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Auroral ionospheric E region parameters obtained from satellite- based far-ultraviolet and ground-based ionosonde observations – effects of proton precipitation

机译:基于卫星的远紫外线和基于地基离子的极光电离层E区域参数 - 质子沉淀的效果

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Coincident auroral far-ultraviolet (FUV) and ground-based ionosonde observations are compared for the purpose of determining whether auroral FUV remote sensing algorithms that assume pure electron precipitation are biased in the presence of proton precipitation. Auroral particle transport and optical emission models, such as the Boltzmann 3-Constituent (B3C) model, predict that maximum E region electron density (NmE) values derived from auroral Lyman–Birge–Hopfield (LBH) emissions, assuming electron precipitation, will be biased by up to ~20 ?% (high) for pure proton aurora, while comparisons between LBH radiances and radiances derived from in situ particle flux observations (i.e., Knight et al., 2008, 2012) indicate that the bias associated with proton aurora should be much larger. Surprisingly, in the comparisons with ionosonde observations described here, no bias associated with proton aurora is found in FUV-derived auroral NmE, which means that auroral FUV remote sensing methods for NmE are more accurate in the presence of proton precipitation than was suggested in the aforementioned earlier works. Possible explanations for the discrepancy with the earlier results are discussed.
机译:比较致极性极光紫外线(FUV)和地基离子晶体观察,​​以确定假设纯电子沉淀的极光FUV遥感算法是否在质子沉淀的存在下偏置。极光粒子传输和光学发射模型,例如Boltzmann 3-组分(B3C)模型,预测了假设电子降水的极光Lyman-Birge-Hopfield(LBH)排放的最大E区域电子密度(NME)值将是纯质子极光偏向高达约20?%(高),而LBH辐射和来自原位粒子通量观察的LBH辐射和广场的比较(即Knight等人,2008,2012)表明与质子Aurora相关的偏差应该更大。令人惊讶的是,在这里描述的离子亮孔观察的比较中,在FUV衍生的极光NME中没有发现与质子极光相关的偏差,这意味着在质子沉淀的情况下,NME的极光FUV遥感方法比提出的质子沉淀更准确。前面的早期作品。讨论了与前面结果的差异的可能解释。

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