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A reactive assimilation model for regional-scale cordierite-bearing granitoids: geochemical evidence from the Late Variscan granites of the Central Iberian Zone, Spain

机译:区域尺度含堇青石花岗岩的反应同化模型:来自西班牙中部伊比利亚地区晚期瓦里斯坎花岗岩的地球化学证据

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摘要

Regional scale biotite and cordierite-bearing granites (s.l.) in the Variscan of the Central Iberian Zone (CIZ) are spatially closely associated with cordierite-rich nebulites and cordierite-bearing two-mica granites, and with cordierite-rich high grade hornfelses and cordieritites (>60% cordierite) that are relatively common in the aureoles of these granites. Building on published field evidence, petrological data are presented which, combined with new chemical and isotopic (Sr-Nd) modelling, indicate that the cordierite-bearing granites cannot be derived by simple anatexis of regional sedimenatry protoliths; but the data are consistent with a process of reactive assimilation that involves the interaction of biotite granite magma with high-grade host rocks ranging from cordierite nebulites to andalusite-bearing cordieritites. The contribution of the postulated cordierite-rich contaminants to the diversity of cordierite granite compositions is modelled using the compositions of regional Lower Cambrian-Upper Neoproterozoic metasedimentary rocks that are generally chemically mature (CaO very rarely exceeds 1.4%). These rocks include specific horizons in which extreme chemical alteration is attributable to sediment reworking during eustatic falls in sea level. Such compositions may account for the presence of the high concentrations in Al that later produced cordieritites. Fractional crystallisation is also important, particularly in generating the more evolved cordierite granite and cordierite biotite muscovite granite compositions. Although assimilation in situ is normally regarded as a minor contributor volumetrically to evolving plutons, in this instance the emplacement of large volumes of granite magma into a high-T-low-P environment significantly increased the potential for reactive assimilation.
机译:伊比利亚中部地区(CIZ)瓦里斯卡纳(Variscan)的区域规模黑云母和含堇青石的花岗岩(sl)在空间上与富含堇青石的云母和含堇青石的两云母花岗岩以及富含堇青石的高级角铁和堇青石密切相关(> 60%堇青石)在这些花岗岩的金刚砂中相对常见。在已公开的现场证据的基础上,提出了岩石学数据,再结合新的化学和同位素(Sr-Nd)模型,表明含堇青石的花岗岩不能通过区域性沉积岩原型的简单厌氧而获得;但这些数据与反应同化过程一致,该过程涉及黑云母花岗岩岩浆与高级堇青石(从堇青石云母到含红柱石堇青石)的相互作用。假定的富含堇青石的污染物对堇青石花岗岩组成的贡献是通过区域下寒武统-上新元古代的沉积沉积岩的成分模拟的,这些沉积岩通常是化学成熟的(CaO很少超过1.4%)。这些岩石包括特定的层位,在这些层位中,极端化学变化可归因于在海平面欣欣向荣的下降过程中进行的沉积物再造。这样的组合物可以解释铝中高浓度的存在,随后产生堇青石。分级结晶也很重要,特别是在生成演化程度更高的堇青石花岗岩和堇青石黑云母白云母花岗岩组合物中。尽管就体积而言,原位同化通常被认为是对演化中的云母的次要贡献,但在这种情况下,将大量花岗岩岩浆置于高T-低P环境中显着增加了反应同化的可能性。

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