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A double structure generalized plasticity model for expansive materials

机译:膨胀材料的双重结构广义可塑性模型

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The constitutive model presented in this work is built on a conceptual approach for unsaturated expansive soils in which the fundamental characteristic is the explicit consideration of two pore levels. The distinction between the macro- and microstructure provides the opportunity to take into account the dominant phenomena that affect the behaviour of each structural level and the main interactions between them. The microstructure is associated with the active clay minerals, while the macrostructure accounts for the larger-scale structure of the material. The model has been formulated considering concepts of classical and generalized plasticity theories. The generalized stress-strain rate equations are derived within a framework of multidissipative materials, which provides a consistent and formal approach when there are several sources of energy dissipation. The model is formulated in the space of stresses, suction and temperature; and has been implemented in a finite element code. The approach has been applied to explaining and reproducing the behaviour of expansive soils in a variety of problems for which experimental data are available. Three application cases are presented in this paper. Of particular interest is the modelling of an accidental overheating, that took place in a large-scale heating test. This test allows the capabilities of the model to be checked when a complex thermo-hydro-mechanical (THM) path is followed. Copyright
机译:这项工作中提出的本构模型建立在非饱和膨胀土概念方法的基础上,其基本特征是明确考虑了两个孔隙水平。宏观和微观结构之间的区别提供了一个机会,可以考虑到影响每个结构层的行为及其之间的主要相互作用的主要现象。微观结构与活性粘土矿物有关,而宏观结构则说明了该材料的大规模结构。该模型的制定考虑了经典和广义可塑性理论的概念。广义应力-应变率方程是在多耗散材料的框架内得出的,当存在多种能量耗散来源时,这提供了一致且正式的方法。该模型是在应力,吸力和温度的空间中制定的;并已通过有限元代码实现。该方法已用于解释和再现膨胀土在各种问题中的行为,这些问题可得到实验数据。本文提出了三个应用案例。特别令人感兴趣的是在大规模加热测试中发生的意外过热建模。当遵循复杂的热-水力-机械(THM)路径时,此测试可以检查模型的功能。版权

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