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Seismic analysis of long span bridges including the effects of spatial variation of seismic waves on bridges.

机译:大跨度桥梁的地震分析,包括地震波的空间变化对桥梁的影响。

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摘要

Four main factors may contribute to the spatial variation of earthquake excitations, i.e. coherency effect, attenuation effect, site effect and propagation effect. Seismic response of long span bridges including the effects of spatial variation of seismic waves is studied in this thesis. The research work contains two parts: shake table model test and numerical analysis.; A dual shake table system is developed for the purpose of this thesis research. The general concept of scaling law (similitude requirements) is stated. To estimate the required capacity of the proposed dual shake table, reduced scale models of different types of bridges are fictitiously designed based on the similitude requirements. After the construction, the verification test of the dual shake table system is carried out.; A reduced scale model of a long span cable-stayed bridge is designed for shake table tests. The prototype is the Kap Shui Mun Bridge in Hong Kong. The derivation of scale factor table for model design and the model installation procedure are introduced. The earthquake records from the SMART-1 and the PEER Strong Motion Database are used in this test. The numerical processing scheme suggested by the USGS is adopted to process the raw records. The test cases include modal test, identical-input excitation test and varying-input excitation test.; The numerical analysis of the long span cable-stayed bridge subjected to non-uniform excitation is performed. A refined 3-D finite element model of the Kap Shui Mun Bridge is developed. The nonlinear time-history analyses of the FEM model subjected to selected non-uniform excitation cases are performed. The numerical analysis results are compared with the ones from shake table testing, in order to verify the numerical method as well as shed some light on the effects of spatially varying earthquake ground motion on the seismic behavior of long span bridges.
机译:四个主要因素可能是地震激发的空间变化,即相干效应,衰减效应,场地效应和传播效应。本文研究了大跨度桥梁的地震反应,包括地震波的空间变化影响。研究工作包括两部分:振动台模型试验和数值分析。为此,本文开发了一种双振动台系统。说明了定标律的一般概念(相似要求)。为了估算所提出的双振动台的所需容量,根据相似性要求,虚拟设计了不同类型桥梁的缩小比例模型。施工完成后,对双振动台系统进行了验证测试。大跨度斜拉桥的缩比例模型设计用于振动台测试。原型是香港的汲水门大桥。介绍了用于模型设计的比例因子表的推导和模型的安装过程。该测试使用了SMART-1和PEER强运动数据库的地震记录。采用USGS建议的数值处理方案来处理原始记录。测试案例包括模态测试,同输入激励测试和变输入激励测试。对大跨度斜拉桥进行了非均匀激励的数值分析。开发了汲水门大桥的精制3D有限元模型。对选定的非均匀激励情况下的有限元模型进行了非线性时程分析。将数值分析结果与振动台试验的数值分析结果进行了比较,以验证数值方法并阐明空间变化的地震动对大跨度桥梁地震行为的影响。

著录项

  • 作者

    Yang, Chengyu.;

  • 作者单位

    Hong Kong University of Science and Technology (Hong Kong).;

  • 授予单位 Hong Kong University of Science and Technology (Hong Kong).;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 263 p.
  • 总页数 263
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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