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首页> 外文期刊>Journal of Engineering Mechanics >Bounding Surface Elasto-Viscoplasticity: A General Constitutive Framework for Rate-Dependent Geomaterials
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Bounding Surface Elasto-Viscoplasticity: A General Constitutive Framework for Rate-Dependent Geomaterials

机译:界面表面弹性粘塑性:依赖速率造型的一般组成框架

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A general framework is proposed to incorporate rate and time effects into bounding surface (BS) plasticity models. For this purpose, the elasto-viscoplasticity (EVP) overstress theory is combined with bounding surface modeling techniques. The resulting constitutive framework simply requires the definition of an overstress function through which BS models can be augmented without additional constitutive hypotheses. The new formulation differs from existing rate-dependent bounding surface frameworks in that the strain rate is additively decomposed into elastic and viscoplastic parts, much like classical viscoplasticity. Accordingly, the proposed bounding surface elasto-viscoplasticity (BS-EVP) framework is characterized by two attractive features: (1) the rate-independent limit is naturally recovered at low strain rates; and (2) the inelastic strain rate depends exclusively on the current state. To illustrate the advantages of the new framework, a particular BS-EVP constitutive law is formulated by enhancing the modified Cam-clay model through the proposed theory. From a qualitative standpoint, this simple model shows that the new framework is able to replicate a wide range of time/rate effects occurring at stress levels located strictly inside the bounding surface. From a quantitative standpoint, the calibration of the model for overconsolidated Hong Kong marine clays shows that, despite the use of only six constitutive parameters, the resulting model is able to realistically replicate the undrained shear behavior of clay samples with OCR ranging from 1 to 8, and subjected to axial strain rates spanning 0.15%/h to 15%/h. These promising features demonstrate that the proposed BS-EVP framework represents an ideal platform to model geomaterials characterized by complex past stress history and cyclic stress fluctuations applied at rapidly varying rates.
机译:提出了一般框架,将速率和时间效应纳入边界表面(BS)可塑性模型。为此目的,弹性粘胶塑料(EVP)过度传感理论与边界表面建模技术相结合。由此产生的本构框架简单地要求定义过度函数的定义,通过该过度函数可以在没有额外的组成型假设的情况下增强BS模型。新的制剂与现有率依赖的边界表面框架不同,因为应变速率加剧分解成弹性和粘性部件,与经典粘合性相同。因此,所提出的边界表面弹性粘塑料(BS-EVP)框架的特征在于:(1)速率无限制在低应变率下自然回收; (2)无弹性应变率仅取决于当前状态。为了说明新框架的优点,通过通过提出的理论增强改进的CAM-CLAY模型来配制特定的BS-EVP构成律。从定性的角度来看,这个简单的模型表明,新框架能够在严格地在边界表面内部的应力水平复制各种时间/速率效应。从定量的角度来看,过度叠加的香港海洋粘土模型的校准表明,尽管使用了仅六个本构参数,所得到的模型能够在1到8的OCR范围内实现粘土样本的不推迟的剪切行为。 ,并经受跨越0.15%/ h至15%/ h的轴向应变率。这些有希望的功能表明,所提出的BS-EVP框架代表了一种理想的平台,其模拟了由复杂的过去的压力历史和循环应力波动以迅速变化的速率施加的模拟。

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