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The seismic geotechnical modeling, performance, and analysis of pile-supported wharves.

机译:桩基支撑码头的地震岩土建模,性能和分析。

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摘要

This dissertation presents the results of a research effort conducted to better understand the seismic performance and analysis of pile-supported wharves. Given the limited number of well-documented field case histories, the seismic performance of pile-supported wharves has been poorly quantified, and the analysis methods commonly employed in engineering practice have generally not been validated. Field case histories documenting the seismic performance of pile-supported wharves commonly contain only limited information, such as approximations of wharf and embankment deformations and peak ground surface accelerations. In order to supplement the field data, five centrifuge models were dynamically tested, with each model containing close to 100 instruments monitoring pile bending moments, excess pore pressures, displacements, and accelerations.; The combined field and model database was used to develop seismic performance relationships between permanent lateral deformations, maximum and residual bending moments and peak ground surface displacements. Key issues such as the seismic performance of batter piles, the development of large moments at depth, and the need to account for permanent lateral deformations for high levels of shaking, even for very stable geometries, are discussed.; The field data and model studies were also used to validate two geotechnical seismic performance analysis methods: (1) the limit-equilibrium based rigid, sliding block (Newmark) method, and (2) an advanced finite-difference effective stress based numerical model (FLAC). Favorable predictions were generally obtained for both methods, yet there was a large variability in the results predicted using the rigid, sliding block method. The numerical model predicted the permanent deformations, pore pressure generation, and accelerations fairly well, however, pile bending moments were poorly predicted. The results of this research clearly highlighted the need for analysis validation studies, and note the uncertainty and variability inherent in the seismic performance of complex structures. The lack of adequate validation may lead to an over-confidence and false sense of security in the results of the seismic analysis methods.; This dissertation specifically addresses pile-supported wharves, yet the results presented herein are applicable to other pile-supported structures located near, or on, slopes adjacent to the waterfront, such as: bridge abutments, railroad trestles, and pile-supported buildings near open slopes. Performance and analysis issues common to all of these structures are addressed, such as: liquefiable soils, lateral pile response in horizontal and sloping soils, the lateral behavior of piles in rock fill, and global slope stability, as well as the general observed seismic behavior.
机译:本文介绍了为更好地了解抗震性能和桩承码头分析而进行的研究成果。鉴于有大量有据可查的现场案例历史记录,对桩支撑码头的地震性能进行了量化评估,并且工程实践中通常采用的分析方法尚未得到验证。记录桩支撑码头抗震性能的现场案例历史通常仅包含有限的信息,例如码头和路堤变形的近似值以及地表峰值加速度。为了补充现场数据,动态测试了五个离心机模型,每个模型包含近100个监测桩弯矩,过大孔隙压力,位移和加速度的仪器。组合的场和模型数据库用于开发永久性横向变形,最大和残余弯矩与峰值地面位移之间的地震性能关系。讨论了一些关键问题,例如,面糊桩的抗震性能,深处大弯矩的发展以及需要考虑永久性横向变形以实现高水平振动(即使对于非常稳定的几何形状)的需求。现场数据和模型研究还用于验证两种岩土抗震性能分析方法:(1)基于极限平衡的刚性滑动块(Newmark)方法,以及(2)基于有限差分有效应力的高级数值模型( FLAC)。对于这两种方法,通常都获得了良好的预测,但是使用刚性,滑动块法预测的结果却存在很大差异。数值模型可以很好地预测永久变形,孔隙压力的产生和加速度,但是,桩的弯矩却很难预测。这项研究的结果明确强调了分析验证研究的必要性,并指出了复杂结构抗震性能固有的不确定性和可变性。缺乏适当的验证可能会导致地震分析方法的结果过于自信和错误的安全感。本论文专门针对桩支撑码头,但本文介绍的结果适用于靠近或邻近水边的斜坡上或附近的其他桩支撑结构,例如:桥台,铁路栈桥和附近开放的桩支撑建筑物连续下坡。解决了所有这些结构共有的性能和分析问题,例如:可液化的土壤,水平和倾斜土壤中的侧向桩反应,堆石中桩的侧向行为以及整体边坡稳定性以及观察到的一般地震行为。

著录项

  • 作者

    McCullough, Nason Jeremy.;

  • 作者单位

    Oregon State University.;

  • 授予单位 Oregon State University.;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 204 p.
  • 总页数 204
  • 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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