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Petrogenesis of granitoids from the Lachlan Fold Belt, southeastern Australia: The role of disequilibrium melting

机译:从澳大利亚东南部的拉桑杖折叠带的培养型花岗岩:不平衡熔化的作用

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S- and I-type granites from the Lachlan Fold Belt, southeastern Australia, have been investigated to assess the role of disequilibrium melting in their petrogenesis. Differences between the median initial el-lf compositions of magmatic zircon populations and the host bulk-rock (Ael-Ifbik-z") range from 0.6 to +2.5 e units, providing evidence for intra-sample (and hence inter-phase) Hf-isotopic heterogeneity. Linear variations on Harker diagrams and 0 and Hf isotope compositions of magmatic zircon preserved in many I- and S -type granites are inconsistent with assimilation or simple mixing hypotheses. In contrast, isotopic disequilibrium between the melt and a restite assemblage can explain the bulk-rock versus zircon differences observed in these samples. Assuming that magmatic zircon records the melt composition, differences between the bulk-rock el-lf and el-lf of magmatic zircon (Ael-Ifbik-z" values) measured for I-type granites (0.4-2.5) can largely be explained by disequilibrium amphibole dehydration melting of meta-igneous protoliths that were either isotopically heterogenous at the time they were formed, or perfectly homogeneous before being aged in the crust for 0.4-1.0 billion years prior to partial melting. The Currowong Suite exhibits petrographic features and preserves geochemical and isotopic compositions that do not lend themselves to simple restite model or magma mixing explanations; however, these observations could be explained by the restite unmixing of magma batches generated from a single source rock if, as modelling has suggested, separate batches contain different melt compositions. By investigating the application of disequilibrium melting to granite genesis, this study demonstrates that isotopic heterogeneity at various sampling scales should actually be expected for the production of granites from a single source, rather than necessitating the involvement of multiple sources and mixing processes. As a result great care should be taken in the interpretation of isotope data from granitic bulkrocks or their zircons. (C) 2019 International Association for Gondwana Research. Published by Elsevier B.V. All rights reserved.
机译:来自澳大利亚东南部的拉赫兰折叠皮带的S-and I型花岗岩已经被调查,评估了不平衡熔化在其肝细胞中的作用。 Magmatic锆石群中的初始EL-LF组合物与宿主体岩(AEL-IFBIK-Z“)之间的差异范围为0.6至+2.5个单元,为样本内(并为期间)HF提供证据 - 同位异质性。在许多I-和S-TYPE花岗岩中保留的Harker图和0和HF同位素组合物的线性变化与同化或简单的混合假设不一致。相反,熔体和凝汽器组合之间的同位素不平衡均可解释这些样品中观察到的堆积岩。假设岩浆锆局记录熔体组合物,岩石EL-LF和Magmatic锆石(Ael-Ifbik-Z“值的EL-LF之间的差异 - 型花岗岩(0.4-2.5)可以很大程度上通过不平衡的淀粉脱水溶解的荟萃红光溶解的熔融熔融,其在形成之前或在它们之前完全均匀的均匀性在部分熔化之前,在地壳中为0.4-1.0亿岁。 Currowong Suite展示了岩体特征,并保留了不会为简单的reatite模型或岩浆混合解释提供的地球化学和同位素组合物;然而,这些观察结果可以通过作为建模的建模,单独的批次含有不同的熔体组合物,通过从单源岩石产生的岩浆批次的岩浆批次解释。通过研究不平衡熔化的熔化至花岗岩创世纪,该研究表明,应预期从单一来源生产花岗岩的各种采样尺度的同位素异质性,而不是需要进行多种来源和混合过程的累积。因此,应妥善保管从花岗岩隔板或其锆石的同位素数据的解释中。 (c)2019年国际巩膜研究协会。 elsevier b.v出版。保留所有权利。

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