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Multi-Fluid Block-Adaptive-Tree Solar Wind Roe-Type Upwind Scheme: Magnetospheric Composition and Dynamics During Geomagnetic Storms, Initial Results

机译:多流体块状自适应树太阳风子型逆风方案:地磁暴期间的磁层组成和动力学,初步结果

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摘要

The magnetosphere contains a significant amount of ionospheric O{+}, particularly during geomagnetically active times. The presence of ionospheric plasma in the magnetosphere has a notable impact on magnetospheric composition and processes. We present a new multifluid MHD version of the BATS-R-US model of the magnetosphere to track the fate and consequences of ionospheric outflow. The multi-fluid MHD equations are presented as are the novel techniques for overcoming the formidable challenges associated with solving them. Our new model is then applied to the May 4, 1998 and March 31, 2001 geomagnetic storms. The results are juxtaposed with traditional single- fluid MHD and multispecies MHD simulations from a previous study, thereby allowing us to assess the benefits of using a more complex model with additional physics. We find that our multi-fluid MHD model (with outflow) gives comparable results to the multi-species MHD model (with outflow), including a more strongly negative Dst, reduced CPCP, and a drastically improved magnetic field at geosynchronous orbit, as compared to single-fluid MHD with no outflow. Significant differences in composition and magnetic field are found between the multi-species and multi-fluid approach further away from the Earth. We further demonstrate the ability to explore pressure and bulk velocity differences between H{+} and O(+}, which is not possible when utilizing the other techniques considered.
机译:磁层包含大量的电离层O {+},尤其是在地磁活动时间内。磁层中电离层等离子体的存在对磁层组成和过程有显着影响。我们介绍了磁层BATS-R-US模型的新多流体MHD版本,以追踪电离层流出的命运和后果。提出了多流体MHD方程以及克服与求解它们相关的艰巨挑战的新技术。然后将我们的新模型应用于1998年5月4日和2001年3月31日的地磁风暴。将结果与先前研究中的传统单流体MHD和多物种MHD模拟并列,从而使我们能够评估使用具有附加物理学的更复杂模型的收益。我们发现,我们的多流体MHD模型(有流出)与多物种MHD模型(有流出)具有可比的结果,包括与Dst相比更强的负Dst,降低的CPCP以及在地球同步轨道上大大改善的磁场到无流出的单流体MHD。在距离地球较远的多物种和多流体方法之间,在成分和磁场方面存在显着差异。我们进一步证明了探索H {+}与O(+}之间的压力和整体速度差异的能力,这在考虑其他技术时是不可能的。

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