首页> 外文期刊>Journal of bridge engineering >Seismic Fragility of Multispan Simply Supported Steel Highway Bridges in New York State. II: Fragility Analysis, Fragility Curves, and Fragility Surfaces
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Seismic Fragility of Multispan Simply Supported Steel Highway Bridges in New York State. II: Fragility Analysis, Fragility Curves, and Fragility Surfaces

机译:纽约州多跨简支钢公路桥梁的地震易损性。 II:易碎性分析,易碎性曲线和易碎性表面

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This paper presents the seismic fragility analysis of a typical multispan simply supported steel bridge in New York State. A detailed description of the bridge model including an analysis of parameter uncertainties was provided in the companion paper. The companion paper also describes a sensitivity analysis that was performed to determine the most critical parameters that control the seismic response of the bridge. A set of statistically independent bridge samples and earthquake samples were specified for the fragility analysis. Two alternative seismic retrofit designs were also presented in the companion paper. The results of the seismic fragility analysis performed in this paper based on the data assembled in the companion paper show that typical multispan simply supported steel bridges in New York State have more than 50% probability of exhibiting slight damage when subjected to earthquakes with peak ground accelerations (PGAs) of 0.51 g. A 50% probability of incurring moderate damage is observed for earthquakes with PGA=0.63 g and 50% probabilities of extensive damage and collapse are obtained for earthquakes with PGAs equal to 1.02 and 1.50 g, respectively. The detailed fragility analysis of the as-built bridge shows that the fixed steel bearings in the bridge are the most vulnerable components. Hence, the two most appropriate seismic retrofit measures consist of (ⅰ) steel bearing replacement by elastomeric bearings and (ⅱ) deck/girder-splicing (continuity) with steel bearing replacement by elastomeric bearings. The seismic fragility analysis shows that although both retrofit strategies reduce the fragility of bridge piers drastically as compared to the as-built condition, the second retrofit strategy (i.e., the combination of steel bearing replacement and superstructure continuity) is overall more effective in reducing the seismic fragility of both piers and bearings. The results of the fragility analysis developed in this paper for both as-built and retrofitted bridges would help state engineers develop effective strategies for seismic retrofit prioritization and network seismic vulnerability assessment.
机译:本文介绍了纽约州典型的多跨简支钢桥的地震易损性分析。随行文件提供了对桥梁模型的详细描述,包括对参数不确定性的分析。随附的论文还介绍了进行敏感性分析以确定确定控制桥梁地震响应的最关键参数的过程。指定了一组统计独立的桥梁样本和地震样本进行脆性分析。随附的论文中还提出了两种替代的地震改造设计。根据随附文件中的数据,本文进行的地震脆性分析结果表明,纽约州典型的多跨简支钢桥在受到峰值加速度的地震时,遭受轻微破坏的可能性超过50% (PGA)为0.51克。对于PGA = 0.63 g的地震,发生中度损坏的可能性为50%,对于PGA等于1.02和1.50 g的地震,发生广泛破坏和坍塌的可能性分别为50%。对已建成桥梁的详细脆性分析表明,桥梁中固定的钢轴承是最易损坏的组件。因此,两个最合适的抗震改造措施包括(ⅰ)用弹性轴承代替钢轴承和(ⅱ)用弹性轴承代替钢轴承的甲板/箱梁拼合(连续性)。地震脆弱性分析表​​明,尽管两种建造策略都比竣工条件大幅度降低了桥墩的脆弱性,但第二种改造策略(即钢轴承更换和上部结构连续性的结合)总体上更有效地降低了桥墩的脆弱性。墩和轴承的地震易碎性。本文针对在建和改建桥梁的脆弱性分析结果将有助于国家工程师制定有效的战略,以进行抗震加固的优先次序和网络抗震性评估。

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