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Assessment of static pile design methods and non-linear analysis of pile driving

机译:静力桩设计方法评估与打桩非线性分析

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摘要

Pile foundations are used to transfer loads from the superstructure to deep layers in a soil deposit. Depending on the installation method, piles can either preserve the original soil density and stress state to a certain degree (e.g., bored piles), or induce changes that cannot be easily quantified, leading to greater challenges in obtaining accurate estimates of pile resistance (e.g., driven or jacked piles). Scientific advances in pile analysis have been made in recent decades but their implementation in the estimation of axial capacity has been slow. The modeling of the pile driving process has been traditionally carried out using the one-dimensional wave equation analysis based on empirical factors to control the static and dynamic resistances developed in the soil. Considerable effort has been spent in the past decades to develop models that eliminate the use of these empirical constants. The present research focuses on extending the traditional wave equation analysis to incorporate the nonlinear soil behavior during driving.The analysis incorporates all damping effects induced in the soil and considers the impact of shear modulus degradation on pile drivability. The pile/soil interaction system is described by a mass/spring/dashpot system where the properties of each component are derived from rigorous analytical solutions or finite element analysis. The outcome of this research is an algorithm that can be used to predict pile displacement and driving stresses. Field experiment results are used to validate the numerical simulation.The major contributions of this work are the proper modeling of the physical problem in pile driving by accounting for the non-linear soil behavior and separately modeling all damping effects. The new rheological models show, as expected, that sustained loads remain in the pile after a blow. Pile displacement is accurately predicted when compared to field test results. The resistance curves along the pile shaft and base properly reflect the nonlinear soil behavior. Given the complexity of the pile/soil interaction problem in pile driving and the limitations of the one-dimensional wave equation analysis, the present research should be viewed as an effort towards finding a more general solution based on a continuum analysis.
机译:桩基用于将荷载从上部结构传递到土壤沉积物中的深层。根据安装方法的不同,桩要么可以将原始的土壤密度和应力状态保持到一定程度(例如,钻孔的桩),要么会导致无法轻易量化的变化,从而导致在获得准确的桩阻力估计值方面面临更大的挑战(例如, ,打桩或顶桩)。近几十年来,桩分析技术取得了科学进展,但在轴向承载力估算中的应用进展缓慢。传统上,打桩过程的建模是基于经验因素使用一维波动方程分析进行的,以控制土壤中产生的静态和动态阻力。在过去的几十年中,已经花费了相当大的精力来开发消除这些经验常数的模型。本研究的重点是扩展传统的波动方程分析,以纳入驱动过程中的非线性土壤行为。该分析考虑了土壤中引起的所有阻尼效应,并考虑了剪切模量降低对桩身驱动性的影响。桩/土相互作用系统由质量/弹簧/阻尼系统描述,其中每个组件的属性均来自严格的分析解决方案或有限元分析。这项研究的结果是一种可用于预测桩位移和驱动应力的算法。现场实验结果被用于验证数值模拟。这项工作的主要贡献是通过考虑非线性土的行为并分别对所有阻尼效应进行建模,对打桩中的物理问题进行了正确的建模。新的流变模型表明,如预期的那样,持续的载荷在击打后仍保留在桩中。与现场测试结果相比,可以准确预测桩的位移。沿桩身和桩基的阻力曲线正确地反映了非线性土的特性。考虑到打桩过程中桩/土相互作用问题的复杂性以及一维波动方程分析的局限性,本研究应被视为一种基于连续分析的更通用解决方案。

著录项

  • 作者

    Abou-Jaoude Grace G.;

  • 作者单位
  • 年度 2006
  • 总页数
  • 原文格式 PDF
  • 正文语种 en
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