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Modeling the mechanical behavior of unsaturated expansive soils based on Bishop principle of effective stress

机译:基于有效应力毕晓普原理的非饱和膨胀土力学行为建模

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Modeling the mechanical behavior of expansive clays is of interest in understanding the performance of nuclear waste disposal designs that include clay materials as buffers around waste containers, backfill for underground openings, seals between adjacent openings, or as host-rock constituents. The buffers, backfill, and seals will be unsaturated during construction and will re-saturate at varying rates after cessation of disposal operations. The mechanical behavior of the clay materials during re-wetting could affect the pressure on waste containers, other engineered components, or the host rock and could influence fluid flow and radionuclide transport. The authors describe an approach to mechanical modeling of unsaturated soils using the moisture retention characteristic curve and the Bishop principle of effective stress to evaluate suction effects on stress. The approach incorporates swelling, thermal expansion, and soil hardening and stiffening due to suction or compaction and uses stress-strain relationships based on elastoplasticity. Suction contributions to soil stress, strength, and stiffness are evaluated using the same moisture retention characteristic curve that is a standard input for hydrological modeling. The model is illustrated through several numerical simulations of oedometer free-swell and confined-swell testing of a bentonite-sand mixture and a granular bentonite. Results are presented with and without the effect of physicochemical swelling to illustrate magnitude of the swelling influence on independent variables and different mechanical responses. The model prediction is highly dependent on the swelling/shrinkage behavior of bentonite, which could be a source of uncertainty in estimating potential pressure due to a bentonite buffer in a nuclear waste repository design.
机译:对膨胀性粘土的力学行为进行建模,对于理解核废料处置设计的性能非常重要,这些设计包括粘土材料作为废物容器周围的缓冲区,地下开口的回填,相邻开口之间的密封件或主体岩石成分。缓冲液,回填和密封在施工过程中将不饱和,并且在停止处置操作后将以不同的速率重新饱和。粘土材料在再润湿过程中的机械性能可能会影响废物容器,其他工程组件或主体岩石上的压力,并可能影响流体流动和放射性核素的运输。作者描述了一种利用水分保持特征曲线和有效应力的毕晓普原理对不饱和土壤进行机械建模的方法,以评估吸力对应力的影响。该方法结合了由于吸力或压实引起的膨胀,热膨胀,土壤硬化和硬化,并使用了基于弹塑性的应力-应变关系。使用相同的保水特性曲线(水文模型的标准输入)评估吸力对土壤应力,强度和刚度的贡献。通过对膨润土-砂混合物和粒状膨润土的里程表自由溶胀和密闭溶胀测试的几个数值模拟来说明该模型。呈现有无理化肿胀影响的结果,以说明肿胀对自变量和不同机械响应的影响程度。模型预测高度依赖于膨润土的膨胀/收缩行为,这可能是估算核废料储存库设计中由于膨润土缓冲剂而产生的潜在压力时不确定性的来源。

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