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A 3-D study of mineral inclusions in chromite from ordinary chondrites using synchrotron radiation X-ray tomographic microscopy-Method and applications

机译:同步辐射X射线断层显微镜对普通球粒陨石中铬铁矿中矿物包裹体的3-D研究-方法与应用

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摘要

A method is described for imaging in 3-D the interiors of meteoritic chromite grains and their inclusions using synchrotron radiation X-ray tomographic microscopy. In ordinary chondrites, chromite is the only common mineral that survives long-term weathering on Earth. Information about the silicate matrix of the original meteorite, however, can be derived from mineral inclusions preserved in the protecting chromite. The inclusions are crucial in the classification of fossil meteorites as well as sediment-dispersed chromite grains from decomposed meteorites and larger impacts, as these are used for characterizing the past influx of material to Earth, but have previously been difficult to locate. The method is non-destructive and time efficient for locating inclusions. The method allowed quantitative and morphological studies of both host chromite grains and inclusions in three dimensions. The study of 385 chromite grains from eight chondrites (H4-6, L4-6, LL4, LL6) reveals that inclusions are abundant and equally common in all samples. Almost two-thirds of all chromite grains contain inclusions, regardless of group and type. The study also shows that the size of the inclusions and the host chromite grains, as well as the number of inclusions, within the host chromite grains vary with petrographic type. Thus, the petrographic type of the host of a suite of chromite grains can be determined based solely on inclusion content. The study also revealed that the amount of fractures in the host chromite can be correlated to previously assigned shock stages for the various chondrites. The study has thus shown that the features and inclusions of fossil chromite grains can give similar information about a former host meteorite as do studies of an unweathered whole meteorite, meaning that this technique is essential in the studies of ancient meteorite flux to Earth.
机译:描述了一种使用同步辐射X射线断层显微镜在3D内部对陨铁亚铬酸盐晶粒及其包裹体进行成像的方法。在普通球粒陨石中,铬铁矿是唯一能在地球上长期风化的矿物。但是,有关原始陨石的硅酸盐基质的信息可以来自保护性亚铬酸盐中保存的矿物包裹体。夹杂物对化石陨石以及分解的陨石中分散在沉积物中的亚铬酸盐晶粒和更大的影响至关重要,因为它们被用来表征过去物质向地球的涌入,但以前很难找到。该方法是非破坏性的,并且时间高效,可用于定位夹杂物。该方法允许在三个维度上对主体亚铬铁矿晶粒和夹杂物进行定量和形态学研究。对来自八种球粒陨石(H4-6,L4-6,LL4,LL6)的385个亚铬酸盐晶粒的研究表明,所有样品中的夹杂物都很丰富,并且同样普遍。不论组和类型如何,所有亚铬铁矿晶粒中几乎有三分之二含有夹杂物。研究还表明,主体铬铁矿晶粒内夹杂物和主体铬铁矿晶粒的尺寸以及夹杂物的数量随岩石学类型而变化。因此,可以仅基于夹杂物含量确定一组铬铁矿晶粒的主体的岩石学类型。研究还表明,主体铬铁矿中的裂缝数量可以与先前为各种球粒陨石分配的冲击阶段相关。因此,研究表明,与未风化的整个陨石的研究一样,铬铁矿化石晶粒的特征和包裹体可以提供与以前的寄主陨石类似的信息,这意味着该技术对于研究古代陨石向地球的通量至关重要。

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