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Ionospheric Response at Conjugate Locations During the 7-8 September 2017 Geomagnetic Storm Over the Europe-African Longitude Sector

机译:电离层响应在共轭位置自2017年9月7 - 8日在地磁风暴Europe-African经度部门

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This paper focuses on unique aspects of the ionospheric response at conjugate locations over Europe and South Africa during the 7-8 September 2017 geomagnetic storm including the role of the bottomside and topside ionosphere and plasmasphere in influencing electron density changes. Analysis of total electron content (TEC) on 7 September 2017 shows that for a pair of geomagnetically conjugate locations, positive storm effect was observed reaching about 65% when benchmarked on the monthly median TEC variability in the Northern Hemisphere, while the Southern Hemisphere remained within the quiet time variability threshold of ±40%. Over the investigated locations, the Southern Hemisphere midlatitudes showed positive TEC deviations that were in most cases twice the comparative response level in the Northern Hemisphere on the 8 September 2017. During the storm main phase on 8 September 2017, we have obtained an interesting result of ionosonde maximum electron density of the F2 layer and TEC derived from Global Navigation Satellite System (GNSS) observations showing different ionospheric responses over the same midlatitude location in the Northern Hemisphere. In situ electron density measurements from SWARM satellite aided by bottomside ionosonde-derived TEC up to the maximum height of the F2 layer (hmF2) revealed that the bottomside and topside ionosphere as well as plasmasphere electron content contributions to overall GNSS-derived TEC were different in both hemispheres especially for 8 September 2017 during the storm main phase. The differences in hemispheric response at conjugate locations and on a regional scale have been explained in terms of seasonal influence on the background electron density coupled with the presence of large-scale traveling ionospheric disturbances and low-latitude-associated processes. The major highlight of this study is the simultaneous confirmation of most of the previously observed features and their underlying physical mechanisms during ge
机译:本文关注的独特的方面电离层响应在共轭位置在9月7 - 8日欧洲和南非2017年地磁风暴包括的角色bottomside和干舷电离层在影响等离子体层电子密度的变化。2017年9月7日表明,一双眼睛共轭位置、积极的当风暴观察效果达到约65%每月平均TEC变化基准测试在北半球,而南部半球内保持安静的时间变化阈值的±40%。调查地点,南半球情理之中表现出积极TEC偏差在大多数情况下两次比较反应在北半球8水平2017年9月。2017年9月,我们得到一个有趣的由于ionosonde最大的电子密度F2层和TEC来自全球导航卫星系统(GNSS)的观察在显示不同电离层响应同样在北部中间纬度位置半球。从群卫星bottomside的帮助下ionosonde-derived TEC的最大高度F2层(hmF2)透露,bottomside和顶部电离层等离子体层电子内容的整体贡献GNSS-derived TEC在这两方面都是不同的半球尤其是对2017年9月8日在风暴的主要阶段。半球在共轭位置和反应在区域范围内一直在解释条款季节性影响背景电子密度加上大规模的存在电离层扰动和旅行low-latitude-associated流程。突出本研究是同时发生的之前确认的大部分特性和其内在的物理机制在通用电气

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