A Brief Review on Particle Acceleration in Multi-island Magnetic Reconnection
arXiv:1908.09155 · doi:10.1088/1742-6596/1332/1/012003
Abstract
The basic physics and recent progresses in theoretical and particle-in-cell (PIC) simulation studies of particle acceleration in multi-island magnetic reconnection are briefly reviewed. Particle acceleration in multi-island magnetic reconnection is considered a plausible mechanism for the acceleration of energetic particles in solar flares and the solar wind. Theoretical studies have demonstrated that such a mechanism can produce the observed power-law energy distribution of energetic particles if the particle motion is sufficiently randomized in the reconnection event. However, PIC simulations seem to suggest that the first-order Fermi acceleration mechanism is unable to produce a power-law particle energy distribution function in mildly relativistic multi-island magnetic reconnections. On the other hand, while simulations of highly relativistic reconnections appear to be able to produce a power-law energy spectrum, the spectral indices obtained are generally harder than the soft power-law spectra with indices commonly observed in the solar wind and solar flare events. In addition, the plasma heating due to kinetic instabilities in 3D magnetic reconnection may "thermalize" the power-law particles, making it even more difficult for multi-island reconnections to generate a power-law spectrum. We discuss the possible reasons that may lead to these problems.
in publication
References in corpus (8)
- The Mechanisms of Electron Heating and Acceleration during Magnetic Reconnection
- The role of three-dimensional transport in driving enhanced electron acceleration during magnetic reconnection
- Parallel electric fields are inefficient drivers of energetic electrons in magnetic reconnection
- Electron Power-Law Spectra in Solar and Space Plasmas
- Magnetoluminescence
- Small electron acceleration episodes in the solar corona
- Two-stage electron acceleration by 3D collisionless guide field magnetic reconnection
- Turbulent transport in 2D collisionless guide field reconnection
Cited by in corpus (3)
- Persistent mysteries of jet engines, formation, propagation, and particle acceleration: have they been addressed experimentally?
- Particle heating and acceleration by reconnecting and non-reconnecting Current Sheets
- Numerical Investigation of Efficient Electron Acceleration at an Unsteady Solar Flare Loop-Top