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Initial results from a dynamic coupled magnetosphere-ionosphere-ring current model

机译:从动态耦合的初步结果magnetosphere-ionosphere-ring电流模型

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In this paper we describe a coupled model of Earth's magnetosphere that consists of the Lyon-Fedder-Mobarry (LFM) global magnetohydrodynamics (MHD) simulation, the MIX ionosphere solver and the Rice Convection Model (RCM) and report some results using idealized inputs and model parameters. The algorithmic and physical components of the model are described, including the transfer of magnetic field information and plasma boundary conditions to the RCM and the return of ring current plasma properties to the LFM. Crucial aspects of the coupling include the restriction of RCM to regions where field-line averaged plasma-β ≤ 1, the use of a plasmasphere model, and the MIX ionosphere model. Compared to stand-alone MHD, the coupled model produces a substantial increase in ring current pressure and reduction of the magnetic field near the Earth. In the ionosphere, stronger region-1 and region-2 Birkeland currents are seen in the coupled model but with no significant change in the cross polar cap potential drop, while the region-2 currents shielded the low-latitude convection potential. In addition, oscillations in the magnetic field are produced at geosynchronous orbit with the coupled code. The diagnostics of entropy and mass content indicate that these oscillations are associated with low-entropy flow channels moving in from the tail and may be related to bursty bulk flows and bubbles seen in observations. As with most complex numerical models, there is the ongoing challenge of untangling numerical artifacts and physics, and we find that while there is still much room for improvement, the results presented here are encouraging.
机译:在本文中,我们描述的耦合模型地球的磁气圈的磁流体动力学(磁流体动力)模拟电离层的能手和大米对流模型(RCM)和报告使用理想化的一些结果输入和模型参数。物理组件模型的描述,包括磁场的转移信息和等离子体边界条件RCM和当前等离子体环的回归lem属性。耦合包括RCM的限制地区平均场线等离子体-β≤1,使用等离子体层模型和混合电离层模型。耦合模型产生大幅增加在当前环压力和减少磁场接近地球。较强的区域1和区域2 Birkeland电流在耦合模型,但是没有看到吗在十字架的极冠发生重大变化潜在的下降,而区域2电流屏蔽的低纬度对流的潜力。此外,振荡磁场生产在地球同步轨道耦合的代码。内容表明这些振荡与低熵流动通道移动从尾部和可能与丛发性有关在观察大量流动和泡沫。最复杂的数值模型,持续的挑战,解决数值工件和物理学,我们发现仍有许多改进的空间,这里给出的结果是令人鼓舞的。

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