金伯利岩长英质捕虏体同化的岩石学和地球化学特征

Sofya Niyazova, M. Kopylova, M. Gaudet, A. De Stefano
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引用次数: 1

摘要

寄主金伯利岩对围岩捕虏体的同化作用可导致捕虏体内部形成同心反应带,并在被污染的金伯利岩周围形成反应晕。利用Renard 65金伯利岩管中不同金伯利岩结构样品和捕虏岩丰度对比,研究了捕虏岩和宿主金伯利岩反应带的岩石学和地球化学变化。该管道由金伯利型火山碎屑岩(KPK)、浅成金伯利岩(HK)和过渡性金伯利岩充填,侵位于上克拉通的花岗质和片麻岩中。利用这两种类型的带状中型捕虏体样本,收集了捕虏体-金伯利岩剖面的矿物学和地球化学数据,并与新鲜未反应的乡村岩石和浅成金伯利岩的数据进行了对比。未反应捕虏体(花岗岩体中的钾长石-斜长石-石英-黑云母和片麻岩中的斜长石-石英-黑云母-正辉石)的原始矿物学被前长石、榴辉石和透辉石所取代。在金伯利岩晕中,橄榄石完全被蛇纹石化,透辉石和晚辉云母在地质体中结晶。捕虏体在KPK -过渡KPK -过渡HK金伯利岩单元序列中表现出反应、结构改造和矿物替代的递进程度。与本研究和其他地方的kpk捕虏体相比,在香港捕获的捕虏体中观察到的较高程度的反应可能部分与香港熔体中捕虏体的较高温度有关。反应程度与金伯利岩结构之间的相关性表明,反应是特定于并发生在每个侵位岩浆群内的,不可能是由外部侵位后作用造成的,这种作用应该消除金伯利岩单元之间的结构差异。捕虏体的同化作用可能在熔体中开始,从捕虏体的结构和周围的光晕中可以看出,并在亚固体中进行。在金伯利岩-捕虏体接触处,CaO的升高似乎是同化捕虏体产生同心矿物分带的重要因素。
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Petrographic and Geochemical Characteristics Associated with Felsic Xenolith Assimilation in Kimberlite
Assimilation of country rock xenoliths by the host kimberlite can result in the development of concentric reaction zones within the xenoliths and a reaction halo in the surrounding contaminated kimberlite. Petrographic and geochemical changes across the reaction zones in the xenoliths and the host kimberlite were studied using samples with different kimberlite textures and contrasting xenolith abundances from the Renard 65 kimberlite pipe. The pipe, infilled by Kimberley-type pyroclastic (KPK) and hypabyssal kimberlite (HK) and kimberlite with transitional textures, was emplaced into granitoid and gneisses of the Superior Craton. Using samples of zoned, medium-sized xenoliths of both types, mineralogical and geochemical data were collected across xenolith-to-kimberlite profiles and contrasted with those of fresh unreacted country rock and hypabyssal kimberlite. The original mineralogy of the unreacted xenoliths (potassium feldspar-plagioclase-quartz-biotite in granitoid and plagioclase-quartz-biotite-orthopyroxene in gneiss) is replaced by prehnite, pectolite, and diopside. In the kimberlite halo, olivine is completely serpentinized and diopside and late phlogopite crystallized in the groundmass. The xenoliths show the progressive degrees of reaction, textural modification, and mineral replacement in the sequence of kimberlite units KPK — transitional KPK — transitional HK. The higher degree of reaction observed in the HK-hosted xenoliths as compared to the KPK-hosted xenoliths in this study and elsewhere may partly relate to higher temperatures in xenoliths included in an HK melt. The correlation between the degree of reaction and the kimberlite textures suggests that the reactions are specific to and occur within each emplaced batch of magma and cannot result from external post-emplacement processes that should obliterate the textural differences across the kimberlite units. Xenolith assimilation may have started in the melt, as suggested by the textures in the xenoliths and the surrounding halos and proceeded in the subsolidus. Elevated CaO at the kimberlite-xenolith contact appears to be an important factor in producing the concentric mineralogical zoning in assimilated xenoliths.
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