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Modelling the Cone Penetration Test in sand using Cavity Expansion and Arbitrary Lagrangian Eulerian Finite Element Methods

机译:用腔扩展和任意拉格朗日欧拉有限元法对砂锥渗透试验建模。

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The paper considers two techniques to model the Cone Penetration Test (CPT) end resistance, q_c in a dense sand deposit using commercial finite element programmes. In the first approach, Plaxis was used to perform spherical cavity expansion analyses at multiple depths. Two soil models, namely; the Mohr-Coulomb (MC) and Hardening Soil (HS) models were utilized. When calibrated using simple laboratory element tests, the HS model was found to provide good estimates of q_c. However, at shallow depths, where the over-consolidation ratio of the sand was highest, the relatively large horizontal stresses developed prevented the full development of the failure zone resulting in under-estimation of the q_c value. The second approach involved direct simulation of cone penetration using a large-strain analysis implemented in Abaqus/Explicit. The Arbitrary Lagrangian Eulerian (ALE) technique was used to prevent excessive mesh deformation. Although the Druker-Prager soil model used was not as sophisticated as the HS model, excellent agreement was achieved between the predicted and measured q_c profiles.
机译:本文考虑了两种使用商业有限元程序对稠密砂土中的锥孔渗透试验(CPT)端部阻力q_c建模的技术。在第一种方法中,Plaxis用于在多个深度执行球腔扩展分析。两种土壤模型,即;使用了Mohr-Coulomb(MC)和Hardening Soil(HS)模型。使用简单的实验室元素测试进行校准后,发现HS模型可提供q_c的良好估计。但是,在较浅的深度处,砂的超固结率最高,所产生的相对较大的水平应力会阻止破坏区的完全发展,从而导致q_c值被低估。第二种方法涉及使用Abaqus / Explicit中实现的大应变分析直接模拟圆锥体穿透。任意拉格朗日欧拉(ALE)技术用于防止过度的网格变形。尽管使用的Druker-Prager土壤模型不如HS模型复杂,但在预测和测量的q_c剖面之间取得了极好的一致性。

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