Chromospheric Evaporation in an X1.0 Flare on 2014 March 29 Observed with IRIS and EIS
arXiv:1508.03927 · doi:10.1088/0004-637X/811/1/7
Abstract
Chromospheric evaporation refers to dynamic mass motions in flare loops as a result of rapid energy deposition in the chromosphere. These have been observed as blueshifts in X-ray and extreme-ultraviolet (EUV) spectral lines corresponding to upward motions at a few tens to a few hundreds of km/s. Past spectroscopic observations have also revealed a dominant stationary component, in addition to the blueshifted component, in emission lines formed at high temperatures (~10 MK). This is contradictory to evaporation models predicting predominant blueshifts in hot lines. The recently launched Interface Region Imaging Spectrograph (IRIS) provides high resolution imaging and spectroscopic observations that focus on the chromosphere and transition region in the UV passband. Using the new IRIS observations, combined with coordinated observations from the EUV Imaging Spectrometer, we study the chromospheric evaporation process from the upper chromosphere to corona during an X1.0 flare on 2014 March 29. We find evident evaporation signatures, characterized by Doppler shifts and line broadening, at two flare ribbons separating from each other, suggesting that chromospheric evaporation takes place in successively formed flaring loops throughout the flare. More importantly, we detect dominant blueshifts in the high temperature Fe XXI line (~10 MK), in agreement with theoretical predictions. We also find that, in this flare, gentle evaporation occurs at some locations in the rise phase of the flare, while explosive evaporation is detected at some other locations near the peak of the flare. There is a conversion from gentle to explosive evaporation as the flare evolves.
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References in corpus (11)
- Temporal evolution of multiple evaporating ribbon sources in a solar flare
- Imaging and spectroscopic observations of magnetic reconnection and chromospheric evaporation in a solar flare
- Observational Evidence for Gentle Chromospheric Evaporation During the Impulsive Phase of a Solar Flare
- The 2014 March 29 X-flare: sub-arcsecond resolution observations of Fe XXI 1354.1
- RHESSI Observation of Chromospheric Evaporation
- Spatially-Resolved Nonthermal Line Broadening During The Impulsive Phase of a Solar Flare
- Combined Modeling of Acceleration, Transport, and Hydrodynamic Response in Solar Flares: I. The Numerical Model
- The fast filament eruption leading to the X-flare on March 29, 2014
- Dynamics and evolution of an eruptive flare
- Evidence of Explosive Evaporation in a Microflare Observed by Hinode/EIS
- A Hot Microflare Observed With RHESSI and Hinode
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- Data-driven Radiative Hydrodynamic Modeling of the 2014 March 29 X1.0 Solar Flare
- Explosive Chromospheric Evaporation in a Circular-ribbon Flare
- Spectral signatures of chromospheric condensation in a major solar flare
- Chromospheric condensations and magnetic field in a C3.6-class flare studied via He I D3 spectro-polarimetry
- Probing the Physics of the Solar Atmosphere with the Multi-slit Solar Explorer (MUSE): II. Flares and Eruptions
- Blue wing enhancement of the chromospheric Mg II h and k lines in a solar flare
- Multi-episode chromospheric evaporation observed in a solar flare
- Detection of Flare-induced Plasma Flows in the Corona of EV Lac with X-ray Spectroscopy
- Possible detection of coronal mass ejections on late-type main-sequence stars in LAMOST medium-resolution spectra
- Non-damping oscillations at flaring loops
- Modeling Mg II h, k and Triplet Lines at Solar Flare Ribbons
- Non-Gaussian Velocity Distributions in Solar Flares from Extreme Ultraviolet Lines: A Possible Diagnostic of Ion Acceleration
- Effect of a Radiation Cooling and Heating Function on Standing Longitudinal Oscillations in Coronal Loops
- Doppler shift oscillations from a hot line observed by IRIS
- IRIS, Hinode, SDO, and RHESSI observations of a white light flare produced directly by non-thermal electrons
- Different Signatures of Chromospheric Evaporation in Two Solar Flares Observed with IRIS
- Observations and Modelling of the Pre-Flare Period of the 29 March 2014 X1 Flare
- Quantifying the Topology and Evolution of a Magnetic Flux Rope Associated with Multi-flare Activities
- Spectroscopic Observations of Magnetic Reconnection and Chromospheric Evaporation in an X-shaped Solar Flare
- IRIS Si IV Line Profiles at Flare Ribbons as Indications of Chromospheric Condensation
- Spectroscopic observations of a flare-related coronal jet
- Two-stage energy release process of a confined flare with double HXR peaks
- The Triggering of the 29-March-2014 Filament Eruption
- Observations of Electron-driven Evaporation during a Flare Precursor
- Relationship between chromospheric evaporation and magnetic field topology in M-class solar flare
- Statistical Study of Chromospheric Evaporation in Impulsive Phase of Solar Flares
- Diagnosing the Optically Thick/Thin Features Using the Intensity Ratio of Si IV Resonance Lines in Solar Flares
- Spectroscopic Diagnostics of Solar Magnetic Flux Ropes Using Iron Forbidden Line
- Energy Deposition by Energetic Electrons in a Diffusive Collisional Transport Model
- Alfvén Waves in Solar Flares
- Probing the spin of the central black hole in the galactic centre with secondary images
- Spectroscopic Observations of High-speed Downflows in a C1.7 Solar Flare
- Call and Response: A Time-Resolved Study of Chromospheric Evaporation in a Large Solar Flare
- Implications for additional plasma heating driving the extreme-ultraviolet late phase of a solar flare with microwave imaging spectroscopy
- Evolution of magnetic fields and energy release processes during homologous eruptive flares
- Homologous compact major blowout-eruption solar flares and their production of broad CMEs
- Case study on the identification and classification of small-scale flow patterns in flaring active region
- A new view of the solar interface region from the Interface Region Imaging Spectrograph (IRIS)
- Revisiting the Spectral Features of Ellerman Bombs and UV Bursts. I. Radiative Hydrodynamic Simulations