstract
Context. There remains much mystery about how or if wave-energy in the photosphere can be transferred sufficiently upwards through the solar atmosphere to contribute to coronal heating. In light of a plethora of theoretical and idealised studies, we must complement our understanding with realistic and self-driven simulations in order to confidently quantify such contributions. Aims. In this study we aim to connect the various environments from the photosphere to low corona and identify wave drivers, transitions and dissipation mechanisms. We will analyse the effects of the presence of twisted magnetic features and vortical flows on the transport of such wave modes as the structures evolve. Methods. We adopt the most significant frequency (MSF) decomposition method to trace wave activity through a 3D realistic quiet Sun simulation. We focus on vertical and temporal evolution, identifying wave sources and shifts in the dominant modes. Results. We identify two frequencies, at 3.5 and 5 mHz, that connect oscillations in the upper convection zone to the dynamics in the solar atmosphere. We see distinct differences in the absence and presence of swirling structures on the upwards propagation of these oscillations. Furthermore, we validate the use of the highest frequency MSFs as a proxy for the location of shocks in the chromosphere, and use the results to understand the connection between shocks and the propagation of oscillations in the upper atmosphere. We discuss the relation of energy transfer via shocks, mode conversion, and jets. Finally, we find the contribution of 3.5 and 5 mHz signals to the overall wave power in the domain to be significant, up to 50%.
References in corpus (8)
- On the generation of solar spicules and Alfvénic waves
- Alfvén Waves in the Structured Solar Corona
- Stirring the Base of the Solar Wind: On Heat Transfer and Vortex Formation
- Constraining the systematics of (acoustic) wave heating estimates in the solar chromosphere
- Particle acceleration in a shock wave propagating to an inhomogeneous medium
- Shock identification and classification in 2D MHD compressible turbulence -- Orszag-Tang vortex
- Chromosphere of the quiet sun -- I. Shock and current-sheet dynamics and heating
- Detection of wave activity within a realistic 3D MHD quiet sun simulation