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Photochemical modeling of molecular and atomic oxygen based on multiple nightglow emissions measured in situ during the Energy Transfer in the Oxygen Nightglow rocket campaign

机译:基于多个夜间排放的分子和原子氧气的光化学建模在氧气夜谷火箭竞选中的能源转移期间原位测量

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Electronically excited states of molecular and atomic oxygen (six O2 and two O) were implemented in the proposed Multiple Airglow Chemistry (MAC) model as minor species coupled with each other as well as with the ground states of O2 and O to represent the photochemistry in the upper mesosphere and lower thermosphere (MLT) region. The MAC model combines chemical processes of well-known photochemical models related to identified O2 and O species and some additional processes. Concentrations of excited O2 and O species were retrieved using the MAC model on the basis of the multiple nightglow emissions measured in situ during the Energy Transfer in the Oxygen Nightglow (ETON) rocket campaign. The proposed retrieval procedure to obtain the concentrations of these minor species in the MLT region is implemented by avoiding a priori data sets. Unknown and poorly constrained reaction rates were tuned, and the reaction rates of the well-known models were updated with the MAC model by comparing in situ and evaluated emission profiles as well as in situ and retrieved O concentration profiles. As a result, precursors of O2 and O species responsible for the transitions considered in the MAC model are identified and validated.
机译:以电子激发的分子和原子氧(602和两种)在提出的多次释放化学(MAC)模型中实施,作为彼此耦合的次要物种以及O2和O的地面状态,以代表光化学上部叶片圈和下热层(MLT)区域。 MAC模型将众所周知的光化学模型的化学过程结合了鉴定的O2和O物种以及一些附加过程。使用MAC模型在氧气夜间(ETON)火箭运动中的能量转移期间以原位测量的多个夜间排放来检索激发O2和O物种的浓度。通过避免先验数据集来实现所提出的检索过程以获得MLT区域中的这些次要物种的浓度。调整未知且受约束的反应速率,并且通过以原位比较和评估发射曲线以及原位和检索的o浓度分布,通过MAC模型更新众所周知模型的反应速率。结果,识别和验证负责MAC模型中考虑的过渡的O2和O物种的前体。

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