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Physics-Based Modeling of Earthquake-Induced Ionospheric Disturbances

机译:基于物理的地震诱导电离层干扰建模

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To numerically simulate earthquake-induced ionospheric disturbances, we extend the Wave Perturbation-Global Ionosphere-Thermosphere Model, which was originally developed for tsunami-ionosphere coupling via gravity waves, to the case of earthquake-ionosphere coupling via acoustic-gravity waves. The new Wave Perturbation-Global Ionosphere-Thermosphere Model represents epicentral crustal movements by a point source specified with the ground motion data from seismic measurements. The model then solves for the neutral atmospheric perturbations generated by spherical acoustic-gravity waves and the resulting ionospheric plasma perturbations over the epicentral area. We apply the model to simulate the near-field ionospheric disturbances during two major earthquake events: the 2011 Tohoku-Oki, Japan, and the 2015 Illapel, Chile, events. To validate the results, we extract receiver-to-satellite total electron content perturbations from the simulations and compare them to the corresponding slant total electron content perturbations from Global Positioning System observations. We find good agreement on magnitudes and arrival times between the simulations and observations.
机译:为了数值模拟地震诱导的电离层扰动,我们延长了波扰动 - 全局电离层 - 热层模型,其最初是通过重力波的Tsunami-Ionsphere耦合而开发的,通过声学 - 重力波的地震 - 电离层耦合的情况。新的波扰动 - 全局电离层 - 热圈模型代表了由地震测量的地面运动数据指定的点源代表埃皮斯特拉特地壳运动。然后,该模型解决了由球形声重波产生的中性大气扰动以及在显着区域上产生的电离层扰动。我们应用该模型来模拟两大地震事件中的近场电离层紊乱:2011年东北冈岛,日本和2015年伊芙尔,智利,活动。为了验证结果,我们从模拟中提取接收器到卫星总电子含量扰动,并将它们与来自全球定位系统观察的相应的倾斜全电子含量扰动进行比较。我们在模拟和观察之间找到了良好的阶段和到达时间。

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