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Numerical simulation of current sheet formation in a quasiseparatrix layer using adaptive mesh refinement

机译:自适应网格细化在准准层中形成电流板的数值模拟

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The formation of a thin current sheet in a magnetic quasiseparatrix layer (QSL) is investigated by means of numerical simulation using a simplified ideal, low-Β, MHD model. The initial configuration and driving boundary conditions are relevant to phenomena observed in the solar corona and were studied earlier by Aulanier [Astron. Astrophys. 444, 961 (2005)]. In extension to that work, we use the technique of adaptive mesh refinement (AMR) to significantly enhance the local spatial resolution of the current sheet during its formation, which enables us to follow the evolution into a later stage. Our simulations are in good agreement with the results of Aulanier up to the calculated time in that work. In a later phase, we observe a basically unarrested collapse of the sheet to length scales that are more than one order of magnitude smaller than those reported earlier. The current density attains correspondingly larger maximum values within the sheet. During this thinning process, which is finally limited by lack of resolution even in the AMR studies, the current sheet moves upward, following a global expansion of the magnetic structure during the quasistatic evolution. The sheet is locally one-dimensional and the plasma flow in its vicinity, when transformed into a comoving frame, qualitatively resembles a stagnation point flow. In conclusion, our simulations support the idea that extremely high current densities are generated in the vicinities of QSLs as a response to external perturbations, with no sign of saturation.
机译:通过使用简化的理想低low MHD模型的数值模拟,研究了准归位磁性层(QSL)中薄电流片的形成。初始配置和行驶边界条件与在太阳日冕中观察到的现象有关,并且由Aulanier [Astron。天体。 444,961(2005)]。在这项工作的扩展中,我们使用自适应网格细化(AMR)技术来显着增强当前工作表在其形成过程中的局部空间分辨率,这使我们能够将开发工作跟踪到后续阶段。直到计算出的时间为止,我们的模拟与Aulanier的结果非常吻合。在随后的阶段中,我们观察到板材基本上未被阻止的塌陷,其长度尺度比先前报道的长度尺度小一个数量级。电流密度在片材内获得相应更大的最大值。在这种变薄过程中,即使在AMR研究中,最终也由于缺乏分辨率而受到限制,在准静态演化过程中,随着磁性结构的整体扩展,当前工作表向上移动。片材是局部一维的,当其附近的等离子流转换成共同移动的框架时,在质上类似于停滞点流。总而言之,我们的仿真支持以下想法:QSL附近产生极高的电流密度,作为对外部扰动的响应,没有饱和的迹象。

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