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Modelling of Reflective Propagating Slow-mode Wave in a Flaring Loop

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arxiv 1509.04536 v1 pith:3N62TOWZ submitted 2015-09-15 astro-ph.SR

Modelling of Reflective Propagating Slow-mode Wave in a Flaring Loop

classification astro-ph.SR
keywords propagatingintensitywavesloopreflectedslowsolaraverage
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Quasi-periodic propagating intensity disturbances have been observed in large coronal loops in EUV images over a decade, and are widely accepted to be slow magnetosonic waves. However, spectroscopic observations from Hinode/EIS revealed their association with persistent coronal upflows, making this interpretation debatable. We perform a 2.5D magnetohydrodynamic simulation to imitate the chromospheric evaporation and the following reflected patterns in a flare loop. Our model encompasses the corona, transition region, and chromosphere. We demonstrate that the quasi periodic propagating intensity variations captured by the synthesized \textit{Solar Dynamics Observatory}/Atmospheric Imaging Assembly (AIA) 131, 94~\AA~emission images match the previous observations well. With particle tracers in the simulation, we confirm that these quasi periodic propagating intensity variations consist of reflected slow mode waves and mass flows with an average speed of 310 km/s in an 80 Mm length loop with an average temperature of 9 MK. With the synthesized Doppler shift velocity and intensity maps of the \textit{Solar and Heliospheric Observatory}/Solar Ultraviolet Measurement of Emitted Radiation (SUMER) Fe XIX line emission, we confirm that these reflected slow mode waves are propagating waves.

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    Fifteen sloshing oscillations in seven coronal loops, triggered by successive C- and M-class flares, show periods of 5–10 minutes and damping times that do not always follow the cooler-channel-longer-damping pattern.