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Verification of the GUMICS-4 global MHD code using empirical relationships

机译:验证GUMICS-4全球磁流体动力的代码使用经验的关系

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Global magnetohydrodynamic (MHD) modeling is a powerful tool in space physics research. There are several advanced and still developing global MHD codes that are widely used to simulate plasma processes in solar wind magnetosphere-ionosphere system. The verification of global simulation codes is an important but a difficult problem. We present an approach for systematic and quantitative testing of code performance based on statistical empirical dependencies of the key magnetospheric parameters obtained from observations. We demonstrate the applicability of the method by testing the Grand Unified Magnetosphere Ionosphere Coupling simulation (GUMICS-4) global MHD model. A large set of nearly stationary solutions (162 runs altogether) with different stationary interplanetary magnetic field (IMF) and solar wind inputs were generated for different dipole tilts and levels of solar EUV radiation. As key parameters, we use the large-scale characteristics of the magnetosphere, including the magnetopause size and shape, geometry of the tail neutral sheet, magnetotail plasma pressure, tail lobe magnetic field, and cross-polar cap electric potential. We found that the GUMICS-4 stationary solutions generally fit the statistical relations, however, with some discrepancies. Particularly, position of the subsolar magnetopause, neutral sheet shape and position, and the plasma sheet pressure during northward IMF agree well with statistical models. At the same time, the size of the tail magnetopause and the lobe magnetic field magnitude appear to be systematically lower compared to their empirical values. Furthermore, the ionospheric potential is smaller in magnitude compared to empirical relations. These results provide an important starting point in the further development of the GUMICS simulation. Key Points New approach to verify GMHD code performance GUMICS-4 model verification based on comparison with empirical relations Magnetospheric large-scale structure in GUMICS-4 fits to empirical models
机译:建模是一个全球磁流体动力(磁流体动力)在空间物理研究中强有力的工具。几个先进的和还在发展全球吗广泛用于模拟等离子体磁流体动力码在太阳风magnetosphere-ionosphere过程系统。编码是一个重要而困难的问题。提出了一个系统和方法定量测试代码的性能的基础上统计经验依赖关系的关键磁性层的参数获得观察。该方法通过测试大统一磁气圈电离层耦合模拟(GUMICS-4)全球磁流体动力模型。几乎静止的解决方案(162分)不同的固定行星际磁场字段(货币基金组织)和太阳能风能输入生成对于不同的偶极子倾斜和水平的太阳能EUV辐射。大规模的磁气圈的特点,包括磁层的大小和形状,几何的尾巴中性表,磁尾等离子体压力、尾叶磁场和cross-polar帽电势。GUMICS-4固定解决方案一般健康然而,统计关系,与一些差异。现世的磁层,形状和中性表位置,在等离子表压力北方国际货币基金组织的统计模型吻合较好。与此同时,尾部的大小磁层磁场和叶似乎系统级低而他们的经验值。级的电离层潜力较小相比经验关系。提供一个重要的起点GUMICS仿真的进一步发展。点的新方法来验证GMHD代码GUMICS-4模型验证基于性能与经验的关系在GUMICS-4磁性层的大型结构符合实证模型

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