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MULTI-FLUID SIMULATIONS OF CHROMOSPHERIC MAGNETIC RECONNECTION IN A WEAKLY IONIZED REACTING PLASMA

机译:弱电离反应等离子体中的染色体电磁重连接的多流体模拟

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摘要

We present results from the first self-consistent multi-fluid simulations of chromospheric magnetic reconnection in a weakly ionized reacting plasma. We simulate two-dimensional magnetic reconnection in a Harris current sheet with a numerical model which includes ion-neutral scattering collisions, ionization, recombination, optically thin radiative loss, collisional heating, and thermal conduction. In the resulting tearing mode reconnection the neutral and ion fluids become decoupled upstream from the reconnection site, creating an excess of ions in the reconnection region and therefore an ionization imbalance. Ion recombination in the reconnection region, combined with Alfvénic outflows, quickly removes ions from the reconnection site, leading to a fast reconnection rate independent of Lundquist number. In addition to allowing fast reconnection, we find that these non-equilibria partial ionization effects lead to the onset of the nonlinear secondary tearing instability at lower values of the Lundquist number than has been found in fully ionized plasmas. These simulations provide evidence that magnetic reconnection in the chromosphere could be responsible for jet-like transient phenomena such as spicules and chromospheric jets.
机译:我们从弱电离反应等离子体中的色球磁重连接的第一个自洽多流体模拟中给出结果。我们用一个包含离子中性散射碰撞,电离,复合,光学上薄的辐射损耗,碰撞加热和热传导的数值模型在哈里斯电流板中模拟二维磁重连接。在最终的撕裂模式下,中性流体和离子流体从重新连接部位向上游解耦,从而在重新连接区域中产生过量的离子,从而导致电离失衡。重新连接区域中的离子重组与Alfvénic流出相结合,可快速将离子从重新连接部位去除,从而实现快速的重新连接速率,而与Lundquist数无关。除了允许快速重新连接之外,我们发现这些非平衡部分电离效应会导致在比完全电离的等离子体更低的伦德奎斯特数值下,发生非线性二次撕裂不稳定性。这些模拟提供了证据,证明色球层中的磁性重新连接可能是喷流状瞬态现象的原因,例如针状和色球层喷流。

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