Effect of Steel Jacketing Thickness on Seismic Performance of Bridge

Rajan Suwal, Binaya Jamarkattel
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Abstract

The bridges of Nepal are getting older and old bridges were designed without considering the seismic forces, hence have low seismic capacity. The capacity of these bridges needs to be enhanced and should perform well during seismic events. The jacketing technique can be used to upgrade the bridge's structural performance. This research paper mostly focuses on the seismic performance enhancement after the application of steel jacketing on the bridge pier. The variable that has been varied is the thickness of the steel jacket. The capacity of a bridge pier is evaluated using displacement-controlled nonlinear static analysis (Pushover). The time history load is applied to the structure to determine the seismic demand of the bridge. The quantification of the enhancement of the bridge structure after the application of Steel Jacketing is evaluated by plotting the fragility curve. The modeling of the bridge is done in CSI Bridge V20.2.0. The different damage state is defined using the strain values obtained from the pushover analysis. For different damage states, the capacity and demand value are used to obtain the probability of exceeding at different PGA levels. The fragility curve is developed using the First Order Second Order Method (FOSM). From the study, it is found, that the vulnerability of the bridge after the use of jacketing for extensive damage state, the probability of failure reduced from 28.22% to 14.24% at 1.0g PGA. Similarly, the vulnerability of the bridge after the use of jacketing for collapse damage state, the probability of failure decreased from 16.93% to 7.22% at 1.0 PGA
钢护套厚度对桥梁抗震性能的影响
尼泊尔的桥梁越来越老旧,老桥在设计时没有考虑地震力,因此抗震能力较低。这些桥梁的抗震能力需要提高,在地震发生时应表现良好。夹层技术可用于提升桥梁的结构性能。本研究论文主要关注在桥墩上应用钢护筒后的抗震性能提升。变化的变量是钢套的厚度。桥墩的承载能力是通过位移控制非线性静态分析(Pushover)进行评估的。对结构施加时间历史荷载以确定桥梁的抗震要求。通过绘制脆性曲线,对应用钢护筒后桥梁结构的增强效果进行量化评估。桥梁建模在 CSI Bridge V20.2.0 中完成。不同的破坏状态是通过推移分析获得的应变值来定义的。对于不同的损坏状态,使用承载力和需求值来获得不同 PGA 水平下的超限概率。脆性曲线采用一阶二阶法(FOSM)绘制。研究发现,在大面积损坏状态下使用夹层后,桥梁的脆性在 1.0g PGA 时从 28.22% 降至 14.24%。同样,在 1.0g PGA 时,桥梁在坍塌损坏状态下使用护层后的破坏概率从 16.93% 降至 7.22%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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