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首页> 外文期刊>Journal of bridge engineering >Seismic Fragility of Multispan Simply Supported Steel Highway Bridges in New York State. I: Bridge Modeling,Parametric Analysis, and Retrofit Design
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Seismic Fragility of Multispan Simply Supported Steel Highway Bridges in New York State. I: Bridge Modeling,Parametric Analysis, and Retrofit Design

机译:纽约州多跨简支钢公路桥梁的地震易损性。 I:桥梁建模,参数分析和改造设计

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This paper studies the dynamic seismic behavior of a typical highway bridge in New York State. The topological layout and structural details of this multispan simply supported steel-girder bridge are identified as the most typical of the New York State Department of Transportation bridge inventory database. Three-dimensional finite-element models of the bridge are established considering the nonlinear behavior of critical bridge components. An in-depth parametric study is carried out to evaluate the sensitivity of the bridge's seismic response to variations in its structural parameters. The parametric analysis determined that uncertainties associated with the steel reinforcement's yield strength, the superstructure's weight, the expansion joints' gap size, the friction coefficient of expansion bearings, and the concrete compressive strength should be considered during the fragility analysis of the bridge system. The Latin hypercube sampling (LHS) approach is used to obtain representative samples for the fragility analysis based on the mean values and probability distributions of each critical random variable. The LHS is thus used to create a set of nominally identical but statistically different bridge samples for performing the fragility analysis. The individual bridges from this statistically representative set are matched with earthquake samples of various intensities for the nonlinear seismic demand analysis. The seismic capacity of critical bridge components are estimated for each bridge sample from published experimental data. Through extensive numerical simulations, the sensitivity analysis identified the most vulnerable bridge components. Two seismic retrofit strategies for reducing the seismic risk of multispan simply supported steel bridges are studied: (ⅰ) steel bearing replacement by elastomeric bearings and (ⅱ) deck/girder-splicing (continuity) with steel bearing replacement by elastomeric bearings. The analysis verified that retrofit option ii is the most effective. The finite-element model of the bridge samples, along with the assembled data on parameter uncertainties and member capacities, as well as a simulated set of ground motion records are suitable for use during the development of fragility curves for bridges with and without retrofit. Detailed description of the fragility analysis is presented in the companion paper.
机译:本文研究了纽约州典型公路桥梁的动态地震行为。该跨跨简单支撑的钢梁桥的拓扑布局和结构细节被确定为纽约州交通运输部桥梁清单数据库中最典型的。考虑到关键桥梁构件的非线性行为,建立了桥梁的三维有限元模型。进行了深入的参数研究,以评估桥梁地震响应对其结构参数变化的敏感性。参数分析确定,在桥梁系统的脆性分析过程中,应考虑与钢筋的屈服强度,上部结构的重量,伸缩缝的间隙尺寸,膨胀支座的摩擦系数以及混凝土抗压强度有关的不确定性。拉丁超立方采样(LHS)方法用于基于每个关键随机变量的平均值和概率分布来获取代表性样本进行脆弱性分析。因此,LHS用于创建一组名义上相同但统计上不同的桥梁样本,以进行脆性分析。将来自该统计上具有代表性的集合中的各个桥梁与各种强度的地震样本进行匹配,以进行非线性地震需求分析。根据已发布的实验数据,估算每个桥梁样品的关键桥梁构件的抗震能力。通过广泛的数值模拟,敏感性分析确定了最脆弱的桥梁构件。研究了两种减少多跨简支钢桥地震风险的抗震改造策略:(ⅰ)用弹性轴承代替钢轴承和(ⅱ)用弹性轴承代替钢桥面/梁拼合(连续性)。分析证实,改造方案ii是最有效的。桥梁样本的有限元模型,以及有关参数不确定性和构件承载力的组合数据,以及一组模拟的地面运动记录,均适用于开发带或不带改造的桥梁的脆性曲线。随附论文中提供了对脆弱性分析的详细描述。

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