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首页> 外文期刊>International journal of geomechanics >Experimental and Theoretical Investigation of Short- and Long-Heel Cases of Cantilever Retaining Walls in Active State
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Experimental and Theoretical Investigation of Short- and Long-Heel Cases of Cantilever Retaining Walls in Active State

机译:活跃状态下悬臂挡土墙短路和长脚跟壳的实验与理论研究

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摘要

Failure surfaces are very effective in active lateral earth thrusts acting on cantilever retaining walls. The intersection of failure surface and cantilever retaining wall should be taken into account for determination of active earth thrust. Calculations of lateral earth thrusts vary for two different cases, short heel or long heel, based on the intersection of cantilever wall and failure surface. However, the common methods are devoted to a particular case (long heel or short heel). This study intended to suggest a new lateral earth thrust method that is applicable to cantilever walls with a short heel or long heel using the limit-equilibrium approach. For this purpose, an earth thrust-maximization algorithm was prepared and coded by using Matlab Environment to determine active earth thrust coefficients and failure surface inclination angles occurring behind a cantilever wall in an active case. Also, the failure surfaces occurring behind model cantilever walls and the failure cases were examined experimentally by using particle image velocimetry (PIV) analysis. Consequently, long-heel and short-heel cases and the effective parameters on the cases were investigated analytically and experimentally. (C) 2019 American Society of Civil Engineers.
机译:故障表面在用于悬臂挡土墙上的主动横向地下的侧面非常有效。应考虑失效表面和悬臂挡土墙的交叉,以确定有源地下推力。基于悬臂墙和故障表面的交叉点,两种不同的案例,短脚跟或长脚跟的侧壁推力的计算变化。然而,常用方法专门用于特定案例(长脚或短脚跟)。这项研究旨在建议一种新的横向地震推力方法,适用于使用极限平衡方法的短鞋跟或长鞋跟的悬臂壁。为此目的,通过使用MATLAB环境来编制和编码地球推力最大化算法,以确定在活动情况下在悬臂壁上发生的主动接地推力系数和故障表面倾斜角度。此外,通过使用粒子图像速度(PIV)分析实验检查模型悬臂壁和故障情况后面发生的故障表面。因此,在分析和实验上调查了长脚跟和短脚跟病例和有效参数。 (c)2019年美国土木工程学会。

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