NASA NTRS · 19900039029
Magnetic reconnection driven by current repulsion
Abstract
The evolution of an equilibrium consisting of two magnetic islands with oppositely directed currents embedded in a strong magnetic field is investigated, using numerical simulation methods. The rapid development of an ideal magnetohydrodynamic instability is observed, which first rotates and then expels the islands. The growth rate is on the order of the inverse of the Alfven transit time and is much higher than that for magnetic island coalescence. In the nonlinear stage, resistivity becomes important as the reconnection process ensues and dissipates the magnetic energy. The growth rate of the instability is a weak function of the plasma beta and other plasma parameters such as S, the magnetic Reynolds number. An energy principle analysis, based on eigenfunctions obtained from the simulation, confirms the existence of the instability.
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Richard, R. L., Sydora, R. D., Ashour-Abdalla, M.. 1990-03-01. Magnetic reconnection driven by current repulsion. https://ntrs.nasa.gov/citations/19900039029
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