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STRAIN ENERGY-BASED ELASTO-VISCOPLASTIC CONSTITUTIVE MODELLING OF SAND FOR NUMERICAL SIMULATION

机译:基于应变能的砂土弹-粘弹本构模型的数值模拟

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It is shown that the use of visco-plastic shear or volumetric strain as the stress history-independent hardening parameter in an elasto-viscoplastic model for sand may result in inaccurate numerical simulations of geotechnical boundary value problems. A new elasto-viscoplastic constitutive model for sand is proposed, formulated based on a stress path-independent irreversible (or visco-plastic) strain energy-based hardening function. The function was derived based on results from drained plane strain compression (PSC) tests on saturated dense Toyoura sand along a wide variety of stress path. The model is coupled with an existing isotropically work-hardening and -softening, non-associated, elasto-plastic model for sand. The constitutive model takes into account the effects of loading rate due to viscous properties on the stress-strain behaviour as well as those of pressure level, inherent anisotropy and void ratio and work softening associated with strain localization into a shear band. It is shown that the proposed model can much better simulate the effects of stress history on the deformation characteristics of sand than many previous models. The FEM code incorporating the model is validated by simulating physical PSC tests and bearing capacity model tests of a strip footing on sand performed by previous studies.
机译:结果表明,在砂粘弹塑性模型中,将粘塑性剪切或体积应变用作与应力历史无关的硬化参数可能会导致岩土边界值问题的数值模拟不准确。提出了一种新的砂弹-粘塑性本构模型,该模型基于与应力路径无关的不可逆(或粘塑性)应变能基硬化函数建立。该函数是基于沿各种应力路径在饱和致密丰谷砂上进行的排水平面应变压缩(PSC)测试的结果得出的。该模型与现有的各向同性工作硬化和软化,非关联的弹塑性砂土模型结合在一起。本构模型考虑了粘滞特性引起的加载速率对应力-应变行为以及压力水平,固有各向异性和空隙率以及与应变局部化到剪切带相关的功软化的影响。结果表明,与许多以前的模型相比,该模型可以更好地模拟应力历史对砂土变形特性的影响。通过模拟先前研究进行的物理PSC测试和砂带基础的承载力模型测试,可以验证包含该模型的FEM代码。

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