Contamination Control for Ultra-Sensitive Life-Detection Missions

J. Eigenbrode, R. Gold, J. Canham, Erich Schulze, A. Davila, A. Seas, T. Errigo, Faith Kujawa, D. Kusnierkiewicz, C. Lorentson, C. McKay
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引用次数: 4

Abstract

A key science priority for planetary exploration is to search for signs of life in our Solar System. Life-detection mission concepts aim to assess whether or not biomolecular signatures of life are present, which requires highly sensitive instrumentation. This introduces greater risk of false positives, and perhaps false negatives. Stringent science-derived contamination requirements for achieving science measurements on life-detection missions necessitate mitigation approaches that minimize, protect from, and prevent science-relevant contamination of critical surfaces of the science payload and provide high confidence to life-detection determinations. To this end, we report on technology advances that focus on understanding contamination transfer from pre-launch processing to end of mission using high-fidelity physics in the form of computational fluid dynamics and sorption physics for monolayer adsorption/desorption, and on developing a new full-spacecraft bio-molecular barrier design that restricts contamination of the spacecraft and instruments by the launch vehicle hardware. The bio-molecular barrier isolates the spacecraft from biological, molecular, and particulate contamination from the external environment. Models were used to evaluate contamination transport for a designs reference mission that utilizes the barrier. Results of the modeling verify the efficacy of the barrier and an in-cruise decontamination activity. Overall mission contamination tracking from launch to science operations demonstrated exceptionally low probability on contamination impacting science measurements, meeting the stringent contamination requirements of femtomolar levels of compounds. These advances will enable planetary missions that aim to detect and identify signatures of life in our Solar System.
超灵敏生命探测任务的污染控制
行星探索的一个关键科学优先事项是在太阳系中寻找生命的迹象。生命探测任务的概念旨在评估是否存在生命的生物分子特征,这需要高灵敏度的仪器。这就引入了更大的假阳性和假阴性的风险。为实现对生命探测任务的科学测量,对科学产生的污染有严格的要求,因此必须采取减缓措施,尽量减少、防止和防止科学有效载荷关键表面受到与科学有关的污染,并为生命探测确定提供高度的信心。为此,我们报告了技术进步,重点是利用计算流体动力学和单层吸附/解吸的高保真物理形式来理解从发射前处理到任务结束的污染转移,并开发了一种新的全航天器生物分子屏障设计,以限制航天器和仪器受到运载火箭硬件的污染。生物分子屏障将航天器与外部环境的生物、分子和颗粒污染隔离开来。使用模型来评估利用屏障的设计参考任务的污染传输。建模结果验证了屏障和巡航中去污活动的有效性。从发射到科学操作的整体任务污染跟踪表明,污染影响科学测量的可能性非常低,满足了飞摩尔化合物水平的严格污染要求。这些进步将使旨在探测和识别太阳系生命特征的行星任务成为可能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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