首页> 外文OA文献 >Progress in linking accessory mineral growth and breakdown to major mineral evolution in metamorphic rocks: a thermodynamic approach in the Na(2)O-CaO-K(2)O-FeO-MgO-Al(2)O(3)-SiO(2)-H(2)O-TiO(2)-ZrO(2) system
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Progress in linking accessory mineral growth and breakdown to major mineral evolution in metamorphic rocks: a thermodynamic approach in the Na(2)O-CaO-K(2)O-FeO-MgO-Al(2)O(3)-SiO(2)-H(2)O-TiO(2)-ZrO(2) system

机译:将伴生矿物生长和破裂与变质岩中主要矿物演化联系起来的进展:Na(2)O-CaO-K(2)O-FeO-mgO-al(2)O(3)-siO的热力学方法2)-H(2)O-TiO(2)-ZrO(2)体系

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摘要

Activity-composition (a–x) models have been generated for zirconium-bearing haplogranitic silicate melt and garnet from experimental data on zircon dissolution and natural rock data, respectively. Additionally including the recently proposed a–x model for Zr-bearing rutile [Tomkins et al., Journal of Metamorphic Geology25 (2007) 401], calculated phase diagrams that explicitly include ZrO₂ in the bulk composition predict the growth and dissolution of zircon at sub- and supra-solidus conditions. This occurs within the context of the evolution of major metamorphic minerals and mineral assemblages in pressure-temperature-composition space for a metapelitic rock composition. The stability of zircon is a function of the bulk ZrO₂ content. Garnet contains insufficient Zr to affect the stability of zircon whereas rutile does contain sufficient Zr that zircon stability can be curtailed in rocks with significant rutile. Silicate melt contains appreciable Zr and zircon abundance varies inversely with melt abundance. Thermometers based on the Zr-content of rutile (and potentially garnet) can be graphically portrayed as compositional contours in mineral assemblage fields on the phase diagrams, thereby potentially adding to the utilization of such thermometers. The ability to calculate phase diagrams explicitly including Zr is a major step towards more systematically linking zircon growth – and zircon geochronology – and accessory phase thermometry in a readily adaptable way to the metamorphic evolution of major silicate minerals in a wide range of rocks.
机译:分别从关于锆石溶解的实验数据和天然岩石数据中生成了含锆的单触变硅酸盐熔体和石榴石的活性成分(ax)模型。此外,包括最近提出的含锆金红石的a–x模型[Tomkins等,《变质地质学杂志》 25(2007)401],所计算的相图明确地将ZrO2包含在主体成分中,可以预测锆石在锆石的生长和溶解。 -和超固相线条件。这是在变质岩成分的压力-温度-组成空间中主要变质矿物和矿物组合演化的背景下发生的。锆石的稳定性是ZrO2含量的函数。石榴石的Zr不足以影响锆石的稳定性,而金红石确实含有足够的Zr,因此在金红石含量较高的岩石中,锆石的稳定性可能会降低。硅酸盐熔体中含有明显的Zr,锆石的丰度与熔体的丰度成反比。可将基于金红石(和可能的石榴石)的Zr含量的温度计图形化为相图上矿物组合字段中的成分轮廓,从而潜在地增加了此类温度计的利用率。计算明确包含Zr的相图的能力,是朝着更系统地联系锆石生长和锆石地质年代以及辅助相测温的重要一步,可以很容易地适应各种岩石中主要硅酸盐矿物的变质演化。

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    Kelsey, D.; Powell, R.;

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  • 年度 2011
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