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Numerical simulation of earthquake-induced liquefactions considering the principal stress rotation

机译:考虑主应力旋转的地震液化数值模拟

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摘要

Dynamic loadings such as earthquake loadings can generate considerable principal stress rotation (PSR) in the saturated soil. The PSR without changes of principal stress magnitudes can generate additional excess pore water pressures and plastic strains, thus accelerating liquefaction in undrained conditions. This paper simulates a centrifuge model test using the fully coupled finite element method considering the PSR. The impact of PSR under the earthquake loading is taken into account by using an elastoplastic soil model developed on the basis of a kinematic hardening soil model with the bounding surface concept. The soil model considers the PSR by treating the stress rate generating the PSR independently. The capability of this soil model is verified by comparing the numerical predictions and experimental results. It also indicates that the PSR impact can not be ignored in predictions of soil liquefaction.
机译:诸如地震荷载之类的动态荷载会在饱和土壤中产生相当大的主应力旋转(PSR)。不改变主应力大小的PSR可能会产生额外的孔隙水压力和塑性应变,从而加速不排水条件下的液化。本文使用考虑了PSR的全耦合有限元方法模拟了离心机模型测试。通过使用弹塑性土模型来考虑PSR在地震荷载作用下的影响,该模型是在具有边界面概念的运动硬化土模型的基础上开发的。土壤模型通过处理独立生成PSR的应力率来考虑PSR。通过比较数值预测和实验结果验证了该土壤模型的能力。这也表明在土壤液化的预测中不能忽略PSR的影响。

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