用Dynasonde技术研究热层-电离层系统中的波活动

N. Zabotin, O. Godin, C. Negrea, T. Bullett, L. Zabotina
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引用次数: 2

摘要

基于相位的电离层探测方法利用了物理参数的高精度和识别回波的丰富统计数据。正如最近所证明的那样,电子密度和水平梯度的Dynasonde剖面图与多普勒速度剖面图相结合,可以提供关于大气重力波的全面定量信息,这是空间天气中普遍存在的特征,已成为大气模拟的重要目标。将这些剖面组合成一个时间序列,无需额外处理,就可以可视化电离层扰动(TIDs)的时间锋。它们还提供了高分辨率的输入数据,用于计算E层底部和F层最大值之间的高层大气TID活动的完整参数集(包括垂直和水平)。Lomb-Scargle周期图技术对倾斜数据的应用提供了对TIDs光谱组成动态的独特见解。类似的技术应用于更长的时间序列,可以确定热层潮汐的特征。单次探空可以观测地面源产生的声波在电离层的表现。所有上述产品的Dynasonde数据分析需要一个共同的,标准的离子图模式的雷达操作。因此,有关电离层E、F区域的标准参数信息、获得表征等离子体等高线运动的矢量速度的可能性以及千米尺度不规则谱的定量参数不会丢失,有助于全面描述热层-电离层系统的波活动。
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Studies of wave activity in the thermosphere-ionosphere system using Dynasonde techniques
Dynasonde approach to ionospheric radio sounding capitalizes on high precision of physical parameters and rich statistics of recognized echoes phase-based methods can provide. As has been recently demonstrated, the Dynasonde profiles of the electron density and of the horizontal gradients, complemented with profiles of the Doppler speed, carry comprehensive quantitative information about Atmospheric Gravity Waves, a ubiquitous feature of the space weather that has become an important objective of atmospheric modeling. Being combined into a time series, and without additional processing, the profiles allow visualization of the time fronts of the Traveling Ionospheric Disturbances (TIDs). They also provide high-resolution input data for calculating the complete set of parameters (both vertical and horizontal) of TID activity in the upper atmosphere between the base of the E layer and the maximum of the F layer. Application of the Lomb-Scargle periodogram technique to the tilt data provides unique insight into the dynamics of spectral composition of the TIDs. A similar technique applied to longer time series allows determining characteristics of thermospheric tides. Single sounding sessions allow observations of ionospheric manifestations of acoustic waves produced by ground-based sources. All the mentioned products of the Dynasonde data analysis require a common, standard ionogram mode of radar operation. Therefore, information about standard parameters of the ionospheric E, F regions, possibility to obtain vector velocities characterizing movement of plasma contours, and quantitative parameters of the km-scale irregularity spectrum are not lost and contribute into comprehensive description of wave activity in the thermosphere-ionosphere system.
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