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首页> 外文期刊>Journal of Engineering Mechanics >3D Elastoplastic Model for Fine-Grained Gassy Soil Considering the Gas-Dependent Yield Surface Shape and Stress-Dilatancy
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3D Elastoplastic Model for Fine-Grained Gassy Soil Considering the Gas-Dependent Yield Surface Shape and Stress-Dilatancy

机译:考虑气体依赖性屈服表面形状和应力膨胀的微粒气体土壤的3D弹性塑料模型

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Fine-grained sediments containing large discrete gas bubbles are widely distributed in the five continents throughout the world. The presence of gas bubbles could either degrade or enhance the hardening behavior and undrained shear strength (su) of the soil, depending on the initial pore water pressure (uw~0) and initial gas volume fraction (ψ0). The existing constitutive models, however, can solely capture either detrimental or beneficial effect owing to the presence of gas. This study presents a new three-dimensional (3D) elastoplastic constitutive model that describes both the damaging and beneficial effects of gas bubbles on the stress-strain behavior of fine-grained gassy soil in a unified manner. This was achieved by incorporating (1) a versatile expression of yield function that simulates a wide range of yield curve shapes in a unified context, and (2) a dilatancy function capturing the distinct stress-dilatancy behavior of fine-grained gassy soil. Given the lack of direct experimental evidence on the shape of the yield curve of fine-grained gassy soil, new experiments were performed. This has led to the identification of three distinct shapes of yield curve-bullet, ellipse, and teardrop-as well as the formulation of the yield function considering the dependency of yield curve shapes on uw0 and ψ0. The new model was shown to reasonably capture both the damaging and beneficial effects of gas on the compression and shear behavior of three types of fine-grained gassy soils with a broad range of uw0 and ψ0 by using a unified set of parameters.
机译:含有大型离散气泡的细粒沉积物广泛分布在全球五大洲。根据初始孔隙水压(UW〜0)和初始气体体积分数(χ0),气泡的存在可以降低或增强土壤的固化行为和未造成的剪切强度(SU)。然而,由于气体存在,现有的本构模型可仅仅捕获有害或有益的效果。该研究提出了一种新的三维(3D)弹性塑料本构模型,其描述了气泡以统一的方式对细菌气体土壤应力 - 应变行为的损伤和有益作用。这是通过掺入(1)的屈服函数的通用表达来实现的,该屈服函数在统一的上下文中模拟各种屈服曲线形状,并且(2)捕获细粒状气体土壤的不同应力膨胀行为的膨胀函数。鉴于缺乏关于细粒胶质土壤产量曲线形状的直接实验证据,进行了新的实验。这导致了识别三种不同形状的产量曲线,椭圆形和泪珠 - 以及考虑屈服曲线形状对UW0和χ0的依赖性的屈服功能的制定。通过使用统一的参数集,该新模型可合理地捕获气体对三种类型的微粒气体土壤的压缩和剪切行为的损坏和剪切行为。

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