顽辉石陨石的铷、钾同位素组成及其母体演化意义

IF 4.5 1区 地球科学 Q1 GEOCHEMISTRY & GEOPHYSICS
Baoliang Wang , Frédéric Moynier , Yan Hu
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引用次数: 0

摘要

顽辉石陨石,包括顽辉石球粒陨石和顽辉石无球粒陨石(如顽辉石),形成于太阳系中高度还原的条件下。顽辉石球粒陨石经历了从岩石学3型到6型的渐进热变质作用,可能导致挥发性元素的蒸发和再分配。辉长辉石陨石的Rb和K同位素分析可以为其固有的同位素变异性和挥发性耗竭过程提供补充的见解。在这项研究中,我们给出了一套顽辉石陨石的Rb和K同位素组成,包括16个顽辉石球粒陨石,跨越变质等级从3到6,以及4个长辉石。3型顽辉石球粒陨石Rb和K的同位素组成与地球相似,进一步强调了地球与顽辉石球粒陨石的同位素相似性。从3-4型到5-6型,所检测的顽辉石球粒陨石Rb和K同位素组成普遍呈现出较重的趋势,表明Rb和K在母体开放体系热变质过程中发生了挥发和重分布。一个EH5 (St. Marks)和两个EL6 (Pillistfer和Atlanta)样品的K同位素组成较轻,偏离了这一趋势,这可能是蒸发、蒸汽输运和再冷凝相互作用的结果。另一方面,源自顽辉石球粒陨石样母体(ies)熔融和分异结晶过程的黄辉石Rb和K同位素变化可能反映了更为复杂的过程,可能涉及含斜长石的熔体萃取、岩浆分异、岩心分离以及挥发物撞击挥发后的反缩聚。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Rubidium and potassium isotope compositions of enstatite meteorites: implications for the evolution of their parent body(ies)
Enstatite meteorites, including enstatite chondrites and enstatite achondrites (e.g., aubrites), formed under highly reducing conditions in the solar system. Enstatite chondrites underwent progressive thermal metamorphism from petrologic type 3 to type 6, potentially leading to vaporization and redistribution of volatile elements. Coupled Rb and K isotopic analyses of enstatite meteorites could provide complementary insights into the inherent isotopic variability and volatile depletion processes. In this study, we present Rb and K isotopic compositions for a suite of enstatite meteorites, including sixteen enstatite chondrites spanning metamorphic grades from 3 to 6, as well as four aubrites. Type 3 enstatite chondrites exhibit isotopic compositions similar to those of Earth for both Rb and K, which further underscores the isotopic resemblance between Earth and enstatite chondrites. From type 3–4 to type 5–6, the examined enstatite chondrites generally show a trend towards heavier Rb and K isotopic compositions, indicating volatilization and redistribution of Rb and K during open system thermal metamorphism of the parent body(ies). One EH5 (St. Marks) and two EL6 (Pillistfer and Atlanta) samples deviate from this trend with light K isotope compositions, which may result from an interplay of evaporation, vapor transport and recondensation. On the other hand, the Rb and K isotopic variations in aubrites—which originated from the melting and fractional crystallization of enstatite chondrite-like parent body(ies)—likely reflect more complex processes, possibly involving a combination of plagioclase-bearing melt extraction, magmatic differentiation, core segregation, and the back-condensation of volatiles after impact volatilization.
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来源期刊
Geochimica et Cosmochimica Acta
Geochimica et Cosmochimica Acta 地学-地球化学与地球物理
CiteScore
9.60
自引率
14.00%
发文量
437
审稿时长
6 months
期刊介绍: Geochimica et Cosmochimica Acta publishes research papers in a wide range of subjects in terrestrial geochemistry, meteoritics, and planetary geochemistry. The scope of the journal includes: 1). Physical chemistry of gases, aqueous solutions, glasses, and crystalline solids 2). Igneous and metamorphic petrology 3). Chemical processes in the atmosphere, hydrosphere, biosphere, and lithosphere of the Earth 4). Organic geochemistry 5). Isotope geochemistry 6). Meteoritics and meteorite impacts 7). Lunar science; and 8). Planetary geochemistry.
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