Spectroscopic Observations of Supra-Arcade Downflows
Ryan J. French, Maria D. Kazachenko, Teodora Mihailescu, Katharine K. Reeves

TL;DR
This study presents new spectroscopic observations of Supra-Arcade Downflows (SADs) during a solar flare, revealing their velocities, temperatures, and potential shock-related divergence, thus advancing understanding of their origins.
Contribution
It provides the first detailed spectral analysis of SADs with modern instruments, linking Doppler velocities and temperatures to their physical nature and dynamics.
Findings
Measured Fe XXIV Doppler downflows exceeding surrounding velocities.
Determined electron temperatures within SADs similar to flare fan.
Identified divergence and possible shock signatures in SAD velocities.
Abstract
Despite their somewhat-frequent appearance in EUV imaging of off-limb flares, the origins of Supra-Arcade Downflows (SADs) remain a mystery. Appearing as dark, tendril-like downflows above growing flare loop arcades, SADs themselves are yet to be tied into the standard model of solar flares. The uncertainty of their origin is, in part, due to a lack of spectral observations, with the last published SAD spectral observations dating back to the Solar and Heliospheric Observatory / Solar Ultraviolet Measurements of Emitted Radiation (SOHO/SUMER) era in 2003. In this work, we present new observations of SADs within an M-class solar flare on April 2nd, 2022, observed by the Hinode EUV Imaging Spectrometer (EIS) and NASA Solar Dynamics Observatory. We measure Fe XXIV 192.02 Angstrom Doppler downflows and non-thermal velocities in the low-intensity SAD features, exceeding values measured in…
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Taxonomy
TopicsSolar and Space Plasma Dynamics · Fluid Dynamics and Turbulent Flows
