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首页> 外文期刊>Planetary and space science >Field and laboratory validation of remote rover operations Science Team findings: The CanMars Mars Sample Return analogue mission
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Field and laboratory validation of remote rover operations Science Team findings: The CanMars Mars Sample Return analogue mission

机译:远程流浪者运营科学团队调查结果的现场和实验室验证:帆布火星样本返回模拟使命

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摘要

The CanMars Mars Sample Return Analogue Deployment (MSRAD) was a closely simulated, end-to-end Mars Sample Return (MSR) mission scenario, with instrumentation, goals, and constraints modeled on the upcoming NASA Mars 2020 rover mission; this paper reports on the post-mission validation of the exercise. The exercise utilized the CSA Mars Exploration Science Rover (MESR) rover, deployed to Utah, USA, at a Mars-analogue field site. The principal features of the field site located near Green River, Utah are Late Jurassic inverted, fluvial paleochannels, analogous to features on Mars in sites being considered for the ESA ExoMars rover mission and present within the chosen landing site for the Mars 2020 rover mission. The in-simulation ("in-sim") mission operations team worked remotely from The University of Western Ontario, Canada. A suite of MESR-integrated and hand-held spectrometers was selected to mimic those of the Mars 2020 payload, and a Utah-based, on-site team was tasked with field operations to carry out the data collection and sampling as commanded by the in-sim team. As a validation of the in-sim mission science findings, the field team performed an independent geological assessment. This paper documents the field team's on-site geological assessment and subsequent laboratory and analytical results, then offers a comparison of mission (in-sim) and post-mission (laboratory) science results. The laboratory-based findings were largely consistent with the in-sim rover-derived data and geological interpretations, though some notable exceptions highlight the inherent difficulties in remote science. In some cases, available data was insufficient for lithologic identification given the absence of other important contextual information (e.g., textural information). This study suggests that the in-sim instruments were largely adequate for the Science Team to characterize samples; however, rover-based field work is necessarily hampered by mobility and time constraints with an obvious effect on efficiency but also precision, and to some extent, accuracy of the findings. The data show a dearth of preserved total organic carbon (TOC) - used as a proxy for ancient biosignature preservation potential - in the fluvial-lacustrine system of this field site, suggesting serious consideration with respect to the capabilities and opportunities for addressing the Mars exploration goals. We therefore suggest a thorough characterization of terrestrial sites analogous to those of Mars rover landing sites, and in-depth field studies like CanMars as important, pre-mission strategic exercises.
机译:帆布MARS样本返回模拟部署(MSRAD)是一个紧密模拟的端到端MARS样本返回(MSR)任务方案,在即将到来的NASA MARS 2020 Rover Mission上建模的仪器,目标和约束;本文报告了执行后锻炼的验证。该练习利用了CSA Mars探索科学Rover(MESR)ROVER,在MARS-模拟场网站上部署到USA。犹他州犹他州的田野现场的主要特点是侏罗纪倒,河流古希腊,类似于MARS在被审议的MARS中的特征,在欧洲兽舍·埃斯莫尔罗孚使命和出现在MARS 2020 Rover Mission的选定登陆网站内。模拟(“SIM”)任务运营团队从加拿大安大略大学远程工作。选择了一套MESR集成和手持式光谱仪以模仿MARS 2020有效载荷,而基于犹他州的现场团队则由现场操作任务,以执行in in命令的数据收集和抽样-sim团队。作为SIM in-SIM使命科学调查结果的验证,该领域的团队进行了独立的地质评估。本文介绍了现场团队的现场地质评估和随后的实验室和分析结果,然后提供了使命(SIM)和任务后(实验室)科学结果的比较。基于实验室的调查结果在很大程度上是符合In-SIM流动站推导的数据和地质解释的一致性,尽管一些显着的例外突出了远程科学的固有困难。在某些情况下,鉴于没有其他重要的上下文信息(例如,纹理信息),可用数据不足以鉴于岩石识别(例如,纹理信息)。本研究表明,SIM Instruments在很大程度上适用于Science Team来表征样本;然而,基于流动的现场工作必须受到流动性和时间限制的阻碍,并且对效率显而易见,并且在某种程度上,在某种程度上是调查结果的准确性。该数据显示了保存的总有机碳(TOC)的缺乏 - 用作古代生物生物化保存潜力的代理 - 在该领域现场的河流 - 湖泊系统中,这表明关于解决火星勘探的能力和机会的认真考虑目标。因此,我们建议彻底表征类似于火星罗孚着陆位点的地面网站,以及帆布等深入现场研究,如帆布,前期任务前的战略练习。

著录项

  • 来源
    《Planetary and space science》 |2019年第10期|104682.1-104682.27|共27页
  • 作者单位

    Univ Western Ontario Ctr Planetary Sci & Explorat Dept Earth Sci 1151 Richmond Si London ON N6A 3K7 Canada;

    Univ Western Ontario Ctr Planetary Sci & Explorat Dept Earth Sci 1151 Richmond Si London ON N6A 3K7 Canada|Univ Western Ontario Dept Phys & Astron 1151 Richmond St London ON N6A 3K7 Canada;

    Univ Western Ontario Ctr Planetary Sci & Explorat Dept Earth Sci 1151 Richmond Si London ON N6A 3K7 Canada;

    CALTECH Jet Prop Lab 4800 Oak Grove Dr Pasadena CA 91109 USA|CALTECH Pasadena CA 91125 USA|Univ Southern Calif Dept Earth Sci Los Angeles CA 90089 USA;

    MIT Dept Earth Atmospher & Planetary Sci Cambridge MA 02139 USA;

    CALTECH Jet Prop Lab 4800 Oak Grove Dr Pasadena CA 91109 USA;

    Univ Western Ontario Ctr Planetary Sci & Explorat Dept Earth Sci 1151 Richmond Si London ON N6A 3K7 Canada;

    Univ Western Ontario Ctr Planetary Sci & Explorat Dept Earth Sci 1151 Richmond Si London ON N6A 3K7 Canada;

    Univ Western Ontario Ctr Planetary Sci & Explorat Dept Earth Sci 1151 Richmond Si London ON N6A 3K7 Canada;

    Univ Western Ontario Ctr Planetary Sci & Explorat Dept Earth Sci 1151 Richmond Si London ON N6A 3K7 Canada;

    Univ Western Ontario Ctr Planetary Sci & Explorat Dept Earth Sci 1151 Richmond Si London ON N6A 3K7 Canada;

    CALTECH Jet Prop Lab 4800 Oak Grove Dr Pasadena CA 91109 USA;

    CALTECH Jet Prop Lab 4800 Oak Grove Dr Pasadena CA 91109 USA;

    Univ Western Ontario Ctr Planetary Sci & Explorat Dept Earth Sci 1151 Richmond Si London ON N6A 3K7 Canada;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Mars; Rover; Analogue mission; Sample return; Mission operations;

    机译:火星;流浪者;模拟使命;样品返回;特派团运营;

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