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Coupled mechanics, hydraulics and sorption properties of mixtures to evaluate buffer/backfill materials

机译:结合力学,水力学和混合物的吸附特性来评估缓冲/回填材料

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The buffer materials that retarding the migration of nuclides and making the canisters stable in a geological deep repository of high-level radioactive waste play a very important role. This study coupled engineering and sorption properties to evaluate the buffer/backfill materials. The R_d values of Cs, Se and I (10~(-4) M) with respect to various composite ratios of bentonite/laterite/quartz sand mixtures were measured using batch sorption tests in groundwater (GW) and seawater (SW) which simulate possible conditions for a deep geological disposal in an island. Deionized water (DIW) was used as the liquid phase for Atterberg limits tests, triaxial shear tests and hydraulic conductivity tests in order to determine the engineering properties of the mixtures. From the results of the Atterberg limits tests, seven samples were classified as inorganic clays of high plasticity and one sample was classified as inorganic clays of medium plasticity. Under the test condition of samples with dry density of 1.75 ± 0.05 g/cm~3, the samples with 30% quartz sand content demonstrated higher shear strength. Very low hydraulic conductivities of four selected samples were measured, ranging from 1.46 x 10~(-11) m/s to 2.94 x 10~(-11) m/s. The sorption behavior of Cs, Se and I on every individual solid material (laterite, bentonite and quartz sand) can be summed up as follows: the sorption of Se is significantly more affected by the solid phase (R_d~(laterite) > R_d~(bentonite) than by the liquid phase (GW or SW). Contrarily, the sorption of Cs is more affected by the nature of the liquid phase (R_d~(GW) > R_d~(SW)) rather than solid phase. On the mixtures used in this work, the sorption of Cs was higher in GW suspensions, when the plastic index (PI) = 40-50 and a 30% quartz sand content. Regarding the relationship between sorption of selenium and engineering characteristics, the mixtures with PI = 40-50 (30% quartz sand content) were the potentially more adequate composite materials. Slight sorption of I was observed on all mixtures in GW and SW. On the basis of the results presented in this work, the composition of 30% quartz sand content which PI = 40-50 might be the best choice for the buffer/backfill materials. Finally, a local soil, laterite, exhibited higher sorption capacity of Cs and Se in both GW and SW than bentonite.
机译:在高放射性废物的地质深层储存库中,阻止核素迁移并使碳罐稳定的缓冲材料起着非常重要的作用。这项研究结合工程学和吸附性能来评估缓冲/回填材料。使用在地下水(GW)和海水(SW)中的分批吸附测试,测量了Cs,Se和I(10〜(-4)M)相对于膨润土/红土/石英砂混合物各种混合比的R_d值在岛上进行深度地质处置的可能条件。去离子水(DIW)用作液相用于Atterberg极限测试,三轴剪切测试和水力传导率测试,以确定混合物的工程性能。根据阿特伯格极限测试的结果,将七个样品分类为高塑性无机粘土,将一个样品分类为中塑性无机粘土。在干密度为1.75±0.05 g / cm〜3的样品的测试条件下,石英砂含量为30%的样品表现出较高的剪切强度。测量的四个样本的水导率非常低,范围为1.46 x 10〜(-11)m / s至2.94 x 10〜(-11)m / s。 Cs,Se和I在每种固体材料(红土,膨润土和石英砂)上的吸附行为可总结如下:固相对Se的吸附影响更大(R_d〜(laterite)> R_d〜 (膨润土)而不是液相(GW或SW),相反,Cs的吸附受液相性质(R_d〜(GW)> R_d〜(SW))而不是固相的影响更大。在塑料指数(PI)= 40-50和石英砂含量为30%的情况下,该混合物在GW悬浮液中对Cs的吸附较高,关于硒的吸附与工程特性之间的关系, = 40-50(石英砂含量为30%)可能是更合适的复合材料,在GW和SW中的所有混合物上均观察到了I的轻微吸附,根据这项工作得出的结果,组成为30%的石英PI = 40-50的砂含量可能是缓冲/回填材料的最佳选择。百合,本地土壤,红土,在GW和SW中都比膨润土具有更高的Cs和Se吸附能力。

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