Shock-accelerated electrons during the fast expansion of a coronal mass ejection
arXiv:2211.06049 · doi:10.1051/0004-6361/202244432
Abstract
Context. Some of of the most prominent sources for energetic particles in our Solar System are huge eruptions of magnetised plasma from the Sun called coronal mass ejections (CMEs), which usually drive shocks that accelerate charged particles up to relativistic energies. In particular, energetic electron beams can generate radio bursts through the plasma emission mechanism. The main types of bursts associated with CME shocks are type II and herringbone bursts. However, it is currently unknown where early accelerated electrons that produce metric type II bursts and herringbones propagate and when they escape the solar atmosphere. Aims. Here, we investigate the acceleration location, escape, and propagation directions of electron beams during the early evolution of a strongly expanding CME-driven shock wave associated with herrinbgone bursts. Methods. We used ground-based radio observations from the Nançay Radioheliograph combined with space-based extreme-ultraviolet and white-light observations from the Solar Dynamics Observatory and and the Solar Terrestrial Relations Observatory. We produced a three-dimensional (3D) representation of the electron acceleration locations which, combined with results from magneto-hydrodynamic (MHD) models of the solar corona, was used to investigate the origin of the herringbone bursts observed. Results. Multiple herringbone bursts are found close to the CME flank in plane-of-sky images. Some of these herringbone bursts have unusual inverted J shapes and opposite drifting herringbones also show opposite senses of circular polarisation. By using a 3D approach combined with the radio properties of the observed bursts, we find evidence that the first radio emission in the CME eruption most likely originates from electrons that initially propagate in regions of low Alfvén speeds and along closed magnetic field lines forming a coronal streamer.
14 pages, 10 figures
References in corpus (10)
- The Kinematics of a Globally Propagating Disturbance in the Solar Corona
- Quasiperiodic acceleration of electrons by a plasmoid-driven shock in the solar atmosphere
- Theory of Stochastic Shock Drift Acceleration for Electrons in the Shock Transition Region
- Three-dimensional reconstruction of CME-driven shock-streamer interaction from radio and EUV observations: a different take on the diagnostics of coronal magnetic fields
- Imaging Spectroscopy of Type U and J Solar Radio Bursts with LOFAR
- First Observation of a Type II Solar Radio Burst Transitioning Between a Stationary and Drifting State
- Using radio triangulation to understand the origin of two subsequent type II radio bursts
- Moving solar radio bursts and their association with coronal mass ejections
- Variation of Coronal Activity from the Minimum to Maximum of Solar Cycle 24 using Three Dimensional Coronal Electron Density Reconstructions from STEREO/COR1
- Extended radio emission associated with a breakout eruption from the back side of the Sun