Exploring the plutonic-volcanic link: a zircon U-Pb, Lu-Hf and O isotope study of paired volcanic and granitic units from southeastern Australia

A. Kemp, C. Hawkesworth, B. Paterson, G. Foster, P. Kinny, M. Whitehouse, R. Maas, Eimf
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引用次数: 10

Abstract

Abstract The relationship between plutonic and volcanic rocks is central to understanding the geochemical evolution of silicic magma systems, but it is clouded by ambiguities associated with unravelling the plutonie record. Here we report an integrated U-Pb, O and Lu-Hf isotope study of zircons from three putative granitic-volcanic rock pairs from the Lachlan Fold Belt, southeastern Australia, to explore the connection between the intrusive and extrusive realms. The data reveal contrasting petrogenetic scenarios for the S- and I-type pairs. The zircon Hf-O isotope systematics in an 1-type dacite are very similar to those of their plutonie counterpart, supporting an essentially co-magmatic relationship between these units. The elevated δ18O of zircons in these I-type rocks confirm a significant supracrustal source component. The S-type volcanic rocks are not the simple erupted equivalents of the granites, although the extrusive and plutonie units can be related by open-system magmatic evolution. Zircons in the S-type rocks define covariant εΗf—βO arrays that attest to mixing or assimilation processes between two components, one being the Ordovician metasedimentary country rocks, the other either an I-type magma or a mantle-derived magma. The data are consistent with models involving incremental melt extraction from relatively juvenile magmas undergoing open-system differentiation at depth, followed by crystal-liquid mixing upon emplacement in shallow magma reservoirs, or upon eruption. The latter juxtaposes crystals with markedly different petrogenetic histories and determines whole-rock geochemical and textural properties. This scenario can explain the puzzling decoupling between the bulk rock isotope and geochemical compositions commonly observed for granite suites.
探讨成矿-火山联系:澳大利亚东南部火山-花岗岩配对单元的锆石U-Pb、Lu-Hf和O同位素研究
摘要:岩体与火山岩之间的关系是理解硅质岩浆系统地球化学演化的核心,但由于岩体记录的不明确,这种关系变得模糊不清。本文报道了澳大利亚东南部拉克兰褶皱带3对花岗岩-火山岩对锆石的U-Pb、O和Lu-Hf同位素综合研究,以探讨侵入和挤压领域之间的联系。数据揭示了S型对和i型对的不同成岩情景。1型英安岩的锆石Hf-O同位素系统与同类型英安岩的锆石Hf-O同位素系统非常相似,支持这些单元之间本质上的共岩浆关系。这些i型岩石中锆石δ18O值的升高证实了其具有重要的上地壳源成分。s型火山岩不是花岗岩的简单喷发物,但可以通过开放体系岩浆演化联系到喷发和深花岗岩单元。s型岩石中的锆石定义了协变εΗf -βO阵列,证明了两种成分之间的混合或同化过程,一种是奥陶系变质沉积岩,另一种是i型岩浆或幔源岩浆。这些数据与从相对年轻的岩浆中逐渐提取熔融物的模型相一致,这些岩浆在深部经历了开放体系的分异,随后在浅层岩浆储层就位或喷发时发生了晶体-液体混合。后者将具有明显不同岩石成因历史的晶体并置,并确定整个岩石的地球化学和结构性质。这种情况可以解释花岗岩套件中常见的大块岩石同位素与地球化学成分之间令人困惑的分离。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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