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Effectiveness of Ground Improvement in Sands upon Seismic Loading Using Non-Linear Soil Model

机译:非线性土壤模型在地震载荷砂中地面改善的有效性

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Loose saturated sands when subjected to seismic loading develop high excessive pore water pressures eventually leading to liquefaction of the soil. The deep vibration compaction method includes densification of loose sands by means of shear deformation processes imparted by horizontal vibrations of vibrator probe. In order to study the feasibility of deep vibration compaction for liquefaction mitigation, a numerical model is created in the finite element framework. The methodology consisted on performing FE simulations using non-linear coupled hypoplastic model based on the u-p formulation for sand behavior at three different stages: ⅰ) analysis of seismic response and liquefaction susceptibility of untreated loose saturated sands using Lagrangian finite elements (FE); ⅱ) simulation of the deep-vibration process by using a coupled Lagrangian-Eulerian (CLE) FE; ⅲ) post-liquefaction susceptibility analysis of improved sands using the Lagrangian FE.
机译:当受到地震负荷时,松散的饱和砂产生高过量的孔隙水压,最终导致土壤的液化。深振动压实方法包括通过通过振动器探针的水平振动赋予的剪切变形工艺来致密化松散的砂质。为了研究深振动压实的可行性进行液化缓解,在有限元框架中创建了一个数值模型。该方法包括使用基于U-P配方的非线性偶联的软糖模型在三种不同阶段进行U-P耦合的软质模型进行Fe模拟:Ⅰ)利用拉格朗日有限元(Fe)分析未处理松散饱和砂的地震反应和液化易感性; Ⅱ)使用耦合拉格朗日 - 欧拉(CLE)FE模拟深振动过程; Ⅲ)利拉朗安Fe的改良砂后液化敏感性分析。

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