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Performance of Axially Loaded-Piled Retaining Wall: Experimental and Numerical Analysis

机译:轴向荷载桩挡土墙的性能:实验与数值分析

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摘要

The piled wall has other applications in addition to supporting the excavation, such as use as part of the permanent work/foundation. It also can be used to reduce or eliminate the need for a separate foundation by carrying all or a portion of the superstructure loads, especially in urban areas. In this study, the potential benefits of using a piled retaining wall to resist the axial load were investigated. A series of plane-strain small-scale model tests on a piled retaining wall embedded in sand under axial loads was performed in the laboratory. The influence of the penetration depth, pile stiffness, and sand relative density on both ultimate axial capacity and deformation behavior of the piled system was evaluated. The results indicate that the ultimate axial capacity of the tested piled wall was remarkably increased with the increase of both penetration depth and soil relative density. When the soil relative density was varied from 50 to 88%, ultimate axial piled wall capacity increased by 72% for the piled wall system installed with a penetration depth of three times the free height and high stiffness. The ultimate axial capacity of the piled wall had a significant effect on the maximum horizontal deformation at failure, in the range of 0.14% of the total piled wall height. Numerical analysis showed that the existence of surcharge stress in the active zone behind the axially loaded-piled wall substantially reduced the ultimate axial capacity of the piled wall by 50%, with remarkable increase in lateral wall deformation and maximum bending moment.
机译:桩墙除了支持挖掘工作外,还具有其他用途,例如用作永久性工作/地基的一部分。通过承载全部或部分上部结构荷载,尤其是在城市地区,它还可用于减少或消除对单独基础的需求。在这项研究中,研究了使用堆积式挡土墙抵抗轴向载荷的潜在好处。在实验室中,在轴向载荷下,对埋在沙子中的堆积式挡土墙进行了一系列平面应变小规模模型试验。评估了穿透深度,桩刚度和砂相对密度对桩系统的极限轴向承载力和变形行为的影响。结果表明,随着穿透深度和土相对密度的增加,桩壁的极限轴向承载力显着增加。当土壤相对密度从50%到88%变化时,安装的桩壁系统的最终轴向桩壁容量增加了72%,穿透深度是自由高度的三倍,并且具有高刚度。桩壁的极限轴向承载力对破坏时的最大水平变形有重大影响,其范围为桩壁总高度的0.14%。数值分析表明,在轴向荷载桩墙后面的活动区域中存在附加应力,使桩墙的极限轴向承载力大大降低了50%,且侧壁变形和最大弯矩明显增加。

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