Effect of Wall Stiffness on Excavation-Induced Horizontal Deformations in Stiff-Hard Clays

Gamze Üçdemi̇r, S. Akbas
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Abstract

Excavation-induced ground movements are affected by the stiffness of the support system as well as the soil properties. Displacement estimations of deep excavations are generally made using the finite element method (FEM). However, the accuracy and reliability of the results obtained from the finite element calculations will change significantly in proportion with the quality of the parameters employed in the program, thus, the use of probabilistic analysis that considers soil variability’s impact has become a popular approach in recent studies. Based on these considerations, this study aims to investigate the influence of wall bending stiffness on excavation-induced lateral displacements for deep excavations in stiff to hard clays, and provide a practical methodology to be used in preliminary design. For this purpose, finite element analyses were carried out using various practically achievable support system stiffness values and soil parameters. Considering the inherent variability of the soil, effective stress friction angle and effective cohesion of the soil were randomly generated by Monte Carlo simulations to be used in the finite element analyses. The performance of the analyses was evaluated using results from 22 case histories from deep excavations in stiff-hard clays. The results indicate that, lateral movement in excavations in stiff-hard clays is minimally affected by the stiffness of the wall. Soil variability was found to have a significant impact on the outcome of Monte Carlo simulations, resulting in a wide range of normalized maximum lateral deformations for a given wall stiffness. A new stiffness factor has been proposed that incorporates the horizontal spacing of the support elements, which is capable of covering a wider range of excavation support system types, thus enhancing the accuracy of the analyses.
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墙体刚度对刚硬黏土开挖水平变形的影响
开挖引起的地面移动受支护系统刚度和土体性质的影响。深基坑的位移估计一般采用有限元法进行。然而,有限元计算结果的准确性和可靠性会随着程序中所采用参数的质量而显著变化,因此,考虑土壤变异性影响的概率分析已成为近年来研究的一种流行方法。基于这些考虑,本研究旨在探讨在硬-硬粘土中深基坑开挖时,墙体弯曲刚度对开挖引起的侧向位移的影响,并为初步设计提供实用的方法。为此,采用各种实际可实现的支撑系统刚度值和土壤参数进行有限元分析。考虑到土体的内在变异性,采用蒙特卡罗模拟随机生成土体的有效应力摩擦角和有效黏聚力,用于有限元分析。分析的性能评估使用22个案例历史的结果,从深开挖的硬-硬粘土。结果表明:在刚硬黏土中,开挖侧移受墙体刚度的影响最小;土壤可变性被发现对蒙特卡罗模拟的结果有重大影响,导致给定壁刚度的归一化最大侧向变形范围很广。提出了一种新的刚度因子,它包含了支撑单元的水平间距,能够覆盖更大范围的开挖支撑系统类型,从而提高了分析的准确性。
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