Altitude-Dependent Plasma Parameter Variations of Synthetic EISCAT UHF and VHF Incoherent Scatter Spectra Calculated From TIE-GCM Results

IF 2.9 2区 地球科学 Q2 ASTRONOMY & ASTROPHYSICS Journal of Geophysical Research: Space Physics Pub Date : 2025-01-04 DOI:10.1029/2024JA033471
Florian Günzkofer, Gunter Stober, Frank Heymann, Anders Tjulin, Claudia Borries
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Abstract

Incoherent scatter radar measurements rely on the application of a priori parameters from empirical models to initialize the analysis of incoherent scatter spectra. Currently, there is a need to transform ionosphere models to enable reliable space weather predictions through data assimilation of observations. Very often the data assimilation relies on electron densities measured with incoherent scatter radars. Erroneous a priori parameters would lead to the assimilation of inaccurate and physically inconsistent data depending on the ionospheric model. It might therefore be beneficial to assimilate the entire radar spectrum and infer the plasma parameters from the assimilated spectrum by applying the a priori parameters as given by the model. To assess the potential assimilation of incoherent scatter spectra into models, we investigate synthetic EISCAT incoherent scatter spectra calculated from TIE-GCM results. At F1 region altitudes, the atomic-to-molecular ion ratio strongly affects the shape of the incoherent scatter spectrum. Since the vertical profiles of the atomic-to-molecular ion ratio are distinctly different in the EISCAT a priori model and TIE-GCM, the assimilation of single plasma parameters induces additional, unbalanced forces into the model. A similar problem arises in the E region due to different ion-neutral collision frequency profiles. These problems could be solved by assimilation of the entire incoherent scatter spectrum followed by an in-model evaluation of the plasma parameters. We demonstrate the effect of different a priori profiles on the spectral analysis and how the derived plasma parameters are changing when leveraging a more comprehensive approach of using forward modeling with TIE-GCM.

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利用TIE-GCM计算合成EISCAT UHF和VHF非相干散射谱的高度相关等离子体参数变化
非相干散射雷达测量依赖于经验模型先验参数的应用来初始化非相干散射光谱分析。目前,需要对电离层模式进行转换,以便通过观测资料同化实现可靠的空间天气预报。数据同化通常依赖于用非相干散射雷达测量的电子密度。错误的先验参数将导致根据电离层模式同化不准确和物理上不一致的数据。因此,利用模型给出的先验参数,吸收整个雷达频谱并从吸收的频谱中推断出等离子体参数可能是有益的。为了评估非相干散射光谱在模型中的同化潜力,我们研究了根据TIE-GCM结果计算的合成EISCAT非相干散射光谱。在F1区高度,原子-分子离子比对非相干散射谱的形状有强烈的影响。由于EISCAT先验模型和TIE-GCM中原子与分子离子比的垂直分布明显不同,单一等离子体参数的同化会在模型中引入额外的不平衡力。由于不同的离子中性碰撞频率分布,在E区也出现了类似的问题。这些问题可以通过同化整个非相干散射谱,然后在模型内评估等离子体参数来解决。我们展示了不同的先验剖面对光谱分析的影响,以及当利用TIE-GCM的更全面的正演建模方法时,衍生的等离子体参数是如何变化的。
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来源期刊
Journal of Geophysical Research: Space Physics
Journal of Geophysical Research: Space Physics Earth and Planetary Sciences-Geophysics
CiteScore
5.30
自引率
35.70%
发文量
570
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