论文标题

IMF $ b_z $耦合下低纬度等离子体漂移变化的证据:tiegcm仿真方法

Evidence of changes in the low-latitude plasma drift under IMF $B_z$ coupling: a TIEGCM simulation approach

论文作者

Chakraborty, Sumanjit

论文摘要

研究在地磁干扰条件下低纬度电离层的动态性质,尤其是在EIA和磁赤道区域中,对于理解潜在物理学以及减轻人类文明必不可少的复杂技术系统的空间天气危害至关重要。太空天气研究的一个重要方面是对太阳风与地面磁层层系统之间的耦合的透彻理解,以及随后对低纬度电离层的影响。本文提出了一项努力,以了解星际磁场(IMF,$ b_z $)对垂直等离子体的实际值的影响,在EIA附近的位置和地磁赤道。 2016年10月13日的强烈风暴事件属于太阳周期24的降阶段,已被视为案例研究。在两种情况下进行了热层 - 离子电向 - 电力学通用循环模型(TIEGCM)模拟运行:首先,当不存在耦合时(IMF $ b_z $ = 0 nt),当对IMF $ b_z $的值作为模型的输入时,将实际观察到IMF $ b_z $的实际观察。观察结果表明,何时将实际数据馈送到模型时,垂直漂移向西存在显着转移,而在交流前增强后,向西漂移的峰值有所增加。这项研究是最初的努力,以了解强烈地磁风暴的主要阶段中低纬度等离子体运动的变化。这项最初的工作将得到了解,了解IMF和EIA附近其他组件的影响下的全球等离子体漂移变化。

Study of the dynamic nature of low-latitude ionosphere during geomagnetically disturbed conditions, especially in the EIA and the magnetic equatorial regions are vital for understanding the underlying physics as well as for mitigating space weather hazards on the sophisticated technological systems essential for human civilization. An important aspect of the space weather studies is the thorough understanding of coupling between the solar wind and the terrestrial magnetosphere-ionosphere system and subsequent influence on the low-latitude ionosphere. This paper presents an effort to understand the influence of actual values of the north-south component of Interplanetary Magnetic Field (IMF, $B_z$) on the vertical plasma drifts at a location near the EIA and the geomagnetic equator. The strong storm event of October 13, 2016, falling in the descending phase of solar cycle 24, has been taken up as a case study. Thermosphere-Ionosphere-Electrodynamics General Circulation Model (TIEGCM) simulation runs have been performed under two scenarios: first when no coupling is present (IMF $B_z$ = 0 nT) and second when actual observations of the values of IMF $B_z$ is given as inputs to the model. Observations show when actual data is fed to the model, there is significant shift of the vertical drift towards westward, while there is an increase in the peak value of the westward drift after the pre-reversal enhancement. This study is an initial effort to understand the variations in low-latitude plasma motions during the main phase of strong geomagnetic storms. This initial work will be followed up with understanding the global plasma drift variations under the influence of other components of the IMF near the EIA and the dip equatorial regions.

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