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Investigation on the Impact of Seasonally Frozen Soil on Seismic Response of Bridge Columns

机译:季节冻土对桥柱地震响应影响的研究

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摘要

This paper presents the development of numerical models that investigated the seismic response of a simple two span prototype bridge system during warm and frozen temperatures. Models from both temperature conditions were subjected to a range of seismic intensities to examine the effect of seasonal freezing on the response of the system. Stiffness characteristics were defined using cyclic models of a bridge pier that were previously developed and validated using results from an experimental program on identical full-scale column-foundation units, which were tested during the summer and winter months. Dynamic characteristics of the seismic models were defined using approaches found in the literature. Frozen conditions increased the maximum bending moment and shear force demands for all seismic intensities, with nonlinearity in the column/foundation reducing the difference between the peak responses at higher intensities. At the depth of maximum foundation shear for the frozen model, demand was three times higher than the unfrozen for the 500-year return period and twice during the 2,500-year event. This is significant as one will assume shear is not critical at this location if the effects of frozen conditions are ignored. Apart from the smallest intensity event, increased peak lateral displacements were developed by the warm model down the length of the column and foundation. However, the displacement demand to capacity ratio was higher at the column top for the frozen model, exceeding the capacity during the 2,500-year return period event.
机译:本文介绍了数值模型的开发,该模型研究了一个简单的两跨原型桥梁系统在温暖和寒冷温度下的地震响应。两种温度条件下的模型都经受了一系列地震烈度的检验,以检验季节性冻结对系统响应的影响。刚度特性是使用桥梁墩台的循环模型定义的,该模型先前在相同的全尺寸立柱基础单元上通过实验程序的结果进行了开发和验证,并在夏季和冬季进行了测试。地震模型的动态特性是使用文献中发现的方法定义的。冻结条件增加了所有地震烈度的最大弯矩和剪力要求,而立柱/地基的非线性减小了较高烈度时峰响应之间的差异。在冻结模型的最大地基剪切深度处,需求是500年回报期内未冻结的三倍,而在2500年事件中则是两倍。这是很重要的,因为如果忽略冻结条件的影响,人们会认为在该位置剪切不是关键。除了最小的强度事件外,通过热模型沿柱和基础的长度还产生了增加的峰值横向位移。但是,冻结模型的柱顶排量需求与容量之比更高,超过了2500年回归期事件中的容量。

著录项

  • 来源
    《Journal of bridge engineering》 |2010年第5期|P.473-481|共9页
  • 作者单位

    Dept. of Civil and Environmental Engineering, The Univ. of Auckland, Private Bag 92019, Auckland Mail Centre, Auckland 1142, New Zealand;

    .rnDept. of Civil, Construction and Environmental Engineering, Iowa State Univ., 406 Town Engineering,Ames, IA 50011-3232;

    rnDept. of Civil and Environmental Engineering, The Univ.of Auckland, Private Bag 92019, Auckland Mail Centre, Auckland 1142,New Zealand;

    rnDept. of Civil and Natural Resources Engineering, Univ.of Canterbury, Private Bag 4800, Christchurch, New Zealand;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    seismic analysis; frozen soil; soil-structure interaction; analytical model; bridge column;

    机译:地震分析;冻土;土壤-结构相互作用;分析模型桥柱;

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