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Development and Applications of a Multispectral Microscopic Imager for the In Situ Exploration of Planetary Surfaces.

机译:用于行星表面原位探索的多光谱显微成像仪的开发和应用。

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摘要

Future robotic and human missions to the Moon and Mars will need in situ capabilities to characterize the mineralogy of rocks and soils within a microtextural context. Such spatially-correlated information is considered crucial for correct petrogenetic interpretations and will be key observations for assessing the potential for past habitability on Mars. These data will also enable the selection of the highest value samples for further analysis and potential caching for return to Earth. The Multispectral Microscopic Imager (MMI), similar to a geologist's hand lens, advances the capabilities of current microimagers by providing multispectral, microscale reflectance images of geological samples, where each image pixel is comprised of a 21-band spectrum ranging from 463 to 1735 nm. To better understand the capabilities of the MMI in future surface missions to the Moon and Mars, geological samples comprising a range of Mars-relevant analog environments as well as 18 lunar rocks and four soils, from the Apollo collection were analyzed with the MMI. Results indicate that the MMI images resolve the fine-scale microtextural features of samples, and provide important information to help constrain mineral composition. Spectral end-member mapping revealed the distribution of Fe-bearing minerals (silicates and oxides), along with the presence of hydrated minerals. In the case of the lunar samples, the MMI observations also revealed the presence of opaques, glasses, and in some cases, the effects of space weathering in samples. MMI-based petrogenetic interpretations compare favorably with laboratory observations (including VNIR spectroscopy, XRD, and thin section petrography) and previously published analyses in the literature (for the lunar samples). The MMI was also deployed as part of the 2010 ILSO-ISRU field test on the slopes of Mauna Kea, Hawaii and inside the GeoLab as part of the 2011 Desert RATS field test at the Black Point Lava Flow in northern Arizona to better assess the performance of the MMI under realistic field conditions (including daylight illumination) and mission constraints to support human exploration. The MMI successfully imaged rocks and soils in outcrops and samples under field conditions and mission operation scenarios, revealing the value of the MMI to support future rover and astronaut exploration of planetary surfaces.
机译:未来对月球和火星的机器人和人类飞行任务将需要在微纹理环境下就地表征岩石和土壤矿物学特征的现场能力。这种与空间相关的信息被认为对正确的岩石遗传学解释至关重要,并且将是评估火星过去可居住性潜力的关键观察结果。这些数据还将使您能够选择最高价值的样本,以进行进一步的分析和潜在的缓存以返回地球。与地质学家的手镜相似,多光谱显微成像仪(MMI)通过提供地质样品的多光谱,微尺度反射图像来提高当前的微成像仪的功能,其中每个图像像素均由463至1735 nm的21波段光谱组成。为了更好地了解MMI在未来对月球和火星的地面飞行中的能力,使用MMI对来自Apollo收集的包括一系列与火星相关的模拟环境以及18个月球岩石和4种土壤的地质样品进行了分析。结果表明,MMI图像解析了样品的精细微观结构特征,并提供了有助于限制矿物成分的重要信息。光谱的末端成员作图显示了含铁矿物(硅酸盐和氧化物)的分布以及水合矿物的存在。在月球样品的情况下,MMI观察还揭示了不透明物,眼镜的存在,在某些情况下还显示了样品中空间风化的影响。基于MMI的成岩解释与实验室观测结果(包括VNIR光谱,XRD和薄层岩石学)和文献中先前发表的分析(针对月球样品)相比具有优势。 MMI还作为2010 ILSO-ISRU现场测试的一部分在夏威夷的莫纳克亚山斜坡上和GeoLab内部进行了部署,作为2011年沙漠RATS现场测试的一部分在亚利桑那州北部的黑点熔岩流中进行了部署,以更好地评估性能在现实的野外条件下(包括日光照明)和任务限制来支持人类探索的MMI。 MMI在野外条件和任务运行情况下成功地对露头和样品中的岩石和土壤进行了成像,揭示了MMI在支持未来的漫游者和宇航员探索行星表面方面的价值。

著录项

  • 作者

    Nunez Sanchez, Jorge Ivan.;

  • 作者单位

    Arizona State University.;

  • 授予单位 Arizona State University.;
  • 学科 Geology.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 288 p.
  • 总页数 288
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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