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A study on the variability of ionospheric total electron content over the East African low-latitude region and storm time ionospheric variations

机译:东非低纬度地区电离层总电子含量的变化和风暴时间电离层变化的研究

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摘要

The variation of total electron content (TEC) derived from the International Global Navigation Satellite Systems Service receiver (formerly IGS) over the East African low-latitude region from up to 12 observation stations for the period 2012 was analyzed. The diurnal and annual TEC contour plots generated from data over the region show that the equatorial anomaly crests manifest remarkable seasonal variations. The crest of the equatorial ionization anomaly is fully formed and yields the maximum values of TEC during the equinoxes (March/April and September/October) and minimum in the solstice (June/July and November/December). The results of this observation show that the crest develops between 12:00 and 16:00 LT and is greatly dependent on the time when the ionosphere is uplifted at the dip equator via the E × B drift force. The postsunset TEC enhancements at stations away from dip equator depict the ionospheric plasma density diffusion (flow) from the dip equator leading to the formation of ionization anomaly crests that lasts for few hours after the sunset local time. The ionospheric response to the strong geomagnetic storm of the March 2015 has also been examined. The ionospheric response to the geomagnetic storms has shown a strong thermosphere-ionosphere coupling. The negative storm effect that occurred over the anomaly crest region is more likely due to the composition disturbances associated with high energy deposits.
机译:分析了来自国际全球导航卫星系统服务接收器(以前为IGS)在东非低纬度地区从多达12个观测站获得的2012年期间总电子含量(TEC)的变化。从该地区的数据生成的TEC的日线和年度图显示,赤道异常波峰表现出明显的季节性变化。赤道电离异常的波峰完全形成,并在春分时(3月/ 4月和9月/ 10月)产生TEC最大值,而在冬至(6月/ 7月和11月/ 12月)产生最小值。观测结果表明,波峰在LT的12:00至16:00之间发展,并很大程度上取决于电离层通过E×B漂移力在垂赤道上升起的时间。距垂线赤道的站点的未校正TEC增强描绘了来自垂线赤道的电离层等离子体密度扩散(流),导致形成电离异常波峰,该波峰在日落当地时间之后持续数小时。还研究了电离层对2015年3月强烈地磁风暴的反应。电离层对地磁风暴的响应显示出强烈的热层-电离层耦合。由于与高能量沉积有关的成分扰动,发生在异常波峰区域上方的负面风暴效应更可能发生。

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