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Mineral Mapping of FeO and TiO_2 of the Cassini crater using Moon Mineralogy Mapper (M3) of Chandrayaan - 1

机译:利用Chandrayaan的月球矿物测图(M3)对卡西尼火山口FeO和TiO_2的矿物作图-1

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An essential aspect of space exploration is the study of the geological makeup of any interplanetary body and the Moon has been a source of great fascination for scientific researchers in this field. Lunar surface mineralogy provides significant shreds of evidence for interpreting the composition and evolution of the planet's crust. Spectral changes due to perpetuated exposure of the planetary surface to the space environment could be quantified using geological remote sensing. These optical properties depend on relative rates of surface modification processes. Assessment of the measure of lunar soil evolution may be denoted in terms of Optical Maturity (OMAT). Optical maturity parameter is an indicator of the maturity of lunar regolith and hence, its estimation is of great importance in studying the geological characterization of the lunar surface. Also, lunar mineral exploitation may be of significant importance in the near future. Synergetic use of spectral reflectance of lunar surface acquired by Moon Mineralogy Mapper (M3), onboard Chandrayaan - 1, with a hypothetically hyper matured optimized end member of the data, along with the standard weight percentages of FeO and Ti02 from lunar returned samples of Apollo and Luna landing sites, has been carried out using remote sensing based data interpolation techniques. The present work focusses on quantifying elemental concentration for characterizing lunar soil using hyperspectral data for Cassini crater, located at the eastern end of Mare Imbrium. Using local mosaic of M3 hyperspectral data and recalibrated element derivation algorithms, local modal abundance of FeO and Ti02 is found to be 6.88 wt% and 3.59 wt% respectively. The overall results establish that the crater is highly matured with a local modal maturity index of 0.064.
机译:太空探索的一个重要方面是对任何行星际天体的地质构成的研究,而月球一直是该领域科学研究人员着迷的源头。月球表面矿物学为解释行星地壳的组成和演化提供了大量证据。可以使用地质遥感对由于行星表面永久暴露于空间环境而引起的光谱变化进行量化。这些光学性质取决于表面改性过程的相对速率。可以通过光学成熟度(OMAT)来表示对月球土壤演化度量的评估。光学成熟度参数是月球巨石成熟度的指标,因此,其估算值对研究月球表面的地质特征具有重要意义。同样,在不久的将来,月球矿物的开采可能也具有重要的意义。由Chandrayaan-1号船上的Moon Mineralogy Mapper(M3)获取的月球表面光谱反射与数据的假设超成熟优化端值以及来自阿波罗号返回月球样品的FeO和Ti02的标准重量百分比协同使用和月神登陆场,已经使用基于遥感的数据插值技术进行了。本工作着重于利用位于马雷岛东端的卡西尼火山口的高光谱数据量化用于表征月球土壤的元素浓度。使用M3高光谱数据的局部镶嵌和重新校准的元素推导算法,发现FeO和TiO2的局部模态丰度分别为6.88 wt%和3.59 wt%。总体结果表明,火山口高度成熟,局部模态成熟度指数为0.064。

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