Numerical Study on Excitation of Turbulence and Oscillation in Above-the-loop-top Region of a Solar Flare
arXiv:2212.05802 · doi:10.3847/1538-4357/acaa9c
Abstract
Extreme ultraviolet imaging spectroscopic observations often show an increase in line width around the loop-top or above-loop-top (ALT) region of solar flares, suggestive of turbulence. In addition, recent spectroscopic observations found the oscillation in the Doppler velocity around the ALT region. We performed three-dimensional magnetohydrodynamic (MHD) simulations to investigate the dynamics in the ALT region, with a particular focus on the generation of turbulence and the excitation of the oscillatory motion. We found a rapid growth of MHD instabilities around the upper parts of the ALT region (arms of the magnetic tuning fork). The instabilities grow more rapidly than the magnetic Rayleigh-Taylor-type instabilities at the density interface beneath the reconnecting current sheet. Eventually, the ALT region is filled with turbulent flows. The arms of the magnetic tuning fork have bad-curvature and transonic flows. Therefore, we consider that the rapidly growing instabilities are combinations of pressure-driven and centrifugally driven Rayleigh-Taylor-type instabilities. Despite the presence of turbulent flows, the ALT region shows a coherent oscillation driven by the backflow of the reconnection jet. We examine the numerical results by re-analyzing the solar flare presented in Reeves et al. 2020. We find that the highest non-thermal velocity is always at the uppermost visible edge of the ALT region, where oscillations are present. This result is consistent with our models. We also argue that the turbulent magnetic field has a significant impact on the confinement of non-thermal electrons in the ALT region.
21 pages, 20 figures, This article has been accepted for Astrophysical Journal
References in corpus (16)
- The Athena++ Adaptive Mesh Refinement Framework: Design and Magnetohydrodynamic Solvers
- Measurement of magnetic field and relativistic electrons along a solar flare current sheet
- Nonlinear Fast Magnetoacoustic Wave Propagation in the Neighbourhood of a 2D magnetic X-point: Oscillatory Reconnection
- Above-the-loop-top Oscillation and Quasi-periodic Coronal Wave Generation in Solar Flares
- Three-dimensional oscillatory magnetic reconnection
- The Origin of Underdense Plasma Downflows Associated with Magnetic Reconnection in Solar Flares
- Magnetohydrodynamic shocks in and above post-flare loops: two-dimensional simulation and a simplified model
- Quasi-periodic oscillations in flares and coronal mass ejections associated with magnetic reconnection
- The Acceleration and Confinement of Energetic Electrons by a Termination Shock in a Magnetic Trap: An Explanation for Nonthermal Loop-top Sources during Solar Flares
- Hot Plasma Flows and Oscillations in the Loop-top Region During the September 10 2017 X8.2 Solar Flare
- Observational Evidence of Particle Acceleration Associated with Plasmoid Motions
- Secondary Rayleigh-Taylor type Instabilities in the Reconnection Exhaust Jet as a Mechanism for Supra-Arcade Downflows
- Modeling Electron Acceleration and Transport in the Early Impulsive Phase of the 2017 September 10 Solar Flare
- Dynamical modulation of solar flare electron acceleration due to plasmoid-shock interactions in the looptop region
- Collisional ionisation and recombination effects on coalescence instability in chromospheric partially ionised plasmas
- Two-dimensional modeling of the tearing-mode-governed magnetic reconnection in the large-scale current sheet above the two-ribbon flare
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- Dual Origins of Rapid Flare Ribbon Downflows in an X9-class Solar Flare
- Understanding observational characteristics of solar flare current sheets
- Numerical Investigation of Efficient Electron Acceleration at an Unsteady Solar Flare Loop-Top