首页> 外文会议>International Conference on Unsaturated Soils; 20060402-06; Carefree,AZ(US) >An Elasto-viscoplastic Model and Multiphase Coupled FE Analysis for Unsaturated Soil
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An Elasto-viscoplastic Model and Multiphase Coupled FE Analysis for Unsaturated Soil

机译:非饱和土的弹粘塑性模型和多相耦合有限元分析

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Rate sensitivity is an important characteristic of geomaterials for both saturated and unsaturated soils. However, many constitutive models for unsaturated soil have been constructed within the framework of the rate independent theory. The present study addresses an elasto-viscoplastic constitutive model which considers the effect of suction for unsaturated clayey soil and a soil-water-air three-phase coupled analysis using the elasto-viscoplastic model. The proposed constitutive model adopts the average skeleton stress for the effective stress from the viewpoint of the mixture theory. Hence, it has become possible to construct a model for unsaturated soil starting with a model for saturated soil by substituting the average skeleton stress for the effective stress and introducing the suction effect into the constitutive model. Furthermore, the collapse behavior, which is brought about by a decrease in suction, is described by the shrinkage of the overconsolidation boundary surface, the static yield surface, and the viscoplastic potential surface. A numerical analysis for multiphase materials is conducted within the framework of a continuum mechanics approach through the use of the theory of porous media. The theory is a generalization of Biot's two-phase mixture theory for saturated soil. A soil-water-air three-phase coupled finite element method is developed in the present study using the governing equations for multiphase soil based on the non-linear finite deformation theory. The average skeleton stress is defined as the difference between the total stress and the average pressure of the two fluids and is used in the proposed elasto-viscoplastic constitutive model. A van Genuchten (1980) type of equation is employed as the constitutive equation between the liquid saturation and the suction pressure. Numerical simulations of unexhausted-undrained compression with different strain rates are conducted under plane strain conditions, and the applicability of the proposed method is evaluated with respect to strain localization and the effect of suction.
机译:速率敏感性是土工材料对于饱和土壤和非饱和土壤的重要特征。但是,在速率无关理论的框架内已经建立了许多非饱和土的本构模型。本研究提出了一种弹粘塑性本构模型,该模型考虑了吸力对非饱和黏性土壤的影响,并利用弹塑性粘塑性模型进行了水-水-空气三相耦合分析。从混合理论的角度出发,所提出的本构模型采用平均骨架应力作为有效应力。因此,通过将平均骨架应力代入有效应力并将吸力效应引入本构模型,从饱和土模型开始构建非饱和土模型成为可能。此外,由吸力降低引起的坍塌行为由过度固结边界面,静态屈服面和粘塑性势能面的收缩来描述。通过使用多孔介质理论,在连续力学方法的框架内对多相材料进行了数值分析。该理论是Biot对饱和土壤的两相混合理论的推广。本研究基于非线性有限变形理论,利用多相土的控制方程,建立了土-水-气三相耦合有限元方法。平均骨架应力定义为两种流体的总应力和平均压力之差,并在提出的弹粘塑性本构模型中使用。 van Genuchten(1980)类型的方程式用作液体饱和度和吸入压力之间的本构方程式。在平面应变条件下,进行了不同应变速率下不竭排空压缩的数值模拟,并从应变局部化和吸力影响的角度评估了该方法的适用性。

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