Swelling Prediction of Expansive Soil Using Numerical Method Analysis

Diaz Ishak, W. Hidayat, R. Sudisman, A. Aristo
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Abstract

Expansive soil is one of the factors that cause road damage in Indonesia. Its behavior is influenced by moisture content. At high moisture content, expansive clay has a very low bearing capacity and high swelling and shrinkage rate compared to other soil types. This soil expansion causes a heave force on the road pavement. When the force exceeds the strength of the pavement, the pavement will deform and break as the initial damage is created. Therefore, it is critical to investigate the effect of moisture content on the swelling-shrinkage behavior of expansive soil. In this study, soil expansion is numerically predicted using the finite element approach on ABAQUS compared to the laboratory expansion index test. The geometric shape and loading of the soil model are the same as the sample shape and loading of a laboratory expansion index test. The Mohr-Coulomb soil constitutive model with sorption is used to simulate water absorption in partially saturated soils. Coupled wetting liquid flow and porous medium stress analysis are used to simulate swelling and shrinkage. The simulation is divided into two types: geostatic, which simulates soil model loading, and coupled pore fluid, which simulates changes in water content. The simulation is then compared to the laboratory test for validation. The numerical analysis results show that the model's accuracy depends highly on the constitutive soil model, whereas the Mohr-Coulomb model shows a limitation in accuracy with the maximum swelling in the simulation is 21.704%, while the average maximum swelling in laboratory testing is 15.515%.
膨胀土膨胀预测的数值方法分析
膨胀土是造成印尼道路损坏的因素之一。其性能受含水率的影响。在高含水率条件下,膨胀粘土的承载力较低,膨胀收缩率较高。这种土壤膨胀对路面产生了升力。当外力超过路面的强度时,路面就会发生变形,产生初始损伤。因此,研究含水率对膨胀土膨胀收缩特性的影响至关重要。在本研究中,采用ABAQUS有限元方法对土体膨胀进行了数值预测,并与室内膨胀指数试验进行了比较。土模型的几何形状和荷载与室内膨胀指数试验的试样形状和荷载相同。采用含吸附的莫尔-库仑土本构模型,模拟了部分饱和土的吸水过程。采用湿润液体流动和多孔介质应力耦合分析方法模拟膨胀收缩过程。模拟分为两种类型:模拟土壤模型加载的地静力模拟和模拟含水量变化的耦合孔隙流体模拟。然后将模拟与实验室测试进行比较以验证。数值分析结果表明,模型的精度高度依赖于本构土模型,而Mohr-Coulomb模型存在精度限制,模拟最大膨胀率为21.704%,而室内测试的平均最大膨胀率为15.515%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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