首页> 外文期刊>Journal of Geophysical Research, A. Space Physics: JGR >Dependence of Parallel Electrical Conductivity in the Topside Ionosphere on Solar and Geomagnetic Activity
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Dependence of Parallel Electrical Conductivity in the Topside Ionosphere on Solar and Geomagnetic Activity

机译:依赖的平行的导电性太阳能和地磁的上部电离层活动

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The spatial and temporal dynamics of ionospheric currents are among the most evident manifestations of the interaction between the magnetized plasma of solar origin and the magnetosphereionosphere system. In this context, a special role is played by field-aligned currents (FACs), which drive energy and momentum exchanges between the magnetosphere and the ionosphere, deeply affecting the energy balance of the latter. One of the most relevant physical quantities that may help to fully characterize FACs is the ionospheric electrical conductivity. Understanding the features associated with this quantity may contribute to the advancement of knowledge on the mechanisms of solar windmagnetosphere- ionosphere interaction as well as energy storage and dissipation involved in the space weather phenomena. By extending a previous study, we investigate the dependence of the electrical conductivity parallel to the geomagnetic field on solar and geomagnetic activity. To this aim, we considered a six-year long data set of in-situ electron density and temperature values recorded by the Langmuir probes on board the Swarm satellites in the topside ionosphere. With this large data set, we computed global maps of the parallel electron conductivity under both quiet and disturbed conditions, and for different solar activity levels. In both cases, the International Reference Ionosphere (IRI) model allowed estimating the contribution of particle precipitation to electrical conductivity.
机译:电离层的时空动态电流是最明显之间的相互作用的表现磁化等离子体的太阳能和起源magnetosphereionosphere系统。一个特殊的field-aligned所扮演的角色电流(流式细胞仪),驱动能量和动量和磁气圈之间的交流电离层,深深地影响到能量平衡的后者。数量可能有助于充分描述流式细胞仪是电离层电导率。了解与此相关的特性数量可能导致的进步对太阳能的机制windmagnetosphere -电离层交互能量储存和耗散参与空间天气现象。研究中,我们调查的依赖性导电性平行地磁场在太阳和地磁活动。长的现场电子密度和数据集朗缪尔温度值记录探针的卫星群在上面的电离层。全球的地图并行计算电子电导率在安静和不安条件,不同的太阳活动的水平。参考电离层(IRI)模型允许的估计的贡献粒子降水电导率。

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