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Modified bentonites for soil-bentonite cutoff wall applications with hard mix water

机译:改性膨润土与硬质混合水用于土壤-膨润土防渗墙应用

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摘要

The influence of mix water hardness and bentonite type on the quality of bentonite slurry and hydraulic performance of soil-bentonite backfill mixtures was investigated through slurry quality testing and flexible-wall hydraulic conductivity (k) testing of soil-bentonite backfill specimens. A conventional sodium bentonite (NG) and two types of modified bentonite, HYPER clay (HC) and multiswellable bentonite (MSB), were used to prepare the slurries and backfills. Slurries were prepared with mix waters containing CaCl2 concentrations (C-M) ranging from 0.5 to 25 mM (hardness, H-M = 50-2500 mg/L as CaCO3), and backfills with similar total bentonite contents (5.5-5.9%) were prepared by combining dry sand-bentonite mixtures with the slurries in a benchtop mixer. Backfill specimens were permeated using CaCl2 solutions with concentrations, C-p, ranging from 0.5 to 50 mM. The results of the slurry testing showed that the impact of the mix water on slurry quality parameters (Marsh viscosity, filtrate loss, and bleed) was dependent upon C-M, bentonite type, and bentonite content. For C-M = 5 mM (H-M = 500 mg/L), slurry containing 5% NG exhibited adequate viscosity, filtrate loss, and bleed. However, NG contents of 7% and 12% were required to obtain adequate viscosity, filtrate loss, and bleed for C-M = 10 mM (H-M = 1000 mg/L) and 25 mM (H-M = 2500 mg/L), respectively, whereas adequate slurry properties were obtained for C-M = 10 mM using lower percentages (5-6%) of HC or MSB. In terms of backfill k, the specimens containing HC amended with polyanionic cellulose appeared to be the most resilient against hard mix water. The k of backfill specimens containing NG generally exceeded 10(-9) m/s when prepared using slurry with C-M = 10 mM and exceeded 10(-9) m/s when prepared using slurry with C-M = 25 mM. In contrast, HC backfill specimens prepared using slurry with C-M = 10 or 25 mM exhibited k ranging from 4 x 10(-11) to 5 x 10(-19) m/s. Overall, C-M had greater influence on backfill k relative to C-p for the range of C-p considered in this study.
机译:通过泥土质量测试和土-膨润土回填标本的柔性墙水导率(k)测试,研究了混合水硬度和膨润土类型对膨润土浆料质量和土-膨润土回填混合物水力性能的影响。使用常规的钠膨润土(NG)和两种类型的改性膨润土,即HYPER粘土(HC)和多溶胀性膨润土(MSB),来制备浆液和回填土。使用浓度范围为0.5至25 mM的CaCl2(CM)(硬度,HM = 50-2500 mg / L的CaCO3)的混合水制备浆料,并通过混合制备总膨润土含量相似的回填土(5.5-5.9%)在台式搅拌机中将干燥的砂-膨润土混合物与浆液混合。使用CaCl2溶液渗透回填样品,其浓度C-p为0.5至50 mM。浆料测试的结果表明,混合水对浆料质量参数(沼泽粘度,滤液损失和渗出)的影响取决于C-M,膨润土的类型和膨润土的含量。对于C-M <= 5 mM(H-M <= 500 mg / L),含有5%NG的浆料显示出足够的粘度,滤液损失和渗出。但是,分别需要7%和12%的NG含量才能获得足够的粘度,滤液损失和CM = 10 mM(HM = 1000 mg / L)和25 mM(HM = 2500 mg / L)的渗出。对于CM = 10 mM,使用较低百分比(5-6%)的HC或MSB,可以获得足够的浆料性能。就回填k而言,含有HC和聚阴离子纤维素改性的HC样品似乎对硬混合水具有最大的回弹力。当使用C-M = 10 mM的浆液制备时,含有NG的回填样品的k通常超过10(-9)m / s,而使用C-M = 25 mM的浆液制备时超过10(-9)m / s。相反,使用C-M = 10或25 mM的浆液制备的HC回填标本的k范围为4 x 10(-11)到5 x 10(-19)m / s。总体而言,在本研究中考虑的C-p范围内,相对于C-p,C-M对回填k的影响更大。

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