6至期间午夜赤道等离子体气泡对太阳活动的依赖性

IF 2.9 3区 地球科学 Earth and Planetary Physics Pub Date : 2021-10-22 DOI:10.26464/epp2021039
K. K. Ajith, S. Tulasi Ram, GuoZhu Li, M. Yamamoto, K. Hozumi, C. Y. Yatini, P. Supnithi
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引用次数: 4

摘要

利用印度尼西亚Kototabang的47 MHz赤道大气雷达(EAR)数据,研究了2010 ~ 2014年太阳第24周期上升阶段6至期间午夜赤道等离子体气泡(EPBs)的发生。分析表明,2010年太阳活动低潮年子夜极波发生最多,此后随着太阳活动的增加而单调减少。利用SAMI2模式模拟,利用C/NOFS卫星上cini - ivm获取的E × B漂移速度数据,研究了午夜时分EPB发生与太阳活动的关系。对通量管积分RT不稳定性线性增长率逐项分析结果表明,由于F层升高,在较高海拔地区形成高通量管电子含量高度梯度(垂直梯度陡)区域,是太阳活动低至6月至日期间RT不稳定性增长率增强的关键因素。在太阳活动低的6月至日午夜前后,在赤道中性风和南北偏转风的存在下,西向纬向电场相对较弱,并讨论了其他因素。还讨论了mstid对RT不稳定性的初始播种以及EPB发展所需的阈值高度如何随太阳活动而变化。
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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On the solar activity dependence of midnight equatorial plasma bubbles during June solstice periods

The occurrence of midnight Equatorial Plasma Bubbles (EPBs) during the June solstice period of the ascending phase of solar cycle 24, from 2010 to 2014, was studied using data from the 47 MHz Equatorial Atmosphere Radar (EAR) at Kototabang, Indonesia. The analysis shows that the occurrence of midnight hour EPBs was at its maximum during the low solar activity year 2010 and monotonically decreased thereafter with increasing solar activity. Details of the dependence of midnight hour EPB occurrence on solar activity were investigated using SAMI2 model simulation with a realistic input of E × B drift velocity data obtained from the CINDI-IVM onboard the C/NOFS satellite. Results obtained from term-by-term analysis of the flux tube integrated linear growth rate of RT instability indicate that the formation of a high flux tube electron content height gradient (steep vertical gradient) region at higher altitudes, due to the elevated F layer, is the key factor enhancing the growth rate of RT instability during low solar activity June solstices. Other factors are discussed in light of the relatively weak westward zonal electric field in the presence of the equatorward neutral wind and north-to-south transequatorial wind around the midnight hours of low solar activity June solstices. Also discussed are the initial seeding of RT instability by MSTIDs and how the threshold height required for EPB development varies with solar activity.

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Earth and Planetary Physics
Earth and Planetary Physics GEOSCIENCES, MULTIDISCIPLINARY-
自引率
17.20%
发文量
174
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