The Role of a Flux Rope Ejection in Three-dimensional Magnetohydrodynamic Simulation of a Solar Flare
arXiv:1308.0442 · doi:10.1088/2041-8205/775/2/L39
Abstract
We investigated the dynamic evolution of a 3-dimensional (3D) flux rope eruption and magnetic reconnection process in a solar flare, by simply extending 2-dimensional (2D) resistive magnetohydrodynamic simulation model of solar flares with low plasma to 3D model. We succeeded in reproducing a current sheet and bi-directional reconnection outflows just below the flux rope during the eruption in our 3D simulations. We calculated four cases of a strongly twisted flux rope and a weakly twisted flux rope in 2D and 3D simulations. The time evolution of a weakly twisted flux rope in 3D simulation shows similar behaviors to 2D simulation, while a strongly twisted flux rope in 3D simulation shows clearly different time evolution from 2D simulation except for the initial phase evolution. The ejection speeds of both strongly and weakly twisted flux ropes in 3D simulations are larger than 2D simulations, and the reconnection rates in 3D cases are also larger than 2D cases. This indicates a positive feedback between the ejection speed of a flux rope and the reconnection rate even in the 3D simulation, and we conclude that the plasmoid-induced reconnection model can be applied to 3D. We also found that small scale plasmoids are formed inside a current sheet and make it turbulent. These small scale plasmoid ejections has role in locally increasing reconnection rate intermittently as observed in solar flares, coupled with a global eruption of a flux rope.
Accepted by ApJL, August 1, 2013
References in corpus (2)
Cited by in corpus (16)
- A fundamental mechanism of solar eruption initiation
- Magnetic Flux Ropes in the Solar Corona: Structure and Evolution toward Eruption
- On the Relationship Between a Hot-channel-like Solar Magnetic Flux Rope and its embedded Prominence
- 3D magnetic reconnection and its application to solar flares
- The Birth of A Coronal Mass Ejection
- Quasi-periodic oscillations in flares and coronal mass ejections associated with magnetic reconnection
- The physical mechanisms that initiate and drive solar eruptions
- Subarcsecond blobs in flare-related coronal jets
- Particle Acceleration In Plasmoid Ejections Derived From Radio Drifting Pulsating Structures
- Fractal Reconnection in Solar and Stellar Environments
- Formation and Reconnection of Three-dimensional Current Sheets with a Guide Field in the Solar Corona
- Three-dimensional Turbulent Reconnection within Solar Flare Current Sheet
- Dynamic evolution of current sheets, ideal tearing, plasmoid formation and generalized fractal reconnection scaling relations
- Formation and Evolution of Coherent Structures in 3D Strongly Turbulent Magnetized Plasmas
- Calcium bright knots and the formation of chromospheric anemone jets on the Sun
- Hinode 7: Conference Summary and Future Suggestions