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Applying the Weighted Horizontal Magnetic Gradient Method to a Simulated Flaring Active Region

机译:将加权水平磁梯度方法应用于模拟扩口活动区域

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Here, we test the weighted horizontal magnetic gradient (WG M ) as a flare precursor, introduced by Korsós et al., by applying it to a magnetohydrodynamic (MHD) simulation of solar-like flares. The preflare evolution of the WG M and the behavior of the distance parameter between the area-weighted barycenters of opposite-polarity sunspots at various heights is investigated in the simulated δ-type sunspot. Four flares emanated from this sunspot. We found the optimum heights above the photosphere where the flare precursors of the WG M method are identifiable prior to each flare. These optimum heights agree reasonably well with the heights of the occurrence of flares identified from the analysis of their thermal and ohmic heating signatures in the simulation. We also estimated the expected time of the flare onsets from the duration of the approaching–receding motion of the barycenters of opposite polarities before each single flare. The estimated onset time and the actual time of occurrence of each flare are in good agreement at the corresponding optimum heights. This numerical experiment further supports the use of flare precursors based on the WG M method.
机译:在这里,我们将加权的水平磁梯度(WG M)作为耀斑的前兆,由Korsós等人引入,通过将其应用到太阳耀斑的磁流体动力学(MHD)模拟中进行测试。在模拟的δ型黑子中研究了WG M的前耀斑演化和不同高度的相反极性黑子的面积加权重心之间的距离参数的行为。这个黑子发出了四发耀斑。我们发现了在光球上方的最佳高度,在该高度处可以在每次耀斑之前识别出WG M方法的耀斑前体。这些最佳高度与通过模拟中对热和欧姆加热信号的分析所确定的火炬的发生高度合理地吻合。我们还从每个单次爆发之前相反极性重心的逼近-渐进运动的持续时间估算了爆发的预期时间。在相应的最佳高度处,估计的起火时间与实际发生的实际爆发时间吻合良好。该数值实验进一步支持了基于WG M方法的火炬前体的使用。

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