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首页> 外文期刊>The Astrophysical journal >THE COOL SURGE FOLLOWING FLUX EMERGENCE IN A RADIATION-MHD EXPERIMENT
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THE COOL SURGE FOLLOWING FLUX EMERGENCE IN A RADIATION-MHD EXPERIMENT

机译:辐射-MHD实验中出现助焊剂后的冷却浪涌

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Cool and dense ejections, typically Hα surges, often appear alongside EUV or X-ray coronal jets as a result of the emergence of magnetized plasma from the solar interior. Idealized numerical experiments explain those ejections as being indirectly associated with the magnetic reconnection taking place between the emerging and preexisting systems. However, those experiments miss basic elements that can importantly affect the surge phenomenon. In this paper we study the cool surges using a realistic treatment of the radiation transfer and material plasma properties. To that end, the Bifrost code is used, which has advanced modules for the equation of state of the plasma, photospheric and chromospheric radiation transfer, heat conduction, and optically thin radiative cooling. We carry out a 2.5D experiment of the emergence of magnetized plasma through (meso) granular convection cells and the low atmosphere to the corona. Through detailed Lagrange tracing we study the formation and evolution of the cool ejection and, in particular, the role of the entropy sources; this allows us to discern families of evolutionary patterns for the plasma elements. In the launch phase, many elements suffer accelerations well in excess of gravity; when nearing the apex of their individual trajectories, instead, the plasma elements follow quasi-parabolic trajectories with accelerations close to . We show how the formation of the cool ejection is mediated by a wedge-like structure composed of two shocks, one of which leads to the detachment of the surge from the original emerged plasma dome.
机译:由于太阳内部磁化等离子体的出现,通常会在EUV或X射线日冕射流旁出现冷而密集的射流,通常是Hα浪涌。理想的数值实验解释了这些喷射与新兴系统和现有系统之间发生的磁重新连接间接相关。但是,这些实验错过了可能对电涌现象产生重要影响的基本要素。在本文中,我们使用对辐射传输和材料等离子体特性的实际处理来研究冷浪。为此,使用了Bifrost代码,该代码具有用于等离子状态方程,光球和色球辐射传输,热传导和光学薄辐射冷却的高级模块。我们进行了一个2.5D实验,该实验通过(中观)颗粒对流池和低电晕到电晕产生磁化等离子体。通过详细的拉格朗日追踪,我们研究了冷射流的形成和演化,尤其是熵源的作用。这使我们能够辨别血浆元素的进化模式。在发射阶段,许多元件承受的加速度远远超过了重力。当接近其各自轨迹的顶点时,等离子元素遵循准抛物线轨迹,且加速度接近。我们展示了由两个冲击组成的楔形结构如何介导冷射流的形成,其中两个冲击之一导致电涌从原始出现的等离子穹顶脱离。

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