Particle acceleration in an MHD-scale system of multiple current sheets
arXiv:2205.07366 · doi:10.3389/fspas.2022.954040
Abstract
We investigate particle acceleration in an MHD-scale system of multiple current sheets by performing 2D and 3D MHD simulations combined with a test particle simulation. The system is unstable for the tearing-mode instability, and magnetic islands are produced by magnetic reconnection. Due to the interaction of magnetic islands, the system turns into a turbulent state. The 2D (3D) case yields both ( and ) power-law spacetra for magnetic and velocity fluctuations. Particles are efficiently energized by the generated turbulence, and it forms a power-law tail with an index of and in the energy distribution function for the 2D and 3D case, respectively. We find more energetic particles outside magnetic islands rather than inside. We observe super-diffusion in the 2D () and 3D () case in the energy space of energetic particles.
25 pages, 10 figures, to be submitted to frontiers
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