首页> 外文期刊>Journal of Geophysical Research, A. Space Physics: JGR >Temporal and spatial resolved SuperDARN line of sight velocity measurements corrected for plasma index of refraction using Bayesian inference
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Temporal and spatial resolved SuperDARN line of sight velocity measurements corrected for plasma index of refraction using Bayesian inference

机译:时间和空间分辨的SuperDARN视线速度测量值,使用贝叶斯推断校正了等离子体的折射率

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摘要

Recent work by Gillies et al. (2012, 2009, 2010) has sought an explanation for the SuperDARN line-of-sight velocity underestimate of ionospheric plasma velocity. The reason for the underestimation is thought to be from the modification of the measured Doppler shift of the backscattered signal due to phase refractive index of the ionospheric plasma in the scattering region. Presented here is an analysis technique to estimate the plasma drift velocity, correcting for the index of the refraction of the scattering medium. The technique requires dual frequency SuperDARN observations and calculates velocity from the phase of the SuperDARN autocorrelation function (ACF). Both plasma velocity and plasma density are treated as independent unknowns, and self-consistent error estimates are generated for each. This new technique was employed at the McMurdo radar, resulting in estimates of plasma velocity on scales relevant to existing SuperDARN data products. The McMurdo dual frequency analysis also provides a new SuperDARN data product, an estimate for the plasma density in the ionospheric region derived wholly from SuperDARN backscatter.
机译:Gillies等人的最新工作。 (2012年,2009年,2010年)寻求对SuperDARN视线速度低估电离层等离子体速度的解释。低估的原因被认为是由于散射区域中电离层等离子体的相折射率导致的后向散射信号的测量多普勒频移的修改。这里介绍的是一种估计等离子体漂移速度的分析技术,可校正散射介质的折射率。该技术需要对SuperDARN进行双频观测,并根据SuperDARN自相关函数(ACF)的相位计算速度。等离子体速度和等离子体密度均被视为独立的未知数,并且为每个均生成自洽误差估计。 McMurdo雷达采用了这项新技术,从而在与现有SuperDARN数据产品相关的尺度上估算了等离子体速度。 McMurdo双频分析还提供了一个新的SuperDARN数据产品,它是对电离层区域中等离子体密度的估计,完全来自SuperDARN反向散射。

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