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Fractionation of REE, U, and Th in natural ore-forming hydrothermal systems: Thermodynamic modeling

机译:REE,U和TH的分馏天然矿石加热系统:热力学造型

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摘要

This contribution presents a thermodynamic model revealing the mechanisms responsible for separation of Heavy and Light Rare Earth (HREE and LREE) phosphates in natural hydrothermal systems at temperatures of 250-350 degrees C. Our calculations were performed for an isothermal column of rock containing 0.5 wt% of apatite (Ca phosphate), which served as an immobilizing agent for REE dissolved in the solution. REE were transported by 10 wt% NaCl acidic solution. The model accounted for formation of REE phosphate solid solutions through a regular mixing model. It demonstrates that hydrothermal flushing can efficiently separate REE forming xenotime (HREE phosphate solid solutions) at the beginning of the column, and re-transportation of monazite (LREE rich) to the end of the column. This separation is primarily due to the fact that at elevated temperatures stability LREE chloride complexes is significantly higher than that for HREE. The model also evaluates behavior of U and Th, which accompany REE in vast majority of natural locations. It was found that U strongly fractionates to xenotime, whereas Th fractionates to monazite. This phenomenon can be explained by the differences in crystal-chemical characteristics between monazite and xenotime, and the mobility of Th in aqueous solutions at elevated temperatures. (C) 2018 Elsevier Ltd.
机译:该贡献提出了一种热动力模型,揭示了负责在250-350℃的天然水热系统中分离的重和轻质稀土(HREE和LREE和LREE)磷酸盐的机制。我们对含有0.5重量的等温柱进行的计算进行了计算磷灰石的百分比(Ca磷酸盐),其用作溶解在溶液中的REE的固定剂。 REE通过10wt%NaCl酸性溶液运输。该模型通过常规混合模型占重新磷酸盐固溶体的形成。它表明,水热冲洗可以在柱的开始时有效地将REE形成XENOTIME(HREE磷酸盐固溶体),并将Monazite(LREE富含)重新运送到柱的末端。这种分离主要是由于升高的温度下,稳定性氯化物配合物显着高于HREE。该模型还评估了U和Th的行为,其中伴随着大多数自然地点。发现你强烈地分离为Xenotime,而分馏到单一的分级。这种现象可以通过单桥和Xenotime之间的晶体化学特性的差异,以及在升高温度下的水溶液中的迁移率。 (c)2018年elestvier有限公司

著录项

  • 来源
    《The Journal of Chemical Thermodynamics》 |2019年第2019期|共15页
  • 作者单位

    Los Alamos Natl Lab Earth &

    Environm Sci Div POB 1663 MS J535 Los Alamos NM 87545 USA;

    Washington State Univ Dept Chem Pullman WA 99164 USA;

    Los Alamos Natl Lab Earth &

    Environm Sci Div POB 1663 MS J535 Los Alamos NM 87545 USA;

    Los Alamos Natl Lab Earth &

    Environm Sci Div POB 1663 MS J535 Los Alamos NM 87545 USA;

    McGill Univ Dept Earth &

    Planetary Sci 3450 Univ St Montreal PQ H3A 0E8 Canada;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学热力学(反应热力学);
  • 关键词

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