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首页> 外文期刊>Journal of Geophysical Research, A. Space Physics: JGR >Interhemispheric Asymmetries in Ionospheric Electron Density Responses During Geomagnetic Storms: A Study Using Space-Based and Ground-Based GNSS and AMPERE Observations
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Interhemispheric Asymmetries in Ionospheric Electron Density Responses During Geomagnetic Storms: A Study Using Space-Based and Ground-Based GNSS and AMPERE Observations

机译:在电离层两半球间的不对称电子密度在地磁响应风暴:使用天基和研究地面GNSS和安培观察

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We utilize Total Electron Content (TEC) measurements and electron density (Ne) retrieval profiles from Global Navigation Satellite System (GNSS) receivers onboard multiple Low Earth Orbit (LEO) satellites to characterize large-scale ionosphere-thermosphere system responses during geomagnetic storms. We also analyze TEC measurements from GNSS receivers in a worldwide ground-based network. Measurements from four storms during June and July 2012 (boreal summer months), December 2015 (austral summer month), and March 2015 (equinoctial month) are analyzed to study global ionospheric responses and the interhemispheric asymmetry of these responses. We find that the space-based and ground-based TECs and their responses are consistent in all four geomagnetic storms. The global 3D view from GNSS-Radio Occultation (RO) Ne observations captures enhancements and the uplifting of Ne structures at high latitudes during the initial and main phases. Subsequently, Ne depletion occurs at high latitudes and starts progressing into midlatitude and low latitude as the storm reaches its recovery phase. A clear time lag is evident in the storminduced Ne perturbations at high latitudes between the summer and winter hemispheres. The interhemispheric asymmetry in TEC and Ne appears to be consistent with the magnitudes of the Active Magnetosphere and Planetary Electrodynamics Response Experiment (AMPERE) high latitude integrated field-aligned currents (FACs), which are 3–4 MA higher in the summer hemisphere than in the winter hemisphere during these storms. The ionospheric TEC and Ne responses combined with the AMPERE-observed FACs indicate that summer preconditioning in the ionosphere-thermosphere system plays a key role in the interhemispheric asymmetric storm responses.
机译:我们利用总电子含量(TEC)测量和电子密度(Ne)检索从全球导航卫星系统配置文件(GNSS接收器)上多个低地球轨道(狮子座)卫星大规模的特点ionosphere-thermosphere系统反应在地磁风暴。测量从GNSS接收器地面网络。在2012年6月和7月(北方夏季风暴个月),2015年12月(南国夏季月),和2015年3月(分点月)进行了分析研究全球电离层响应和这些反应的两半球间的不对称。发现太空和地面侦探在这四个方面,他们的反应是一致的地磁风暴。GNSS-Radio掩星(RO)观察了增强和Ne的令人振奋的结构在最初的高纬度地区和主要阶段。发生在高纬度地区,开始进步到中间纬度和较低的纬度的风暴达到复苏阶段。storminduced显然不扰动高纬度地区在夏季和冬季之间半球。TEC和Ne似乎是一致的磁气圈和震级的活跃行星电动力学响应实验(安培)高纬度field-aligned集成电流(流式细胞仪),3 - 4马高冬天夏天半球比半球在这些风暴。结合AMPERE-observed流式细胞仪的反应表明,夏季的预处理ionosphere-thermosphere系统起着关键作用在两半球间的不对称的风暴响应。

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