Dwijesh Ray , Saumitra Misra , Changkun Park , Horton E. Newsom , Eric J. Peterson
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A shock pressure of ≤42 GPa and at a temperature of ≤1000 °C appear consistent for the formation of Lonar vesiculated melt/ feldspathic glass. Under the impact-induced shock metamorphism, maskelynite samples from the moon retain both the crystalline and amorphous domains with a distinct chemical heterogeneity attributed to different shock metamorphism effects of the plagioclase. In contrast, the martian maskelynites exhibit a smooth, homogeneous composition. The estimated shock pressure is relatively higher at ∼42–45 GPa based on experiments and models. The difference in Si/Al ratio in lunar (1–1.3) and martian maskelynite (1.5–1.9) suggests its inherent difference in composition of the crust, whereas the Lonar maskelynite shows overlapping composition with the martian maskelynite contending Lonar basalt as a potential terrestrial analogue to the martian crust.</p></div>","PeriodicalId":55973,"journal":{"name":"Chemie Der Erde-Geochemistry","volume":"84 2","pages":"Article 126127"},"PeriodicalIF":2.6000,"publicationDate":"2024-05-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Maskelynite- as seen in shocked Lonar target basalt, India, and martian and lunar meteorites\",\"authors\":\"Dwijesh Ray , Saumitra Misra , Changkun Park , Horton E. Newsom , Eric J. Peterson\",\"doi\":\"10.1016/j.chemer.2024.126127\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<div><p>In this study, we investigate the mineralogical and petrochemical characteristics of maskelynite occurring in a shocked basalt boulder from a terrestrial impact crater on a basaltic target – the Lonar impact crater in India, and the martian and lunar meteorites. The majority of Lonar maskelynite experienced solid-state transformation and maintained almost a uniform chemical composition, consistent with the unshocked feldspar. The locally flow-like texture and marginal vesiculation in feldspathic glass are needed in interaction with the impact-melt. The vesiculated melt occasionally occurring at the margins of maskelynite is characterised by Na-loss due to the shock-induced volatility. A shock pressure of ≤42 GPa and at a temperature of ≤1000 °C appear consistent for the formation of Lonar vesiculated melt/ feldspathic glass. 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引用次数: 0
摘要
在这项研究中,我们调查了发生在冲击玄武岩巨石中的蒙脱石的矿物学和岩石化学特征,这些玄武岩巨石来自玄武岩目标的陆地撞击坑--印度的洛纳尔撞击坑,以及火星和月球陨石。洛纳尔蒙脱石的大部分经历了固态转变,并保持了几乎一致的化学成分,这与未受冲击的长石是一致的。长石玻璃的局部流状纹理和边缘泡状构造是与冲击熔融体相互作用所必需的。由于冲击引起的挥发性,蒙德拉石边缘偶尔出现的泡状熔体具有 Na 损失的特征。≤42GPa的冲击压力和≤1000 °C的温度似乎与隆纳泡状熔体/长石玻璃的形成相一致。在撞击诱导的冲击变质作用下,月球的蒙脱石样品保留了晶体和无定形域,具有明显的化学异质性,这归因于斜长石不同的冲击变质作用。相比之下,火星蒙德拉石则呈现出光滑、均质的成分。根据实验和模型,估计的冲击压力相对较高,为 ∼42-45 GPa。月球(1-1.3)和火星掩星石(1.5-1.9)的硅/铝比率差异表明了地壳成分的内在差异,而隆纳掩星石显示出与火星掩星石重叠的成分,因此隆纳玄武岩有可能成为火星地壳的类似物。
Maskelynite- as seen in shocked Lonar target basalt, India, and martian and lunar meteorites
In this study, we investigate the mineralogical and petrochemical characteristics of maskelynite occurring in a shocked basalt boulder from a terrestrial impact crater on a basaltic target – the Lonar impact crater in India, and the martian and lunar meteorites. The majority of Lonar maskelynite experienced solid-state transformation and maintained almost a uniform chemical composition, consistent with the unshocked feldspar. The locally flow-like texture and marginal vesiculation in feldspathic glass are needed in interaction with the impact-melt. The vesiculated melt occasionally occurring at the margins of maskelynite is characterised by Na-loss due to the shock-induced volatility. A shock pressure of ≤42 GPa and at a temperature of ≤1000 °C appear consistent for the formation of Lonar vesiculated melt/ feldspathic glass. Under the impact-induced shock metamorphism, maskelynite samples from the moon retain both the crystalline and amorphous domains with a distinct chemical heterogeneity attributed to different shock metamorphism effects of the plagioclase. In contrast, the martian maskelynites exhibit a smooth, homogeneous composition. The estimated shock pressure is relatively higher at ∼42–45 GPa based on experiments and models. The difference in Si/Al ratio in lunar (1–1.3) and martian maskelynite (1.5–1.9) suggests its inherent difference in composition of the crust, whereas the Lonar maskelynite shows overlapping composition with the martian maskelynite contending Lonar basalt as a potential terrestrial analogue to the martian crust.
期刊介绍:
GEOCHEMISTRY was founded as Chemie der Erde 1914 in Jena, and, hence, is one of the oldest journals for geochemistry-related topics.
GEOCHEMISTRY (formerly Chemie der Erde / Geochemistry) publishes original research papers, short communications, reviews of selected topics, and high-class invited review articles addressed at broad geosciences audience. Publications dealing with interdisciplinary questions are particularly welcome. Young scientists are especially encouraged to submit their work. Contributions will be published exclusively in English. The journal, through very personalized consultation and its worldwide distribution, offers entry into the world of international scientific communication, and promotes interdisciplinary discussion on chemical problems in a broad spectrum of geosciences.
The following topics are covered by the expertise of the members of the editorial board (see below):
-cosmochemistry, meteoritics-
igneous, metamorphic, and sedimentary petrology-
volcanology-
low & high temperature geochemistry-
experimental - theoretical - field related studies-
mineralogy - crystallography-
environmental geosciences-
archaeometry