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首页> 外文期刊>Chemical geology >The solid solution–aqueous solution system (Sr,Ba,Ra)SO 4?+?H 2O: A combined experimental and theoretical study of phase equilibria at Sr-rich compositions
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The solid solution–aqueous solution system (Sr,Ba,Ra)SO 4?+?H 2O: A combined experimental and theoretical study of phase equilibria at Sr-rich compositions

机译:固体溶液 - 水溶液系统(SR,BA,RA)所以 4 ?+?H 2 O:富含SR富含SR的相平衡的组合实验与理论研究

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摘要

Solid solution formation between RaSO4and other isostructural sulfates has been known for a long time as a process potentially controlling Ra concentrations in aquifers. Here, we measured the Ra uptake in the Sr-rich corner of the ternary (Sr,Ba,Ra)SO4solid solution - aqueous solution (SS-AS) system by equilibrating SrSO4, BaSO4and mixed (Sr,Ba)SO4solids with Ra-bearing aqueous solutions for up to 1302?days at 90?°C at a solid/liquid ratio of 5?g/L. The recrystallization experiments were combined with electron microscopy studies of the solids. The evolution of the solid and aqueous phases was interpreted based on thermodynamic modelling applying a recently revised thermodynamic dataset for the (Sr,Ba,Ra)SO4?+?H2O system.The recrystallization process involved several metastable phases, starting from the least soluble, Ba- and Ra-rich precipitates and ending with Sr-rich solids, whose compositions approached the predicted equilibrium states. The composition and the time evolution of metastable phases were correlated with changes in the computed supersaturation functions. Particularly, the formation of Ra- Ba- and Sr-rich rims on primary barite grains in the experiment with the mechanical mixture of 99% of celestine and 1% of barite has been explained by combining calculated supersaturation conditions with considerations of structural misfit.A key result was the observed final Raaqconcentration which is about one order of magnitude lower compared to the initial concentration, implying an efficient uptake into the newly formed solid phases. These concentrations appeared to be just slightly lower than those predicted by the thermodynamic calculations, implying that the complete SS-AS equilibrium was close to be reached in Sr-rich systems in the recrystallization experiments lasting for about 3.5?years.
机译:Raso4和其他硫酸盐之间的固溶体形成很长时间是潜在控制含水层中的Ra浓度的过程。在这里,我们通过平衡SRSO4,BasO4和混合(Sr,Ba)So4solids用Ra-轴承测量三元(SR,BA,RA)SO4Solid溶液 - 水溶液(SS-AS)系统中的RA摄取的RA摄取含水溶液,最多为1302℃,在90Ω℃下,固体/液体比为5Ω·g / l。将重结晶实验与固体的电子显微镜研究相结合。基于用于(SR,BA,RA)SO4?+ H2O系统的最近修正的热力学数据集的热力学建模来解释固体和水相的演变。重结晶过程涉及几个亚稳态,从最少可溶的开始, Ba-和Ra富含富含SR的固体,其组成接近预测的均衡状态。亚稳阶段的组成和时间越变与计算的过饱和函数的变化相关。特别是,通过在结构误区的考虑中结合计算出的过饱和条件,通过组合计算的过饱和条件来解释,在实验中形成Ra-Ba-和Sr的富晶粒上的初级重晶石颗粒和1%的重晶石。与初始浓度相比,关键的结果是观察到的最终RAAQ归集,这是初始峰值下降,暗示进入新形成的固相的有效吸收。这些浓度似乎略低于热力学计算的浓度略低,这意味着在重结晶实验中持续约3.5岁的重结晶实验中的SR富含SS-as平衡,达到完整的SS-as平衡。

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  • 来源
    《Chemical geology》 |2018年第2018期|共17页
  • 作者单位

    Institute of Energy and Climate Research (IEK-6) – Nuclear Waste Management and Reactor Safety Forschungszentrum Jülich GmbH;

    Institute of Energy and Climate Research (IEK-6) – Nuclear Waste Management and Reactor Safety Forschungszentrum Jülich GmbH;

    Central Facility for Electron Microscopy (GFE) RWTH Aachen University;

    Institute of Energy and Climate Research (IEK-6) – Nuclear Waste Management and Reactor Safety Forschungszentrum Jülich GmbH;

    Institute of Energy and Climate Research (IEK-6) – Nuclear Waste Management and Reactor Safety Forschungszentrum Jülich GmbH;

    Central Facility for Electron Microscopy (GFE) RWTH Aachen University;

    Institute of Energy and Climate Research (IEK-6) – Nuclear Waste Management and Reactor Safety Forschungszentrum Jülich GmbH;

    Institute of Energy and Climate Research (IEK-6) – Nuclear Waste Management and Reactor Safety Forschungszentrum Jülich GmbH;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 地球化学;
  • 关键词

    Radium uptake; Recrystallization; (Sr; Ba; Ra)SO4solid solution; Barite; Celestine; Ternary solid solution thermodynamics;

    机译:镭的摄取;重结晶;(Sr;Ba;Ra)So 4solid溶液;重晶石;Celestine;三元固溶热力学;

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