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An elastoplatic framework for coupling hydraulic and mechanical behavior of unsaturated soils

机译:耦合非饱和土的水力和力学行为的弹性框架

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Combining theory of mixture with interfaces (TMI) and the continuum theory of plasticity, a theoretical framework for modeling the elastoplastic constitutive behavior of unsaturated soils is presented. We show that capillary hysteresis, i.e., soil water characteristic curves (SWCCs), is associated with a dissipation mechanism due to the irrecoverable change in volume fraction of water. Within this context, plastic deformation and capillary hysteresis can be consistently simulated in a hierarchical way. Plastic deformation is described by using an intergranular stress tensor that does not require any empirical coefficients and the capillary hysteresis is simulated within the framework of cyclic plasticity. This framework preserves all the advantages of unsaturated soil models based on the effective stress, two stress state variables, and the theory of mixtures. As a first step in developing a comprehensive constitutive model within this framework, a detailed model to simulate SWCCs is presented and compared with experimental data and a good comparison is obtained. A brief description of a novel experimental setup used to rapidly measure the SWCCs is also presented. Finally an isotropic coupled hydraulic-mechanical model is presented and the coupling effects between plastic deformation and capillary hysteresis are investigated.
机译:结合界面混合理论和可塑性连续性理论,提出了非饱和土弹塑性本构模型的理论框架。我们显示出毛细管滞后现象,即土壤水特征曲线(SWCC),由于水体积分数的不可恢复变化而与耗散机制有关。在这种情况下,可以以分层方式一致地模拟塑性变形和毛细管滞后。通过使用不需要任何经验系数的晶间应力张量来描述塑性变形,并且在循环可塑性的框架内模拟毛细管滞后。该框架保留了基于有效应力,两个应力状态变量和混合理论的非饱和土模型的所有优点。作为在此框架内开发综合本构模型的第一步,提出了用于模拟SWCC的详细模型,并将其与实验数据进行比较,并获得了良好的比较。还简要介绍了用于快速测量SWCC的新型实验装置。最后,建立了各向同性的水力-力学耦合模型,研究了塑性变形与毛细管滞后的耦合效应。

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