首页> 外文期刊>Contributions to Mineralogy and Petrology >A parameterized model for REE distribution between low-Ca pyroxene and basaltic melts with applications to REE partitioning in low-Ca pyroxene along a mantle adiabat and during pyroxenite-derived melt and peridotite interaction
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A parameterized model for REE distribution between low-Ca pyroxene and basaltic melts with applications to REE partitioning in low-Ca pyroxene along a mantle adiabat and during pyroxenite-derived melt and peridotite interaction

机译:低钙辉石与玄武岩熔体之间REE分布的参数化模型,并应用于低钙辉石沿地幔绝热层以及在以辉石岩为源的熔体与橄榄岩相互作用中的REE分配

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摘要

Low-Ca pyroxenes play an important role in mantle melting, melt-rock reaction, and magma differentiation processes. In order to better understand REE fractionation during adiabatic mantle melting and pyroxenite-derived melt and peridotite interaction, we developed a parameterized model for REE partitioning between low-Ca pyroxene and basaltic melts. Our parameterization is based on the lattice strain model and a compilation of published experimental data, supplemented by a new set of trace element partitioning experiments for low-Ca pyroxenes produced by pyroxenite-derived melt and peridotite interaction. To test the validity of the assumptions and simplifications used in the model development, we compared model-derived partition coefficients with measured partition coefficients for REE between orthopyroxene and clinopyroxene in well-equilibrated peridotite xenoliths. REE partition coefficients in low-Ca pyroxene correlate negatively with temperature and positively with both calcium content on the M2 site and aluminum content on the tetrahedral site of pyroxene. The strong competing effect between temperature and major element compositions of low-Ca pyroxene results in very small variations in REE partition coefficients in orthopyroxene during adiabatic mantle melting when diopside is in the residue. REE partition coefficients in orthopyroxene can be treated as constants at a given mantle potential temperature during decompression melting of lherzolite and diopside-bearing harzburgite. In the absence of diopside, partition coefficients of light REE in orthopyroxene vary significantly, and such variations should be taken into consideration in geo-chemical modeling of REE fractionation in clinopyroxene-free harzburgite. Application of the parameterized model to low-Ca pyroxenes produced by reaction between pyroxenite-derived melt and peridotite revealed large variations in the calculated REE partition coefficients in the low-Ca pyroxenes. Temperature and composition of starting pyroxenite must be considered when selecting REE partition coefficients for pyroxenite-derived melt and peridotite interaction.
机译:低钙辉石在地幔融化,熔岩反应和岩浆分化过程中起着重要作用。为了更好地了解绝热地幔融化和辉石派生的熔体与橄榄岩相互作用中的REE分级,我们开发了一种参数化模型,用于低钙辉石和玄武质熔体之间的REE分配。我们的参数化基于晶格应变模型和已发表的实验数据的汇编,并辅以一组新的微量元素分配实验,以解决由黄铁矿衍生的熔体和橄榄岩相互作用产生的低钙辉石的问题。为了检验模型开发中使用的假设和简化方法的有效性,我们比较了模型衍生的分配系数与在平衡良好的橄榄岩异种岩中邻位比邻苯和环比邻苯之间的REE测得的分配系数。低钙辉石中的REE分配系数与温度呈负相关,与辉石M2位点上的钙含量和四面体位点上的铝含量都呈正相关。温度和低钙辉石的主要元素组成之间的强竞争作用导致在透辉石残留在残留物中时,在绝热地幔融化过程中邻苯二茂的REE分配系数变化很小。邻苯二茂铁中的REE分配系数可以作为在给定的地幔势温度下在锂铁矿和含透辉石的辉石的减压熔融过程中的常数处理。在没有透辉石的情况下,邻苯二茂铁中轻质稀土元素的分配系数会有很大的变化,在不含斜py石的尖晶石中稀土元素分馏的地球化学模拟中应考虑这些变化。将参数化模型应用到由辉石派生的熔体与橄榄岩之间的反应产生的低钙辉石中,发现低钙辉石中计算出的REE分配系数存在较大差异。在为来自黄铁矿的熔体和橄榄岩相互作用时选择REE分配系数时,必须考虑起始辉石的温度和组成。

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