论文标题

Triton大气的光化学模型,具有不确定性繁殖研究

A photochemical model of Triton's atmosphere with an uncertainty propagation study

论文作者

Benne, B., Dobrijevic, M., Cavalié, T., Loison, J-C., Hickson, K. M.

论文摘要

特里顿(Triton)是海王星(Neptune)最大的卫星,也许是地球捕获的库珀带物体。它具有与冥王星相似的脆弱氮气气氛,可能是海洋世界。 Neptunian系统仅是Voyager 2在1989年才访问的。在过去的几年中,对冰巨头及其系统的新任务的需求有所增加,因此为这种任务做准备的理论基础很重要。 我们的目标是通过先前的光化学模型可以追溯到后期的年代,以最新的化学方案开发特里顿大气的光化学模型。这样做的目的是更好地理解有关特里顿大气化学的机制,并突出显示对大气组成产生重大影响的关键参数。我们还研究模型的不确定性,以找​​到需要哪些化学研究来改善特里顿大气的建模。 我们将泰坦大气的模型调整为特里顿的条件。我们首先使用Titan的化学方案,然后将其更新以更好地建模Triton的大气层。一旦获得了名义结果,我们就研究了使用蒙特卡洛程序的模型不确定性。然后,我们进行了全局灵敏度分析,以确定负责模型不确定性的反应。 通过名义结果,我们确定了特里顿大气的组成,并研究了主要的化学过程。我们强调了关键的化学反应,这对于整体化学最重要。我们还确定了一些对结果产生重大影响的关键参数。由于大气温度非常低,大多数主要大气物种的不确定性很大。我们确定了关键的不确定性反应,对结果不确定性产生最大影响。这些反应必须优先研究,以提高我们结果的重要性。

Triton is the largest satellite of Neptune and probably a Kuiper Belt Object that was captured by the planet. It has a tenuous nitrogen atmosphere similar to the one of Pluto and may be an ocean world. The Neptunian system has only been visited by Voyager 2 in 1989. Over the last few years, the demand for a new mission to the Ice Giants and their systems has increased so that a theoretical basis to prepare for such a mission is important. We aim to develop a photochemical model of Triton's atmosphere with an up-to-date chemical scheme, as previous photochemical models date back to the post-flyby years. This is done to better understand the mechanisms governing Triton's atmospheric chemistry and highlight the critical parameters having a significant impact on the atmospheric composition. We also study model uncertainties to find what chemical studies are necessary to improve the modeling of Triton's atmosphere. We adapted a model of Titan's atmosphere to Triton's conditions. We first used Titan's chemical scheme before updating it to better model Triton's atmosphere. Once the nominal results were obtained, we studied model uncertainties with a Monte-Carlo procedure. Then, we performed global sensitivity analyzes to identify the reactions responsible for model uncertainties. With the nominal results, we determined the composition of Triton's atmosphere and studied the main chemical processes. We highlighted key chemical reactions that are the most important for the overall chemistry. We also identified some key parameters having a significant impact on the results. Uncertainties are large for most of the main atmospheric species as the atmospheric temperature is very low. We identified key uncertainty reactions that have the largest impact on the results uncertainties. These reactions must be studied in priority in order to improve the significance of our results.

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