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Effect of Discrete Columns on Shear Stress Distribution in Liquefiable Soil

机译:离散柱对液化土剪切应力分布的影响

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Stone and soil-cement columns are often used to improve the liquefaction resistance of loose sandy ground potentially subjected to strong shaking. The shear stress reduction in the loose ground resulting from the reinforcing effect of these stiffer discrete columns is often considered as a contributing mechanism for liquefaction mitigation. Current design practice commonly assumes that discrete columns and soil deform equally in pure shear (i.e. shear strain compatible deformation). In addition, since the discrete column is stiffer than the soil, it is assumed to attract higher shear stress, thereby reducing the shear stress in the surrounding soil. In this paper, the shear stress distribution mechanism of discrete columns and the shear stress reduction in liquefiable soils are investigated using 3-D finite element analysis. From the analysis, it is found that discrete columns behave in both shear and flexure, such that the shear strain compatibility assumption can be significantly unconservative. The investigation indicates that the shear reinforcement of stiffer discrete columns is less effective than commonly used in current design practice. A revised design equation is proposed to conservatively estimate the shear stress reduction ratio.
机译:石材和土壤 - 水泥柱通常用于改善松散的砂土的液化抗性可能对强烈的振荡进行强烈的振荡。由这些冷却离散柱的增强效果产生的松散地的剪切应力降低通常被认为是液化缓解的贡献机制。目前的设计实践通常假设离散的柱和土壤在纯剪切中同样地变形(即剪切应变兼容变形)。另外,由于离散柱比土壤更硬,因此假设吸引较高的剪切应力,从而降低了周围土壤中的剪切应力。本文采用三维有限元分析研究了离散柱的剪切应力分布机制和液化土的剪切应力降低。从分析来看,发现离散柱在剪切和弯曲中表现,使得剪切应变兼容性假设可以显着地unformative。调查表明,冷却离散柱的剪切增强比当前设计实践中常用的剪切增强不如常用。提出了修订的设计方程,以保守估计剪切应力降低率。

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