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Minimum principle and related numerical scheme for simulating initial flow and subsequent propagation of liquefied ground

机译:模拟液化土初始流及其后传播的最小原理和相关数值方案

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摘要

The problem of predicting the evolution of liquefied ground, modelled as a viscoplastic material, is addressed by combining a minimum principle for the velocity field, which characterizes such an evolution, and a time step integration procedure. Two different numerical schemes are then presented for the finite element implementation of this minimum principle, namely, the regularization technique and the decomposition-co-ordination method by augmented Lagrangian. The second method, which proves more accurate and efficient than the first, is finally applied to simulate the incipient flow failure and subsequent spreading of a liquefied soil embankment subject to gravity. The strong influence of liquefied soil residual shear strength on reducing the maximum amplitude of the ground displacement is particularly emphasized in such an analysis.
机译:通过将速度场的最小原理和时间步长积分过程结合起来,可以解决预测作为粘塑性材料建模的液化地面的问题。然后,针对该最小原理的有限元实现,提出了两种不同的数值方案,即正则化技术和增强拉格朗日算子的分解协调方法。最后,第二种方法被证明比第一种方法更准确和有效,最终被用于模拟液流在重力作用下的初期流失和随后的扩展。在这种分析中,特别强调了液化土壤残余抗剪强度对减小地面位移最大幅度的强烈影响。

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