粒化诱导波对磁拱廊中太阳色球加热和等离子体外流影响的数值实验

M. Kumar, K. Murawski, B. Kuźma, E. K. J. Kilpua, S. Poedts and R. Erdélyi
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摘要

本文提供了一个关于太阳色球加热和等离子体外流的全新视角,重点关注太阳粒化产生的波的贡献。利用部分电离的太阳下层大气的 2.5D 数值实验,我们研究了这些波的耗散及其通过离子-中性碰撞对等离子体外流和色球层加热的影响。利用 JOint ANalytical and Numerical Approach 代码,我们采用了双流体模型方程,研究了部分电离氢等离子体动力学,包括质子+电子和中子,它们被视为通过离子-中性碰撞耦合的两种独立流体。我们的研究重点是一个安静的太阳色球区域,该区域的特点是引力分层和最初设置的单一磁弧的磁约束。波的主要来源是光球下面的太阳对流。我们的研究结果表明,离子中性碰撞导致这种波的消散,释放出的热能加热了色球等离子体。值得注意的是,这还伴随着向上的等离子体流。最后,我们得出结论,在双流体等离子体模型中,离子中性碰撞导致的波耗散引起了色球层加热和等离子体外流。
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Numerical Experiment on the Influence of Granulation-induced Waves on Solar Chromosphere Heating and Plasma Outflows in a Magnetic Arcade
This paper offers a fresh perspective on solar chromosphere heating and plasma outflows, focusing on the contribution of waves generated by solar granulation. Utilizing a 2.5D numerical experiment for the partially ionized lower solar atmosphere, we investigate the dissipation of these waves and their impact on plasma outflows and chromospheric heating via ion-neutral collisions. Employing the JOint ANalytical and Numerical Approach code, we adopt two-fluid model equations, examining partially ionized hydrogen plasma dynamics, including protons+electrons and neutrals, treated as two separate fluids that are coupled through ion-neutral collisions. Our investigation focuses on a quiet solar chromosphere region characterized by gravitational stratification and magnetic confinement by an initially set single magnetic arcade. The primary source of the waves is the solar convection beneath the photosphere. Our results demonstrate that ion-neutral collisions result in the dissipation of such waves, releasing thermal energy that heats the chromosphere plasma. Notably, this is accompanied by upward-directed plasma flows. Finally, we conclude that wave dissipation due to ion-neutral collisions in the two-fluid plasma model induces chromosphere heating and plasma outflows.
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