Correlated Spatiotemporal Evolution of Extreme-Ultraviolet Ribbons and Hard X-rays in a Solar Flare
arXiv:2109.15314 · doi:10.3847/1538-4357/ac4028
Abstract
We analyze the structure and evolution of ribbons from the M7.3 SOL2014-04-18T13 flare using ultraviolet (UV) images from IRIS and SDO/AIA, magnetic data from SDO/HMI, hard X-ray (HXR) images from RHESSI, and light curves from Fermi/GBM, in order to infer properties of coronal magnetic reconnection. As the event progresses, two flare ribbons spread away from the magnetic polarity inversion line. The width of the newly brightened front along the extension of the ribbon is highly intermittent in both space and time, presumably reflecting non-uniformities in the structure and/or dynamics of the flare current sheet. Furthermore, the ribbon width grows most rapidly in regions exhibiting concentrated non-thermal HXR emission, with sharp increases slightly preceding the HXR bursts. The light curve of the ultraviolet emission matches the HXR light curve at photon energies above 25 keV. In other regions the ribbon-width evolution and light curves do not temporally correlate with the HXR emission. This indicates that the production of non-thermal electrons is highly non-uniform within the flare current sheet. Our results suggest a strong connection between the production of non-thermal electrons and the locally enhanced perpendicular extent of flare ribbon fronts, which in turn reflects inhomogeneous structure and/or reconnection dynamics of the current sheet. Despite this variability, the ribbon fronts remain nearly continuous, quasi-one-dimensional features. Thus, although the reconnecting coronal current sheets are highly structured, they remain quasi-two-dimensional and the magnetic energy release occurs systematically, rather than stochastically, through the volume of reconnecting magnetic flux.
References in corpus (16)
- Impulsive phase flare energy transport by large-scale Alfven waves and the electron acceleration problem
- Evidence of Non-Thermal Particles in Coronal Loops Heated Impulsively by Nanoflares
- Measurement of magnetic field and relativistic electrons along a solar flare current sheet
- Electron Acceleration during Macroscale Magnetic Reconnection
- Temporal evolution of multiple evaporating ribbon sources in a solar flare
- The role of three-dimensional transport in driving enhanced electron acceleration during magnetic reconnection
- Observations of an Eruptive Solar Flare in the Extended EUV Solar Corona
- Spectral signatures of chromospheric condensation in a major solar flare
- Hot X-ray Onsets of Solar Flares
- The development of lower-atmosphere turbulence early in a solar flare
- The Ribbon-Like Hard X-Ray Emission in a Sigmoidal Solar Active Region
- A simple model of chromospheric evaporation and condensation driven conductively in a solar flare
- He I 10830 Å Dimming During Solar Flares, I. The Crucial Role of Non-Thermal Collisional Ionisations
- IRIS Observations of Spicules and Structures Near the Solar Limb
- Evidence of chromospheric molecular hydrogen emission in a solar flare observed by the IRIS satellite
- Oscillations in the 45-5000 MHz Radio Spectrum of the 18 April 2014 Flare
Cited by in corpus (9)
- Numerical Modeling of Energetic Electron Acceleration, Transport, and Emission in Solar Flares: Connecting Loop-top and Footpoint Hard X-Ray Sources
- Solar Flare Ribbon Fronts I: Constraining flare energy deposition with IRIS spectroscopy
- Properties and Energetics of Magnetic Reconnection: I. Evolution of Flare Ribbons
- Fine details in solar flare ribbons: Statistical insights from observations with the Swedish 1-m Solar Telescope
- Three-Dimensional Magnetic Reconnection Spreading in Current Sheets of Non-Uniform Thickness
- Coupling between magnetic reconnection, energy release, and particle acceleration in the X17.2 2003 October 28 solar flare
- Dual Origins of Rapid Flare Ribbon Downflows in an X9-class Solar Flare
- Small-Scale and Transient EUV Kernels in Solar Flare Ribbons
- Specialist Discussion Meeting: 3D structure of the flare chromosphere