Bursty acceleration and 3D trajectories of electrons in a solar flare
arXiv:2502.16307 · doi:10.1051/0004-6361/202451426
Abstract
During a solar flare, electrons are accelerated to non-thermal energies as a result of magnetic reconnection. These electrons then propagate upwards and downwards from the energy release site along magnetic field lines and produce radio and X-ray emission. On 11 November 2022, an M5.1 solar flare was observed by the Spectrometer/Telescope for Imaging X-rays (STIX) on board Solar Orbiter together with various ground- and space-based radio instruments. The flare was associated with several fine hard X-ray (HXR) structures and a complex set of metric radio bursts (type III, J, and narrowband). By studying the evolution of X-ray, extreme ultraviolet, and radio sources, we aim to study the trajectories of the flare-accelerated electrons in the lower solar atmosphere and low corona. We used observations from the STIX on board Solar Orbiter to study the evolution of X-ray sources. Using radio imaging from the Nançay Radio heliograph (NRH) and the Newkirk density model, we constructed 3D trajectories of 14 radio bursts. Imaging of the HXR fine structures shows several sources at different times. The STIX and NRH imaging shows correlated changes in the location of the HXR and radio source at the highest frequency during the most intense impulsive period. Imaging and 3D trajectories of all the bursts show that electrons are getting accelerated at different locations and along several distinct field lines. The longitude and latitude extent of the trajectories are ~30 arcsec and ~ 152 arcsec. We find that the electrons producing HXR and radio emission have similar acceleration origins. Importantly, our study supports the scenario that the flare acceleration process is temporally and spatially fragmentary, and during each of these small-scale processes, the electron beams are injected into a very fibrous environment and produce complex HXR and radio emission.
References in corpus (10)
- The Solar Orbiter mission -- Science overview
- A Review of Solar Type III Radio Bursts
- Observational Evidence for Gentle Chromospheric Evaporation During the Impulsive Phase of a Solar Flare
- Large scale simulations of solar type III radio bursts: flux density, drift rate, duration and bandwidth
- Imaging Spectroscopy of Type U and J Solar Radio Bursts with LOFAR
- The Low-High-Low Trend of Type III Radio Burst Starting Frequencies and Solar Flare Hard X-rays
- Radio Diagnostics of Electron Acceleration Sites During the Eruption of a Flux Rope in the Solar Corona
- Coronal type III radio bursts and their X-ray flare and interplanetary type III counterparts
- First Results from the REAL-time Transient Acquisition backend (REALTA) at the Irish LOFAR station
- The Association of a J-burst with a Solar Jet