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Critical Component Analysis in Cascading Failures for Power Grids Using Community Structures in Interaction Graphs

机译:互动图中使用社区结构的电网级联故障的关键分量分析

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Cascading phenomena have been studied extensively in various networks. Particularly, it has been shown that the community structures in networks impact their cascade processes. However, the role of community structures in cascading failures in power grids have not been studied heretofore. In this paper, cascading failures in power grids are studied using interaction graphs. Key evidence has been provided that the community structures in interaction graphs bear critical information about the cascade process and the role of system components in cascading failures in power grids. Furthermore, a centrality measure based on the community structures is proposed to identify critical components of the system, which their protection can help in containing failures within a community and prevent the propagation of failures to large sections of the power grid. Various criticality evaluation techniques, including data driven, epidemic simulation based, power system simulation based, and graph based, have been used to verify the importance of the identified critical components in the cascade process and compare them with those identified by traditional centrality measures. Moreover, it has been shown that the loading level of the power grid impacts the interaction graph and consequently, the community structure and criticality of the components in the cascade process.
机译:在各种网络中广泛研究了级联现象。特别是,已经表明网络中的社区结构会影响其级联过程。然而,迄今为止,迄今为止,尚未研究社区结构在电网级联失败中的作用。本文使用交互图研究了电网中的级联故障。已经提供了关键证据,即交互图中的社区结构承担有关级联过程的关键信息以及系统组件在电网中级联故障中的作用。此外,提出了一种基于社区结构的中心度量来识别系统的关键组件,它们的保护可以有助于在社区内的故障中有助于,防止故障传播到电网的大部分。各种临界评估技术,包括基于数据驱动的基于数据驱动的,流行性模拟,基于电力系统仿真和基于图形的,用于验证级联过程中所识别的关键组件的重要性,并将它们与由传统中心度量标识的人进行比较。此外,已经表明,电网的装载水平会影响相互作用图,因此,级联过程中的组件的群落结构和临界性。

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