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Precipitating Electron Energy Spectra and Auroral Power Estimation by Incoherent Scatter Radar With High Temporal Resolution

机译:沉淀电子能量谱和极光评估通过非相干散射雷达高时间分辨率

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摘要

This study presents an improved method to estimate differential energy flux, auroral power and field-aligned current of electron precipitation from incoherent scatter radar data. The method is based on a newly developed data analysis technique that uses Bayesian filtering to fit altitude profiles of electron density, electron temperature, and ion temperature to observed incoherent scatter spectra with high time and range resolutions. The electron energy spectra are inverted from the electron density profiles. Previous hightime resolution fits have relied on the raw electron density, which is calculated from the backscattered power assuming that the ion and electron temperatures are equal. The improved technique is applied to one auroral event measured by the EISCAT UHF radar and it is demonstrated that the effect of electron heating on electron energy spectra, auroral power, and upward field-aligned current can be significant at times. Using the fitted electron densities instead of the raw ones may lead to wider electron energy spectra and auroral power up to 75% larger. The largest differences take place for precipitation that produces enhanced electron heating in the upper E region, and in this study correspond to fluxes of electrons with peak energies from 3 to 5 keV. Finally, the auroral power estimates are verified by comparison to the 427.8 nm auroral emission intensity, which shows good correlation. The improved method makes it possible to calculate unbiased estimates of electron energy spectra with high time resolution and thereby to study rapidly varying aurora.
机译:本研究提出了一种改进的方法来估计微分能量通量,极光和力量field-aligned当前电子降水非相干散射雷达数据。基于一个新开发的数据分析使用贝叶斯过滤技术来适应高度的电子密度、电子温度和离子温度与高时间和非相干散射光谱范围的决议。从电子密度倒置概要文件。以前hightime决议符合依靠原始的电子密度,计算背散射能力的假设离子和电子的温度相等。改善技术是应用于一个极光事件的EISCAT特高频雷达和证明电子加热的效果电子能量谱,极光力量,向上field-aligned电流可以是巨大的有时。而不是原始的可能导致更广泛电子能量谱和极光大75%。降水产生增强的电子上E地区供暖,在这项研究中对应的电子通量的峰值从3到5 keV能量。功率估计通过比较验证427.8 nm极光排放强度,这节目良好的相关性。可以计算的无偏估计电子能量与高时间分辨率光谱迅速,从而研究不同的极光。

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