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A combined rocket-borne and ground-based study of the sodium layer and charged dust in the upper mesosphere

机译:基于火箭传播和地面的研究,研究上层中层的钠层和带电尘埃

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摘要

The Hotel Payload 2 rocket was launched on January 31st 2008 at 20.14 LT from the Andøya Rocket Range in northern Norway (69.31° N, 16.01° E). Measurements in the 75–105 km region of atomic O, negatively-charged dust, positive ions and electrons with a suite of instruments on the payload were complemented by lidar measurements of atomic Na and temperature from the nearby ALOMAR observatory. The payload passed within 2.58 km of the lidar at an altitude of 90 km. A series of coupled models is used to explore the observations, leading to two significant conclusions. First, the atomic Na layer and the vertical profiles of negatively-charged dust (assumed to be meteoric smoke particles), electrons and positive ions, can be modelled using a self-consistent meteoric input flux. Second, electronic structure calculations and Rice–Ramsperger–Kassel–Markus theory are used to show that even small Fe–Mg–silicates are able to attach electrons rapidly and form stable negatively-charged particles, compared with electron attachment to O2 and O3. This explains the substantial electron depletion between 80 and 90 km, where the presence of atomic O at concentrations in excess of 1010 cm−3 prevents the formation of stable negative ions.
机译:旅馆有效载荷2火箭于2008年1月31日从挪威北部的安道亚火箭靶场(北纬69.31°,东经16.01°)以20.14 LT发射。在有效载荷上使用一套仪器对75-105 km范围内的原子O,带负电的尘埃,正离子和电子进行测量,并由附近ALOMAR天文台的激光雷达对原子的Na和温度进行了测量。有效载荷在90 km的高度通过激光雷达的2.58 km以内。使用一系列耦合模型来探索观测结果,从而得出两个重要结论。首先,可以使用自洽的陨石输入通量对原子Na层和带负电的尘埃(假定为陨石烟尘颗粒),电子和正离子的垂直分布进行建模。其次,电子结构计算和莱斯-拉姆斯伯格-卡塞尔-马库斯理论表明,与电子附着在O2和O3上相比,即使很小的Fe-Mg-硅酸盐也能迅速附着电子并形成稳定的带负电荷的粒子。这解释了在80至90 km之间的大量电子耗尽,其中原子O的浓度超过1010 cm-3会阻止形成稳定的负离子。

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