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Immiscibility between silicate magmas and aqueous fluids: a melt inclusion pursuit into the magmatic-hydrothermal transition in the Omsukchan Granite (NE Russia)

机译:硅酸盐岩浆和水性流体之间的不溶混性:Omsukchan花岗岩(俄罗斯东北部)的岩浆-热液转变过程中的熔体包裹体追求

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Exsolution (unmixing) of the volatile element-rich phases from cooling and crystallising silicate magmas is critical for element transport from the Earth's interior into the atmosphere, hydrosphere, crustal hydrothermal systems, and the formation of orthomagmatic ore deposits. Unmixing is an inherently fugitive phenomenon and melt inclusions (droplets of melt trapped by minerals) provide robust evidence of this process. In this study, melt inclusions in phenocrystic and miarolitic quartz were studied to better understand immiscibility in the final stages of cooling of, and volatile exsolution from, granitic magmas, using the tin-bearing Omsukchan Granite (NE Russia) as an example.Primary magmatic inclusions in quartz phenocrysts demonstrate the coexistence of silicate melt and magma-derived Cl-rich fluids (brine and vapour), and emulsions of these, during crystallisation of the granite magma. Microthermometric experiments, in conjunction with PIXE and other analytical techniques, disclose extreme heterogeneity in the composition of the non-silicate phases, even in fluid globules within the same silicate melt inclusion. We suggest that the observed variability is a consequence of strong chemical heterogeneity in the residual silicate-melt/brine/vapour system on a local scale, owing to crystallisation, immiscibility and failure of individual phases to re-equilibrate. The possible evolution of non-silicate volatile magmatic phases into more typical "hydrothermal" chloride solutions was examined using inclusions in quartz from associated miarolitic cavities. (C) 2004 Elsevier B.V. All rights reserved.
机译:冷却和结晶的硅酸盐岩浆中富含挥发性元素的相的析出(解混)对于元素从地球内部向大气,水圈,地壳热液系统的运输以及正磁性岩矿床的形成至关重要。拆开是一种固有的逃逸现象,熔体包裹体(被矿物捕获的熔体液滴)提供了该过程的有力证据。在这项研究中,以含锡的Omsukchan花岗岩(俄罗斯东北部)为例,研究了微晶石英和莫来石石英中的熔融夹杂物,以更好地理解花岗岩岩浆冷却和挥发析出的最终阶段的不溶混性。石英表晶岩中的夹杂物表明,在花岗岩岩浆结晶过程中,硅酸盐熔体和岩浆衍生的富含Cl的流体(盐水和蒸气)以及它们的乳剂并存。结合PIXE和其他分析技术的微量热实验表明,即使在同一硅酸盐熔体包裹体中的流体球中,非硅酸盐相的组成也具有极大的异质性。我们建议观察到的变异性是由于残留的硅酸盐/熔体/盐水/蒸气系统在局部规模上具有强烈的化学异质性,这是由于结晶,不混溶以及各个相无法重新平衡所致。使用来自伴生微孔洞的石英中的夹杂物,检查了非硅酸盐挥发性岩浆相可能演变成更典型的“水热”氯化物溶液。 (C)2004 Elsevier B.V.保留所有权利。

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