Velocity Characteristics of Evaporated Plasma Using Hinode/EIS
Ryan O. Milligan, Brian R. Dennis

TL;DR
This study uses Hinode/EIS and RHESSI data to analyze chromospheric evaporation during a solar flare, revealing detailed plasma flow velocities and challenging standard models with new observations of high-temperature downflows.
Contribution
It provides the first detailed measurement of plasma velocities across a wide temperature range during a flare, highlighting unexpected high-temperature downflows and their correlation with electron beam properties.
Findings
Upflow velocities scale with temperature, reaching >200 km/s in hot lines.
Downflows observed at higher temperatures than previously expected.
Electron beam energy flux exceeds the threshold for explosive evaporation.
Abstract
This paper presents a detailed study of chromospheric evaporation using the EUV Imaging Spectrometer (EIS) onboard Hinode in conjunction with HXR observations from RHESSI. The advanced capabilities of EIS were used to measure Doppler shifts in 15 emission lines covering the temperature range T=0.05-16 MK during the impulsive phase of a C-class flare on 2007 December 14. Blueshifts indicative of the evaporated material were observed in six emission lines from Fe XIV-XXIV (2-16 MK). Upflow velocity (v_up) was found to scale with temperature as v_up (km s^-1)~8-18 T (MK). Although the hottest emission lines, Fe XXIII and Fe XXIV, exhibited upflows of >200 km s^-1, their line profiles were found to be dominated by a stationary component in contrast to the predictions of the standard flare model. Emission from O VI-Fe XIII lines (0.5-1.5 MK) was found to be redshifted by v_down (km…
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Taxonomy
TopicsSolar and Space Plasma Dynamics · Ionosphere and magnetosphere dynamics · Laser-induced spectroscopy and plasma
