An MHD Code for the Study of Magnetic Structures in the Solar Wind

J. Allred, P. MacNeice
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引用次数: 14

Abstract

We have developed a 2.5D MHD code designed to study how the solar wind influences the evolution of transient events in the solar corona and inner heliosphere. The code includes thermal conduction, coronal heating and radiative cooling. Thermal conduction is assumed to be magnetic field-aligned in the inner corona and transitions to a collisionless formulation in the outer corona. We have developed a stable method to handle field-aligned conduction around magnetic null points. The inner boundary is placed in the upper transition region, and the mass flux across the boundary is determined from 1D field-aligned characteristics and a 'radiative energy balance' condition. The 2.5D nature of this code makes it ideal for parameter studies not yet possible with 3D codes. We have made this code publicly available as a tool for the community. To this end we have developed a graphical interface to aid in the selection of appropriate options and a graphical interface that can process and visualize the data produced by the simulation. As an example, we show a simulation of a dipole field stretched into a helmet streamer by the solar wind. Plasmoids periodically erupt from the streamer, and we perform a parameter study of how the frequency and location of these eruptions changed in response to different levels of coronal heating. As a further example, we show the solar wind stretching a compact multi-polar flux system. This flux system will be used to study breakout coronal mass ejections in the presence of the solar wind.
太阳风磁结构研究的MHD代码
我们开发了一个2.5D MHD代码,用于研究太阳风如何影响日冕和内日球层瞬态事件的演变。代码包括热传导、日冕加热和辐射冷却。热传导被假定为在内日冕与磁场对齐,并在外日冕过渡到无碰撞的形式。我们开发了一种稳定的方法来处理磁零点附近的场向传导。内边界位于上过渡区,通过一维场向特征和“辐射能量平衡”条件确定边界上的质量通量。该代码的2.5D特性使其成为3D代码尚未实现的参数研究的理想选择。我们已经将这些代码作为社区的工具公开提供。为此,我们开发了一个图形界面来帮助选择适当的选项,并开发了一个图形界面来处理和可视化模拟产生的数据。作为一个例子,我们展示了一个偶极子场被太阳风拉伸成一个头盔飘带的模拟。等离子体周期性地从流带喷发,我们对这些喷发的频率和位置如何随着日冕加热水平的不同而变化进行了参数研究。作为进一步的例子,我们展示了太阳风拉伸一个紧凑的多极通量系统。这个通量系统将用于研究在太阳风存在下爆发的日冕物质抛射。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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