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Quantifying the resilience of an urban traffic-electric power coupled system

机译:量化城市交通-电力耦合系统的弹性

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Transportation system resilience has been the subject of several recent studies. To assess the resilience of a transportation network, however, it is essential to model its interactions with and reliance on other lifelines. Prior works might consider these interactions implicitly, perhaps in the form of hazard impact scenarios wherein services from a second lifeline (e.g. power) are precluded due to a hazard event. In this paper, a bi-level, mixed-integer, stochastic program is presented for quantifying the resilience of a coupled traffic-power network under a host of potential natural or anthropogenic hazard-impact scenarios. A two-layer network representation is employed that includes details of both systems. Interdependencies between the urban traffic and electric power distribution systems are captured through linking variables and logical constraints. The modeling approach was applied on a case study developed on a portion of the signalized traffic-power distribution system in southern Minneapolis. The results of the case study show the importance of explicitly considering interdependencies between critical infrastructures in transportation resilience estimation. The results also provide insights on lifeline performance from an alternate power perspective.
机译:运输系统的弹性已成为近期研究的主题。但是,要评估运输网络的弹性,必须对运输网络与其他生命线的相互作用和依赖程度进行建模。先前的工作可能隐含地考虑这些相互作用,可能是以危险影响场景的形式,其中由于危险事件而无法从第二条生命线(例如电源)获得服务。在本文中,提出了一种双层混合整数随机程序,用于量化在许多潜在的自然或人为危害影响情景下的交通运输网络的弹性。采用包括两个系统的细节的两层网络表示。通过链接变量和逻辑约束来捕获城市交通和配电系统之间的相互依赖性。该建模方法应用于在明尼阿波利斯南部的一部分信号交通交通配电系统中开发的案例研究。案例研究的结果表明了在运输弹性评估中明确考虑关键基础设施之间的相互依赖性的重要性。结果还从备用电源角度提供了生命线性能的见解。

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