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Analysis of shaft resistance of jacked and drilled-displacement piles.

机译:顶进和钻孔位移桩的竖井阻力分析。

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摘要

Significant developments in piling technology over the last few decades have yielded a variety of new pile types. Jacked and Drilled-Displacement (DD) piles, for example, are two emerging pile types that are becoming increasingly popular in geotechnical engineering practice. Jacking of steel or precast concrete piles into the ground is an effective and environmentally friendly pile installation technique (produces minimal noise, vibration and air pollution). DD piles, which are installed using a drilling tool consisting of a partial-flight auger and a displacement body, are a new generation of rotary displacement piles. Different types of DD piles are available in practice; each type is classified according to the design of the drilling tool and associated installation method.;Installation of a pile often involves complex loading modes that cause substantial changes in the state of the soil surrounding the pile. As a result of these changes, the response of piles to structural loads varies greatly depending on the installation method used. For reliable estimation of pile capacity, design methods should account for the effect of the installation technique. Empirical or semi-empirical equations, based on results of load tests performed on driven piles (i.e., piles installed using hammers or vibrators), are often used to calculate the capacity of jacked piles. However, the mechanics involved in pile driving (a dynamic process) differ from those prevalent in pile jacking (a quasi-static process). Similarly, the currently available design methods for DD piles rely exclusively on empirical relations developed based on the results of load tests performed on particular types of DD piles installed at specific sites.;No theoretical research has been performed to assess the effect of the installation method on the shaft resistance of jacked and DD piles. In order to develop design equations for the calculation of the shaft resistance of these piles, we performed FE analyses using advanced constitutive models for sand and clay. The plasticity-based constitutive models capture key features of soil behavior during pile installation and loading. The proposed design equations involve installation parameters (e.g., number of jacking strokes for jacked piles, and rate of drilling for DD piles), in situ soil state and properties (e.g., relative density and confinement for sand and undrained shear strength for clay), and some other key soil characteristics (e.g., initial fabric anisotropy for sand, and residual shear strength for clay). Additionally, setup factors are proposed that can be used to estimate the gain in shaft resistance as a function of time after installation of jacked piles in clay. Good agreement was obtained between the shaft resistance values calculated with the proposed equations and the data available in the literature.
机译:在过去的几十年中,桩技术的重大发展产生了各种新型桩。例如,千斤顶和钻探位移(DD)桩是两种新兴的桩类型,它们在岩土工程实践中越来越受欢迎。将钢或预制混凝土桩顶入地下是一种有效且环保的桩安装技术(产生的噪音,振动和空气污染最小)。 DD桩是使用由部分飞行螺旋钻和位移体组成的钻探工具安装的,是新一代的旋转位移桩。实际上,可以使用不同类型的DD桩。每种类型均根据钻具的设计和相关的安装方法进行分类。桩的安装通常涉及复杂的加载模式,这些加载模式会导致桩周围土壤的状态发生实质性变化。这些变化的结果是,桩对结构载荷的响应会根据所使用的安装方法而变化很大。为了可靠地估计桩容量,设计方法应考虑安装技术的影响。基于对打入桩(即使用锤子或振动器安装的桩)进行的载荷测试结果的经验或半经验方程式通常用于计算顶桩的承载力。但是,打桩(动态过程)所涉及的力学与顶桩(准静态过程)中普遍存在的力学不同。同样,目前可用的DD桩设计方法完全依赖于根据对安装在特定地点的特定类型DD桩进行的载荷测试结果得出的经验关系。;尚未进行理论研究来评估安装方法的效果顶桩和DD桩的轴阻力。为了开发用于计算这些桩的竖井阻力的设计方程式,我们使用了高级的砂土本构模型进行了有限元分析。基于可塑性的本构模型捕获了桩安装和加载过程中土壤行为的关键特征。拟议的设计方程式涉及安装参数(例如,顶桩的顶升行程数和DD桩的钻孔速率),原位土壤状态和特性(例如,砂的相对密度和密闭度以及粘土的不排水抗剪强度),以及其他一些关键的土壤特性(例如,沙土的初始织物各向异性和黏土的残余剪切强度)。另外,提出了设置因素,可用来估计将顶桩安装在粘土中后随时间变化的轴阻力增益。用所提出的方程式计算出的轴电阻值与文献中可获得的数据之间取得了很好的一致性。

著录项

  • 作者

    Basu, Prasenjit.;

  • 作者单位

    Purdue University.;

  • 授予单位 Purdue University.;
  • 学科 Civil engineering.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 277 p.
  • 总页数 277
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:38:05

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