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首页> 外文期刊>Journal of structural engineering >Influence of Model Parameter Uncertainty on Seismic Transverse Response and Vulnerability of Steel-Concrete Composite Bridges with Dual Load Path
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Influence of Model Parameter Uncertainty on Seismic Transverse Response and Vulnerability of Steel-Concrete Composite Bridges with Dual Load Path

机译:模型参数不确定性对双荷载路径下钢-混凝土组合桥梁地震横向响应和脆弱性的影响

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摘要

This paper uses a fully probabilistic approach to investigate the seismic response of multispan continuous bridges with dissipative piers and a steel-concrete composite (SCC) deck, the motion of which is transversally restrained at the abutments. This bridge typology is characterized by complex dual load path behavior in the transverse direction, with multiple failure modes involving both the deck and the piers. Proper assessment of the seismic vulnerability of these structural systems must rigorously take into account all pertinent sources of uncertainty, including uncertainties in both the seismic input (record-to-record variability) and the properties defining the structural model (model parameters). Model parameter uncertainty affects not only the structural capacity, but also the seismic response of a structural system. However, most of the procedures for seismic vulnerability assessment focus on the variability of the response resulting solely from seismic input uncertainty. These procedures either neglect model parameter uncertainty effects or incorporate these effects only in a simplified way. A computationally expensive but rigorous procedure is introduced in this work to include the effects of model parameter uncertainty on the seismic response and vulnerability assessment of SCC bridges with dual load path. Monte Carlo simulation with Latin hypercube sampling, in conjunction with probabilistic moment-curvature analysis, is used to build probabilistic finite-element models of the bridges under study. Extended incremental dynamic analysis is used to propagate all pertinent sources of uncertainty to the seismic demand. The proposed procedure is then applied to the assessment of three benchmark bridges exhibiting different seismic behavior and dominant failure modes. Comparison of the response variability induced by seismic input uncertainty and the response variability induced by model parameter uncertainty highlights the importance of accounting for the latter when evaluating the safety of the typology of bridges considered in this study.
机译:本文采用完全概率的方法来研究具有耗散墩和钢-混凝土复合材料(SCC)桥面的多跨连续桥梁的地震响应,该桥的运动在基台处被横向约束。这种桥梁类型的特点是在横向上具有复杂的双重荷载路径行为,涉及甲板和桥墩的多种破坏模式。对这些结构系统的地震易损性的正确评估必须严格考虑所有不确定性的来源,包括地震输入(记录到记录的可变性)和定义结构模型的属性(模型参数)的不确定性。模型参数的不确定性不仅影响结构的能力,而且影响结构系统的地震响应。但是,大多数地震易损性评估程序都集中于仅由地震输入不确定性引起的响应变化。这些过程要么忽略模型参数不确定性影响,要么仅以简化方式合并这些影响。在这项工作中引入了计算上昂贵但严格的过程,以包括模型参数不确定性对双荷载路径下SCC桥梁的地震响应和脆弱性评估的影响。结合拉丁超立方体采样的蒙特卡洛模拟,结合概率弯矩曲率分析,可建立所研究桥梁的概率有限元模型。扩展的增量动态分析用于将所有相关不确定性源传播到地震需求。然后将拟议的程序应用于评估表现出不同地震行为和主要破坏模式的三座基准桥梁。由地震输入不确定性引起的响应变异性与由模型参数不确定性引起的响应变异性的比较突出了在评估本研究中考虑的桥梁类型安全性时考虑后者的重要性。

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