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New design methods for sheet pile cellular structures.

机译:板桩蜂窝结构的新设计方法。

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摘要

Traditional methods commonly used to design sheet pile cellular cofferdams and bulkheads were developed in the 1940's and 1950's and are based on semi-empirical approaches. The traditional methods are limited because they do not explicitly incorporate soil-structure interactions, they do not predict deflections, and they are based on assumed failure plane orientations. In recent years, two-dimensional and three-dimensional finite element models have been developed to study the behavior of cells constructed at two project sites. Additionally, cells constructed at 11 project sites have been instrumented to quantify movements and sheet pile tensions.;This investigation focused on combining the instrumentation measurements with finite element parametric studies in an effort to improve the existing design procedures. Sheet pile tensions were investigated by performing axisymmetric analyses of cell filling and developing correlations between computed tensions and cell geometry, foundation conditions, and sheet pile characteristics. To study the response of cells to lateral loading, a new crosswall model that simulates sheet pile slippage was implemented for plane-strain analyses. Cell deflection trends were investigated by performing analyses of lateral loading and developing correlations between computed deflections and cell geometry, cell fill characteristics, applied load level, and foundation conditions. The analyses were verified by measurements collected for the instrumented cells. Internal shearing mechanisms were investigated by performing plane-strain analyses of cells loaded by extreme lateral pressures and observing element failure plane orientations.;The results of the study indicate that main cell sheet pile tensions depend on the amount of arching within the cells, foundation conditions, the degree of available interlock slack, and the method used for cell filling. Common wall sheet pile tensions are furthermore influenced by arc cell fill lateral pressures and by arc cell sheet pile tensions transferred through the wye pile. During lateral loading, cell deflections increase with increasing values of a newly defined parameter termed "characteristic head". During extreme lateral loading, vertical shear planes were computed to develop within the cell fill along the dredgeline and along the inboard sheet pile wall.
机译:在1940年代和1950年代开发了通常用于设计板桩式蜂窝式围堰和舱壁的传统方法,这些方法基于半经验方法。传统方法是有限的,因为它们没有明确地包含土与结构的相互作用,不能预测挠度,并且基于假定的破坏面方向。近年来,已经开发了二维和三维有限元模型来研究在两个项目现场构建的单元的行为。此外,已经对11个项目工地上建造的单元进行了仪器量化,以量化运动和板桩张力。该研究的重点是将仪器测量结果与有限元参数研究相结合,以改善现有的设计程序。通过对单元格填充进行轴对称分析并开发计算的拉力与单元格几何形状,基础条件和板桩特性之间的相关性,研究了板桩张力。为了研究单元格对侧向载荷的响应,采用了一种新的跨壁模型来模拟板桩滑移,以进行平面应变分析。通过进行侧向载荷分析并开发计算的挠度与单元几何形状,单元填充特性,施加的载荷水平和基础条件之间的相关性,研究了单元的挠曲趋势。通过为仪器化细胞收集的测量值来验证分析结果。通过对承受极端侧向压力的单元进行平面应变分析并观察单元破坏面的方向,研究了内部剪切机制。研究结果表明,主单元板桩的张力取决于单元内拱形的数量,基础条件,可用互锁松弛程度以及用于单元填充的方法。普通的壁板桩的张力还受到弧室填充侧向压力和通过Y形桩传递的弧室板桩张力的影响。在横向载荷期间,单元挠度随着新定义的称为“特征头”的参数值的增加而增加。在极端的横向荷载作用下,计算了垂直的剪切平面,使其在挖泥机内沿疏edge线和沿板桩内侧向内扩展。

著录项

  • 作者

    Wissmann, Kord Joachim.;

  • 作者单位

    Virginia Polytechnic Institute and State University.;

  • 授予单位 Virginia Polytechnic Institute and State University.;
  • 学科 Civil engineering.;Geotechnology.;Ocean engineering.
  • 学位 Ph.D.
  • 年度 1995
  • 页码 550 p.
  • 总页数 550
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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