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首页> 外文期刊>Journal of geophysical research. Planets >Laboratory thermal emission spectroscopy of shocked basalt from Lonar Crater, India, and implications for Mars orbital and sample data
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Laboratory thermal emission spectroscopy of shocked basalt from Lonar Crater, India, and implications for Mars orbital and sample data

机译:实验室热发射光谱学震惊的玄武岩Lonar火山口、印度和火星轨道和样本数据的影响

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摘要

Whereas the thermal infrared (TIR) spectra of specific minerals and/or igneous and metamorphic rocks have been compared to data of the Martian surface, TIR data of the impactite products of the shock metamorphism of basalt have not been examined in detail. The effects of shock on the thermal infrared spectrum of Deccan basalt are described here. Sample collection at Lonar Crater, India, yielded four classes of shocked basalt: classes 1, 2, 4, and 5. Spectral features attributed to labradorite in TIR spectrum of unshocked Deccan basalt are absent in the spectrum of class 2 shocked basalt. Petrography confirms that labradorite has been replaced by diaplectic glass (maskelynite). The TIR spectrum of class 2 shocked basalt is nearly identical to that of the Los Angeles shergottite. The addition of experimentally shocked plagioclase feldspars as TIR end‐members improves fits and lowers RMS errors for the deconvolution of the TIR spectrum of the maskelynitebearing impactite, and the correct mineralogy is chosen to within 5%. Class 4 shocked basalt contains vesiculated plagioclase glass (due to more heat) and highly fractured augites. Two class 5 spectral types have primary Si‐O stretching vibrations at lower wave numbers than Si and Si‐K glass end‐members commonly used in analyses of TIR data, agreeing with lower SiO_2 abundances (~50%) determined from two techniques. At least three differences in spectral features exist between the two class 5 spectral types that we attribute to incomplete melting in the class 5A samples based on comparison to the class 4 spectrum. These samples and their TIR spectra represent excellent analogs for Martian shocked basalt and new lithologic end‐members for use in spectral libraries used to analyze TIR data from Mars.
机译:而热红外光谱(行动)特定的矿物质和/或火成岩和变质岩石相比,火星的数据表面上看,热红外数据的冲击石产品的冲击变质玄武岩所无法企及的详细检查。热红外光谱的德干玄武岩这里描述。火山口,印度,产生了四类的震惊玄武岩:类别1、2、4和5。归因于拉长石在热红外光谱unshocked德干玄武岩中缺席光谱的玄武岩类2震惊。确认拉长石已经取代了diaplectic玻璃(斜长玻璃)。二班的震惊玄武岩是几乎相同的洛杉矶shergottite。实验震惊的斜长石长石组成热红外终端成员改善适合和降低RMS错误的反褶积热红外光谱的maskelynitebearing冲击石,正确的矿物学是选择在5%以内。4震惊玄武岩含有起泡斜长石玻璃(由于更多的热量)和高度支离破碎辉石。如果O伸展振动在低波数比斯,如果K玻璃终端常用的成员在分析热红外数据,同意更低SiO_2丰度(~ 50%)从两个决定技术。光谱特性之间存在两类5光谱类型属性不完整融化在班上5基于样本与第4类光谱进行比较。和他们的热红外光谱代表优秀的类似物对于火星震惊玄武岩和新岩性终端成员用于光谱库分析热红外数据来自火星。

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