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Full-scale effects of passive earth pressure on the lateral resistance of pile caps.

机译:被动土压力对桩帽横向阻力的全面影响。

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摘要

Pile caps are constructed to provide a connection between a structure and multiple single piles. Pile caps are often subjected to vertical and lateral loads, and overturning moments. Resistance to these loadings are provided by pile-soil-pile interaction, base and side friction along the concrete soil interface, the rotational restraint provided by the pile to pile cap connection, and passive earth resistance. The passive earth resistance may be the largest contribution to the lateral resistance of the pile cap foundation. However, due to limited full-scale test results, methods of predicting the passive earth pressure contribution have not been verified, and therefore, the passive earth resistance is often neglected in design.; This document presents the results of seven cyclic lateral load tests performed on a full-scale 4 x 3 pile group driven in a saturated clay, silt and Silty Sand profile. The 324mm O. D. steel pipe piles were attached to a concrete pile cap 5.18 m by 3.05 m in plan and 1.12 m in height. Lateral resistance was provided by pile-soil-pile interaction and passive earth resistance. The tests were performed to investigate the effects of passive earth resistance on the cyclic lateral resistance of pile cap using four different soil types.; The ultimate passive resistance obtained from this study is compared with existing earth pressure theories. The log spiral method provided the best approximation of the measured passive resistance. The displacement required to mobilize the passive force is compared with previous model and full-scale tests and ranged from 3.0% to 5.2% of the cap height. A hyperbolic model provides a strong agreement with the measured passive resistance as a function of pile cap deflection. However, this model overestimates the passive resistance for cyclic loading conditions due to the formation of a gap between the pile cap and backfill soil and reduced passive load versus deflection stiffness. The hyperbolic relationship is combined with a procedure to model the degradation in reloading stiffness for the passive resistance versus deflection as well as the effect of soil gapping.
机译:桩帽构造为在结构和多个单桩之间提供连接。桩帽经常承受垂直和横向载荷以及倾覆力矩。通过桩-土-桩相互作用,沿混凝土土界面的基础和侧面摩擦,桩与桩帽连接的旋转约束以及被动接地阻力,可提供对这些载荷的抵抗力。被动接地电阻可能是对桩帽基础的横向电阻的最大贡献。然而,由于有限的满量程测试结果,预测被动土压力贡献的方法尚未得到验证,因此在设计中常常忽略了被动土的电阻。该文档介绍了在饱和粘土,粉砂和粉质砂剖面中打入的4 x 3满尺寸桩组上进行的七个循环侧向载荷测试的结果。将324mm O.D.钢管桩连接到5.18 m,3.05 m平面和1.12 m高的混凝土桩帽上。横向阻力由桩-土-桩相互作用和被动接地电阻提供。进行了测试,以研究使用四种不同土壤类型的被动接地电阻对桩帽循环侧向电阻的影响。从这项研究中获得的最终无源电阻与现有的土压力理论进行了比较。对数螺旋法提供了所测被动电阻的最佳近似值。动员被动力所需的位移与先前的模型和全面测试进行了比较,范围为瓶盖高度的3.0%至5.2%。双曲线模型与测得的被动阻力作为桩帽挠度的函数非常吻合。但是,由于桩帽和回填土之间形成了间隙,并且被动载荷相对于挠度刚度降低,因此该模型高估了周期性载荷条件下的被动阻力。双曲线关系与一个过程结合起来,以模拟被动阻力与挠度以及土壤空隙效应的重载刚度退化。

著录项

  • 作者

    Cole, Ryan Thomas.;

  • 作者单位

    Brigham Young University.;

  • 授予单位 Brigham Young University.;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 2003
  • 页码 p.2799
  • 总页数 319
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 建筑科学;
  • 关键词

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