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Effect of verification core hole on the point bearing capacity of drilled shafts.

机译:验证型芯孔对钻孔轴的点承载能力的影响。

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摘要

For many projects involving drilled shafts, cores are required to be taken below the shaft base for visual identification of the underlying material. For example, the Texas Department of Transportation (TxDOT) requires a core length of at least 1.5 m (5 ft) or equal to the shaft diameter, whichever is greater, at the shaft base. Although the verification cores are to be extracted at the shaft base, The Department of Transportation of many states do not provide guidance to eliminate the effect of the verification core on the point bearing capacity.;A recent study shows that the verification core hole is either filled with concrete in dry condition or with sand-gravel mixture in wet pour (Raibagkar, 2008). This finding is crucial because the point bearing capacity of drilled shafts with an empty hole at the base should be significantly lower than that of drilled shafts without verification core. Although the materials that fill in the verification core remove the risk of losing large point bearing capacity, the exposure of the core holes to air-drying may have an adverse effect on the point bearing capacity tipped in clay shales, especially when the basal material is susceptible to weathering. Therefore, the effect of the verification core on the point bearing capacity has been thoroughly investigated with emphasis on changes in the material properties of four clay shales (Del Rio Clay, Eagle Ford Shale, Taylor Marl, and Navarro Shale) in central Texas.;The effect of verification core on the point bearing capacity of drilled shafts was investigated using finite element method (FEM) software, PLAXIS. The results from laboratory tests were converted to input material parameters for Mohr-Coulomb failure criterion, and the thickness of degraded zone around the core was interpreted from full-scale condition degradation tests. The load-displacement curves at the shaft base were created from PLAXIS analyses, and the point bearing capacities were obtained at 5%D and 10%D displacement from load-displacement curves. These capacities were used to calculate reduction factors that relate the point bearing capacity of the reference model (without a verification core) with that of the "core models" (with a verification core). The reduction factors are good indicators to determine if verification core had a positive or negative effect on the point bearing capacity. It was found that the reduction in point bearing capacity of "core models" is typically within 10% capacity of the reference model, and a maximum reduction of 14% was found for the Taylor Marl that was dried for 48 hours.
机译:对于许多涉及钻探井筒的项目,需要在井筒底部下方取芯,以目视识别下层材料。例如,得克萨斯州交通运输部(TxDOT)要求轴心的核心长度至少为1.5 m(5 ft)或等于轴直径,以较大者为准。尽管验证芯将在轴基处提取,但许多州的运输部并未提供消除验证芯对点承载力影响的指导。最近的一项研究表明,验证芯孔要么是在干燥状态下填充混凝土,或在湿润状态下填充砂砾混合料(Raibagkar,2008年)。这一发现至关重要,因为在基座上有一个空孔的钻轴的点承载能力应明显低于没有验证芯的钻轴的点承载能力。尽管填充验证岩心的材料消除了失去大的点承载力的风险,但岩心孔暴露于风干可能会对黏土页岩中的点承载力产生不利影响,特别是当基础材料为易风化。因此,已经彻底研究了验证岩心对点承载力的影响,重点是德克萨斯州中部的四种粘土页岩(Del Rio Clay,Eagle Ford页岩,Taylor Marl和Navarro页岩)的材料特性变化。使用有限元方法(FEM)软件PLAXIS研究了验证岩心对钻孔轴的点承载能力的影响。将实验室测试的结果转换为Mohr-Coulomb破坏准则的输入材料参数,并通过全面条件退化测试来解释岩心周围退化区域的厚度。通过PLAXIS分析创建了轴基处的载荷-位移曲线,并从载荷-位移曲线获得了5%D和10%D位移时的点承载能力。这些容量用于计算将参考模型(没有验证核心)的点承载能力与“核心模型”(带有验证核心)的点承载能力联系起来的折减系数。减少因子是确定验证核心对点承载能力是正面还是负面影响的良好指标。发现“核心模型”的点承载能力降低通常在参考模型的能力的10%以内,而干燥48小时的Taylor Marl的最大降低幅度为14%。

著录项

  • 作者

    Youn, Heejung.;

  • 作者单位

    The University of Texas at Austin.;

  • 授予单位 The University of Texas at Austin.;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 352 p.
  • 总页数 352
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 建筑科学;
  • 关键词

  • 入库时间 2022-08-17 11:39:18

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