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Numerical modeling of pile penetration in silica sands considering the effect of grain breakage

机译:考虑破损影响的硅砂桩身渗透数值模拟

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Current numerical platforms rarely consider the effect of grain breakage in the design of sandy soil foundations. This paper presents an enhanced platform for large deformation analyses which considers the effect of grain breakage during pile penetration in silica sand. For this purpose, a model based on critical state theory has been developed within the framework of multisurface plasticity to account in the same constitutive platform the effect of stress dilatancy and particle fragmentation. Furthermore, to implement the underlying constitutive equations into a finite element code, a stress integration scheme has been adopted by extending a cutting plane algorithm to the model with multiple yielding mechanisms. A laboratory model test and a series of centrifuge tests of pile penetration are simulated to verify the performance of the selected constitutive approach in terms of pile resistance and grain breakage distribution, with the parameters of sand calibrated through a set of drained triaxial compression tests from low to very high confining pressure. Some extra features of the enhanced platform are also discussed, such as: i) the effect of sand crushability on pile resistance and ii) the nonlinear relation of pile resistance to sand density. The proposed findings demonstrate the capability of this numerical platform to proper design of pile foundation in sandy soils and highlight the interplay between stress dilatancy and grain breakage mechanisms during pile penetration processes.
机译:当前的数值平台很少在沙土基础设计中考虑颗粒破碎的影响。本文提出了一种用于大变形分析的增强平台,该平台考虑了在硅砂桩穿透过程中晶粒破碎的影响。为此,已经在多表面可塑性的框架内开发了基于临界状态理论的模型,以在相同的本构平台中考虑应力膨胀和颗粒破碎的影响。此外,为了将基本的本构方程实现为有限元代码,通过将切面算法扩展到具有多种屈服机制的模型,采用了应力积分方案。模拟了一个实验室模型测试和一系列的桩穿透离心试验,以验证所选本构方法在桩阻力和颗粒破损分布方面的性能,并通过一系列排水三轴压缩试验对砂的参数进行了校准,这些参数从低到很高的围压。还讨论了增强平台的一些其他功能,例如:i)防砂性对桩抗性的影响,以及ii)桩抗性与砂密度的非线性关系。所提出的发现证明了该数值平台对砂土中桩基础进行适当设计的能力,并突出了桩穿入过程中应力膨胀率与破损机制之间的相互作用。

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