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Random field finite element models with cohesive-frictional interactions of a hardened cement paste microstructure

机译:硬化水泥浆体微结构内聚-摩擦相互作用的随机场有限元模型

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摘要

Cement paste is a disordered material whose properties and structure differ spatially and cannot be precisely predicted. We propose a new approach for developing finite element models of a hardened microstructure that accounts for the stochastic nature of cement paste. The initial model configuration is a random field that is generated according to probability density functions measured through nanoindentation experiments on samples composed of Portland cement and a volcanic ash additive. We study the influence of cohesive-frictional interactions through a Mohr-Coulomb yield criterion applied to the finite element constitutive relations. An ensemble of microstructures are simulated to assess the influence of spatial fluctuations and plasticity on the mechanical response to compressive loading. Our results indicate that the micron-scale morphology has a limited influence on the macroscopic strength behavior. These findings suggest that the shear strength scaling and dilatant behavior of cement paste originates within nanometer-scale features of the composite.
机译:水泥浆是一种无序的材料,其性质和结构在空间上存在差异,无法精确预测。我们提出了一种新的方法来开发硬化微观结构的有限元模型,该模型考虑了水泥浆的随机性。初始模型配置是一个随机场,该场是根据通过纳米压痕实验在由波特兰水泥和火山灰添加剂组成的样品上测得的概率密度函数生成的。我们通过将Mohr-Coulomb屈服准则应用于有限元本构关系来研究内聚-摩擦相互作用的影响。模拟了一组微结构,以评估空间波动和可塑性对压缩载荷的机械响应的影响。我们的结果表明,微米尺度的形态对宏观强度行为的影响有限。这些发现表明,水泥浆的剪切强度缩放和膨胀行为源自复合材料的纳米尺度特征。

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