Imaging-spectroscopy of a band-split type II solar radio burst with the Murchison Widefield Array
arXiv:2212.07698 · doi:10.1051/0004-6361/202244456
Abstract
Type II solar radio bursts are caused by magnetohydrodynamics (MHD) shocks driven by solar eruptive events such as Coronal Mass Ejections (CMEs). Often both fundamental and harmonic bands of type II bursts are split into sub-bands, generally believed to be coming from upstream and downstream regions of the shock; however this explanation remains unconfirmed. Here we present combined results from imaging analysis of type II radio burst band-splitting and other fine structures, observed by the Murchison Widefield Array (MWA) and extreme ultraviolet observations from Solar Dynamics Observatory (SDO)/Atmospheric Imaging Assembly (AIA) on 2014-Sep-28. The MWA provides imaging-spectroscopy in the range of 80-300 MHz with a time resolution of 0.5 s and frequency resolution of 40 kHz. Our analysis shows that the burst was caused by a piston-driven shock with a driver speed of 112 km s and shock speed of 580 km s. We provide rare evidence that band-splitting is caused by emission from multiple parts of the shock (as opposed to the upstream/downstream hypothesis). We also examine the small-scale motion of type II fine structure radio sources in MWA images. We suggest that this small-scale motion may arise due to radio propagation effects from coronal turbulence, and not because of the physical motion of the shock location. We present a novel technique that uses imaging spectroscopy to directly determine the effective length scale of turbulent density perturbations, which is found to be 1 - 2 Mm. The study of the systematic and small-scale motion of fine structures may therefore provide a measure of turbulence in different regions of the shock and corona.
10 pages, 8 figures, Astronomy & Astrophysics journal (accepted)
References in corpus (19)
- Characterisation of the ionosphere above the Murchison Radio Observatory using the Murchison Widefield Array
- Calibration and Stokes Imaging with Full Embedded Element Primary Beam Model for the Murchison Widefield Array
- Simulations of Electron Acceleration at Collisionless Shocks: The Effects of Surface Fluctuations
- Understanding CME and associated shock in the solar corona by merging multi wavelengths observation
- Strength of the Solar Coronal Magnetic field - A Comparison of Independent Estimates Using Contemporaneous Radio and White-light Observations
- Evolution of the Alfvén Mach number associated with a coronal mass ejection shock
- Unsupervised generation of high dynamic range solar images: A novel algorithm for self-calibration of interferometry data
- LOFAR observations of a jet-driven piston shock in the low solar corona
- Propagation Effects in Quiet Sun Observations at Meter Wavelengths
- Characterising coronal turbulence using snapshot imaging of radio bursts in 80-200 MHz
- Discovery of correlated evolution in solar noise storm source parameters: Insights on magnetic field dynamics during a microflare
- Parametric simulation studies on the wave propagation of solar radio emission: the source size, duration, and position
- Multi-wavelength Observations of a Metric Type-II Event
- LOFAR observations of radio burst source sizes and scattering in the solar corona
- Insights from snapshot spectroscopic radio observations of a weak Type I noise storm
- Robust absolute solar flux density calibration for the Murchison Widefield Array
- Electron acceleration and radio emission following the early interaction of two coronal mass ejections
- LOFAR imaging of the solar corona during the 2015 March 20 solar eclipse
- Observations of shock propagation through turbulent plasma in the solar corona
Cited by in corpus (7)
- A type II solar radio burst without a coronal mass ejection
- Resolving spatial and temporal shock structures using LOFAR observations of type II radio bursts
- Imaging and spectropolarimetric observations of a band-split type II solar radio burst with LOFAR
- Solar Observation with MeerKAT: Demonstration of Technical Readiness and Initial Science Highlight
- Source location and evolution of a multi-lane type II radio burst
- Spectral-line performance of low-frequency radio telescope arrays: SKA-Low stations
- Multiple shocks generated by the 2024 May 14 coronal mass ejection