不相关多重危险综合作用下公路桥梁失效概率估计

Ameh Fioklou , Alice Alipour
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引用次数: 2

摘要

美国大多数人口密集的地区容易受到多种自然灾害的影响。在这些地区,多种灾害下结构的设计和施工对于实现适当的结构性能和基础设施的恢复能力至关重要。结构体系的多危险可靠度分析是评价系统在多个随机荷载作用下的响应,其中一些随机荷载可能同时发生,或者一个随机荷载的作用可能在下一个随机荷载发生之前削弱结构体系。本文研究了冲刷和地震这两种不相关的极端事件对钢筋混凝土公路桥梁性能的综合影响。为了支持未来更好地理解多灾害荷载情景对桥梁的影响并制定缓解措施,本文评估了由于洪水事件频率增加而遭受侵蚀影响的钢筋混凝土公路桥梁的地震脆弱性。分析脆性方法采用具有不同冲刷程度的桥梁的三维非线性有限元模型。由于桥梁是一个构件系统,因此采用构件级易损曲线来跟踪给定地震动强度下构件的响应。建立了考虑关键构件易损性的系统易损性曲线,以评估桥梁的损伤概率。结果表明,在多灾害情景下,控制桥梁体系易损性的成分随结构承受的冲刷程度而变化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Probability of failure estimation for highway bridges under combined effects of uncorrelated multiple hazards

Majority of the highly populated regions of the United States are susceptible to multiple natural hazards. In such regions, the design and construction of structures under multiple hazards are critical to achieve the appropriate structural performance and infrastructure resilience. Multi-hazard reliability analysis of structural systems evaluates the system response under multiple random loads, some of which may occur simultaneously, or the effect of one may weaken the structural system before the occurrence of the next event. This paper studies the combined effects of scouring and earthquakes, as two uncorrelated extreme events, on the performance of reinforced concrete highway bridges. In a continuous effort to support future improvement in understanding the impact of multi-hazard loading scenario on bridges and to develop mitigation actions, this paper assesses the seismic vulnerability of a reinforced concrete highway bridge experiencing the effect of erosion due to the increase in frequency of flood events. The analytical fragility approach uses a three-dimensional nonlinear finite element model of the bridge cases with various levels of scouring. Because a bridge is system of components, a component level fragility curve is used to track the response of the components for a given ground motion intensity. The system fragility curves are developed to consider the vulnerability of critical components to assess the probability of bridge damage. The results indicate that under multi-hazard scenarios, the component governing the fragility of the bridge system varies depending on the level of scour sustained by the structure.

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