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Using tweek atmospherics to measure the response of the low-middle latitude D-region ionosphere to a magnetic storm

机译:使用tweek大气测量中低纬度D区电离层对磁暴的响应

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Tweek atmospherics are pulse signals from ELF/VLF electromagnetic waves caused by lightning discharges; these signals have characteristic cut-off frequencies due to long-distance propagation by the Earth-ionosphere waveguide mode. We developed a method of estimating tweek reflection heights (equivalent electron densities) in the low-middle latitude D-region ionosphere by accurate measurement of their first-order mode cut-off frequency (similar to 1.8 kHz). This research is the first to show reflection-height measurements of the D-region ionosphere's response to the great geomagnetic storm in October 2000 using tweek atmospherics observations. We found transient lowering/rising in the small bay D-st-variation and rising near the maximum depression of the major bay D-st-variation. Comparing this response in tweek reflection heights with the intensities of 40 kHz radio-wave signals, electron density profiles from the IRI-2001 model and measured by M F radars, and the ionospheric F-region parameter (h'F) from ionosonde data, we determined two cases where the lowering/rising of the D-region was coupled with vertical motion of the F-region and one where it was not. Based on simultaneous total electron content (TEC) perturbation data, we suggest the following possible mechanisms for these two results: E x B vertical plasma drift due to ionospheric electric fields, and the propagation of large-scale traveling ionospheric disturbances (LSTIDs) from the auroral to low-latitude ionosphere, respectively. (c) 2005 Elsevier Ltd. All rights reserved.
机译:Tweek大气是闪电放电引起的ELF / VLF电磁波的脉冲信号;由于地球电离层波导模式的长距离传播,这些信号具有特征性的截止频率。我们开发了一种方法,可以通过精确测量低周纬度D区电离层的一阶模式截止频率(类似于1.8 kHz)来估计其t周反射高度(等效电子密度)。这项研究是第一个使用tweek大气观测资料来显示D区电离层对2000年10月大地磁风暴的响应的反射高度测量结果。我们发现小湾D-st变异的瞬时下降/上升和主要湾D-st变异的最大凹陷附近的上升/上升。比较在t周反射高度上的这种响应与40 kHz无线电信号的强度,来自IRI-2001模型并由MF雷达测量的电子密度分布以及来自电离探空仪数据的电离层F区域参数(h'F),我们确定了两种情况,D区域的下降/上升与F区域的垂直运动相结合,而另一种情况则没有。根据同时存在的总电子含量(TEC)扰动数据,我们为这两个结果提出以下可能的机制:电离层电场引起的E x B垂直等离子体漂移,以及来自电离层电场的大规模行进电离层扰动(LSTID)的传播。极光到低纬度电离层。 (c)2005 Elsevier Ltd.保留所有权利。

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