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Hypervelocity Impact Effect of Molecules from Enceladus’ Plume and Titan’s Upper Atmosphere on NASA’s Cassini Spectrometer from Reactive Dynamics Simulation

机译:反应动力学模拟从土卫二羽流和土卫六上层大气中的分子对NASA卡西尼光谱仪的超高速冲击效应

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摘要

The NASA/ESA Cassini probe of Saturn analyzed the molecular composition of plumes emanating from one of its moons, Enceladus, and the upper atmosphere of another, Titan. However, interpretation of this data is complicated by the hypervelocity (HV) flybys of up to ∼18  km/sec that cause substantial molecular fragmentation. To interpret this data we use quantum mechanical based reactive force fields to simulate the HV impact of various molecular species and ice clathrates on oxidized titanium surfaces mimicking those in Cassini’s neutral and ion mass spectrometer (INMS). The predicted velocity dependent fragmentation patterns and composition mixing ratios agree with INMS data providing the means for identifying the molecules in the plume. We used our simulations to predict the surface damage from the HV impacts on the INMS interior walls, which we suggest acts as a titanium sublimation pump that could alter the instrument’s readings. These results show how the theory can identify chemical events from hypervelocity impacts in space plumes and atmospheres, providing in turn clues to the internal structure of the corresponding sources (e.g., Enceladus). This may be valuable in steering modifications in future missions.
机译:土星的NASA / ESA卡西尼号探测器分析了其中一颗月亮土卫二和另一颗泰坦土卫六的高层大气所散发的烟气的分子组成。但是,由于高达约18 km / sec的超高速(HV)飞越,导致大量的分子碎裂,该数据的解释变得复杂。为了解释这些数据,我们使用基于量子力学的反作用力场来模拟各种分子种类和冰包合物在氧化钛表面上的HV冲击,这些氧化钛表面类似于卡西尼号的中性和离子质谱仪(INMS)。预测的速度依赖性碎片图谱和成分混合比与INMS数据相符,为识别羽流中的分子提供了手段。我们使用模拟来预测高压对INMS内壁造成的表面损坏,我们建议将其用作升华钛泵,以改变仪器的读数。这些结果表明,该理论如何从空间羽流和大气中的超高速撞击中识别化学事件,从而为相应来源(例如土卫二)的内部结构提供线索。这在将来的任务中指导改进可能是有价值的。

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