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首页> 外文期刊>Applied Geochemistry: Journal of the International Association of Geochemistry and Cosmochemistry >Aqueous-solid solution thermodynamic model of U(VI) uptake in C-S-H phases
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Aqueous-solid solution thermodynamic model of U(VI) uptake in C-S-H phases

机译:C-S-H相吸收U(VI)的水-固溶热力学模型

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Reliable thermodynamic models assessing the interaction of radionuclides with cementitious materials are important in connection with long-term predictions of the safe disposal of radioactive waste in cement-based repositories. In this study, a geochemical model of U(VI) interaction with calcium silicate hydrates (C-S-H phases), the main component of hardened cement paste (HCP), has been developed. Uranium(VI) sorption isotherms on C-S-H phases of different Ca:Si ratios (C:S) and structural data from spectroscopic studies provided the indispensable set of experimental data required for the model development. This information suggested that U(VI) is neither adsorbed nor incorporated in the Ca-O octahedral layers of the C-S-H structure, but rather is located in the interlayer, similar to Ca ~(2+) and other cations. With a view to the high recrystallisation rates and the cryptocrystalline 'gel-like' structure of the C-S-H phases, these observations indicated a U(VI) uptake driven by the formation of a solid solution.The aqueous-ideal solid solution thermodynamic model of U(VI) uptake in C-S-H was developed using the Compound Energy Formalism (CEF) as an extension of the recently developed model for 'pure' C-S-H solubility. The sub-lattices proposed in the CSH3T model were occupied with U-bearing species defined in accordance with spectroscopic observations. This led to an initial set of nine C-S-H-U(VI) end members. Parameterization of the model was done using the GEM-Selektor code (http://gems.web.psi.ch/) and experimental sorption isotherms of U(VI) in C-S-H phases with 0.6≤C:S≤1.6 in the absence of alkalis, which allowed the end members [(CaO) _2(UO _3)(SiO _2) _(2.5)(H _2O) _5, (CaO) _2(UO _3) _(1.5)(SiO _2) _2(H _2O) _5 and (CaO) _3(UO _3) _(1.5)(SiO _2) _2(H _2O) _(5.5)] to be identified. The resulting CSH3T-U model with six end members was found to predict trends in U(VI) uptake by cementitious materials, even without introduction of 'energetic' non-ideality. Furthermore, reasonable agreement between modelling and U(VI) sorption data obtained from the cement-type zone of the Maqarin natural analogue was observed, suggesting that C-S-H phases might be participating in the U(VI) control at the site.The CSH3T-U model was further used to predict the effect of carbonate on the retention of U(VI) by cementitious materials. The presence of calcite (ubiquitous in conventional cement formulations) has no influence on the retention of U(VI) as the concentration of carbonate in solution is too low (<2×10 ~(-4)M) to influence U complexation under hyperalkaline conditions. However, the addition of free carbonate to the system accelerates the degradation of C-S-H by draining Ca 2+ from the interlayer. At low C:S ratios, this effect can significantly reduce the retention of U by cementitious materials.
机译:评估放射性核素与胶结材料相互作用的可靠热力学模型对于水泥基处置库中放射性废物安全处置的长期预测非常重要。在这项研究中,已开发了U(VI)与水合硅酸钙水合物(C-S-H相)相互作用的地球化学模型,这是硬化水泥浆(HCP)的主要成分。不同Ca:Si比(C:S)的C-S-H相上的铀(VI)吸附等温线和光谱研究的结构数据为模型开发提供了必不可少的实验数据。此信息表明,U(VI)既不吸附也不掺入C-S-H结构的Ca-O八面体层中,而是位于中间层,类似于Ca〜(2+)和其他阳离子。鉴于CSH相的高重结晶速率和隐晶``凝胶状''结构,这些观察结果表明U(VI)的吸收是由固溶体的形成驱动的.U的水理想固溶体热力学模型(VI)使用复合能量形式主义(CEF)开发了CSH的吸收,作为最近开发的“纯” CSH溶解度模型的扩展。 CSH3T模型中提出的子格被根据光谱观察定义的含U的物种占据。这导致了最初的九名C-S-H-U(VI)最终成员。使用GEM-Selektor代码(http://gems.web.psi.ch/)和U(VI)在0.6≤C:S≤1.6的CSH相中的U(VI)实验吸附等温线对模型进行参数化碱,允许末端成员[(CaO)_2(UO _3)(SiO _2)_(2.5)(H _2O)_5,(CaO)_2(UO _3)_(1.5)(SiO _2)_2(H _2O )_5和(CaO)_3(UO _3)_(1.5)(SiO _2)_2(H _2O)_(5.5)]。发现生成的具有六个末端成员的CSH3T-U模型可以预测胶结材料对U(VI)的吸收趋势,即使没有引入“充满活力”的非理想状态。此外,观察到建模与从Maqarin天然类似物的水泥型带获得的U(VI)吸附数据之间存在合理的一致性,这表明CSH相可能参与了该地点的U(VI)对照.CSH3T-U该模型进一步用于预测碳酸盐对胶结材料对U(VI)保留的影响。方解石的存在(在常规水泥配方中普遍存在)对U(VI)的保留没有影响,因为溶液中碳酸盐的浓度太低(<2×10〜(-4)M),无法影响高碱性条件下的U络合条件。但是,向体系中添加游离碳酸盐会通过从中间层排出Ca 2+来加速C-S-H的降解。在低的C:S比率下,这种作用会显着降低胶结材料对U的保留。

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