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首页> 外文期刊>Contributions to Mineralogy and Petrology >Lead contents of S-type granites and their petrogenetic significance
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Lead contents of S-type granites and their petrogenetic significance

机译:S型花岗岩中铅含量及其成因意义

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摘要

An evaluation of Pb and Ba contents in S-type granites can provide important information on the processes of crustal partial melting. Primary low-T S-type granites, which form mainly by fluid-absent muscovite melting, may acquire a significant enrichment in Pb when compared to higher-T S-type granites for a given Ba content. We consider the following factors are responsible for this enrichment: Muscovite is a major carrier of Pb in amphibolite facies metapelites, and thus large quantities of Pb can be liberated upon its breakdown. The typical restite assemblage of Qz + Bt + Sil ± PI ± Grt ± Kfsp that forms during low-T, fluid-absent muscovite melting can take up only minor amounts of this Pb. This is because the crystal/melt Pb distribution coefficients for these restite minerals are low to very low. Only K-feldspar is moderately compatible for Pb, with a crystal/melt distribution coefficient of ~3, but its modal content in restites is usually low. At the same time, the restite assemblage will retain much Ba owing to the very high Ba uptake in both biotite and K-feldspar, which is an order of magnitude higher than for Pb. Thus, during a low-T anatectic event involving a low degree of crustal melting, Pb (as an incompatible element) can become strongly enriched in the partial melt relative to Ba and also relative to source rock values. In the case of higher-T anatexis and larger partial melt amounts, the Pb becomes less enriched and the Ba less depleted or even enriched relative to source rock values. During fractional crystallization of a S-type granite magma, Ba behaves strongly compatibly and Pb weakly compatibly. The concentrations of both elements decrease along the liquid line of decent. Owing to this sympathetic fractionation behavior, the primary, source-related Pb-Ba fingerprint (with weak or strong Pb enrichment) remains in evolved S-type granites. This facilitates a distinction between primary low-T S-type granites, which are related to muscovite melting, and secondary low-T S-type granites that evolve through fractional crystallization from a higher-T parental magma. We show in this paper that a simple logarithmic Pb versus Ba diagram can be a valuable aid for interpreting the petrogenesis of S-type granite suites.
机译:对S型花岗岩中Pb和Ba含量的评估可以提供有关地壳部分熔融过程的重要信息。在给定的Ba含量下,与较高T S型花岗岩相比,主要由无流体白云母熔融形成的低T S型初级花岗岩可能会获得大量的Pb富集。我们认为以下因素是造成这种富集的原因:白云母是角闪石相变质岩中Pb的主要载体,因此分解后可释放出大量Pb。在低T,无流体白云母熔化过程中形成的Qz + Bt + Sil±PI±Grt±Kfsp的典型重晶石组合仅能吸收少量的Pb。这是因为这些再结晶矿物的晶体/熔体铅分布系数很低甚至很低。只有钾长石与铅具有中等相容性,晶体/熔体分布系数约为3,但其在辉石中的模态含量通常较低。同时,由于黑云母和钾长石中的Ba吸收量很高,因此该重晶石组合物将保留大量的Ba,这比Pb高一个数量级。因此,在地壳融化程度低的低T阳极氧化过程中,Pb(作为不相容元素)相对于Ba以及相对于烃源岩值,会在部分熔体中强烈富集。相对于烃源岩值,在较高T的Anatexis和较大的部分熔体量的情况下,Pb富集程度降低,Ba贫化甚至富集程度降低。在S型花岗岩岩浆的分步结晶过程中,Ba表现出强相容性,而Pb表现出弱相容性。两种元素的浓度沿体面的液体线降低。由于这种同情性的分馏行为,与源有关的主要Pb-Ba指纹(弱或强Pb富集)保留在演化的S型花岗岩中。这有助于区分与白云母融化有关的主要低T S型花岗岩和通过从高T母体岩浆进行分步结晶演化而形成的次要低T S型花岗岩。我们在本文中表明,简单的对数Pb与Ba图可以为解释S型花岗岩套件的成岩作用提供宝贵的帮助。

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