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Hydraulic conductivity and microstructure changes of compacted bentonite/sand mixture during hydration

机译:水合过程中压实膨润土/砂混合物的水力传导率和微观结构变化

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Compacted bentonite-based materials are often considered as sealing/backfill materials in deep geological repository for high level radioactive waste. A good understanding of their hydration process is essential as this process is directly related to over-pack corrosion and nuclide migration. In this study, the unsaturated hydraulic properties of MX80 bentonite/sand mixture were characterized by carrying out a series of experiments including water retention test, infiltration test as well as microstructure observation. It was found that with suction decrease under constant volume condition, the hydraulic conductivity decreased followed by an increase after a suction threshold. At suctions higher than 12.6 MPa, hydration led to progressive large-pore clogging by exfoliation of clay particles. On the contrary, when saturation was approached (suction lower than 4.2 MPa), the large-pore quantity increased due to the creation of two-dimensional pores. It was also observed that the soil hydraulic conductivity changed following the same tendency as the large-pore quantity during hydration. In other words, water transfer was primarily governed by the network of large-pores.
机译:压实的膨润土基材料通常被视为高放射性废物的深层地质处置库中的密封/回填材料。充分了解它们的水合过程至关重要,因为该过程直接与堆积腐蚀和核素迁移有关。在这项研究中,MX80膨润土/砂混合物的不饱和水力学特性是通过进行一系列实验,包括保水试验,渗透试验以及微观结构观察来表征的。发现在恒定体积条件下吸力降低时,水力传导率降低,然后在吸力阈值之后增加。在吸力高于12.6 MPa时,水合作用会导致粘土颗粒剥落而导致大孔堵塞。相反,当达到饱和状态(吸力低于4.2 MPa)时,由于形成了二维孔,大孔数量增加了。还观察到,土壤水导率的变化趋势与水化过程中的大孔数量相同。换句话说,水的转移主要由大孔网络控制。

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