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On the origin of quasi-periodic radar backscatter from midlatitude sporadic E

机译:中纬度零星E准周期雷达反向散射的起源

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摘要

We describe a newly discovered polarization process that appears to be induced by an atmospheric gravity wave (AGW) when it altitude–modulates a sporadic E (Es) layer in the nighttime, midlatitude ionosphere. This large–scale polarization process appears capable of accounting for three as yet unexplained features found in radar backscatter from field–aligned irregularities in Es layers: (1) kilometer–scale, wavelike variations in the mean Doppler velocity, (2) mean Doppler velocities much larger than background ionospheric motion, and (3) quasi–periodic patterns in backscatter power when plotted as a function of range and time. We show that the polarization electric field develops as a result of the altitude modulation and that its properties are similar to those of the AGW. The novel feature in this process is the spatial modulation that is produced in the field line–integrated Pedersen conductivity by the variation in the ion–neutral collision frequency associated with the varying altitude of the Es layer. The resultant electric field together with the altitude–modulated Es layer then drive the production of secondary plasma waves via the gradient–drift instability. The three puzzling features are shown to be associated with the characteristics of these secondary waves.
机译:我们描述了一个新发现的极化过程,该极化过程似乎是由大气重力波(AGW)引起的,它在夜间,中纬度电离层中高度调制了零星的E(Es)层。这种大规模极化过程似乎能够解释Es层中与场对准的不规则现象在雷达反向散射中发现的三个尚未解释的特征:(1)公里级,平均多普勒速度呈波状变化,(2)平均多普勒速度比背景电离层运动大得多,并且(3)当绘制为距离和时间的函数时,后向散射功率的准周期模式。我们显示出极化电场是由于高度调制而发展的,并且其性质与AGW的性质相似。此过程中的新功能是通过与Es层高度变化相关的离子中性碰撞频率的变化,在场线整合的Pedersen电导率中产生空间调制。然后,所产生的电场与经高度调制的Es层一起,通过梯度漂移不稳定性驱动次级等离子体波的产生。所示的三个令人困惑的特征与这些次级波的特征有关。

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