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首页> 外文期刊>Power Systems, IEEE Transactions on >Cascading Power Outages Propagate Locally in an Influence Graph That is Not the Actual Grid Topology
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Cascading Power Outages Propagate Locally in an Influence Graph That is Not the Actual Grid Topology

机译:级联停电在不是实际电网拓扑的影响图中局部传播

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In a cascading power transmission outage, component outages propagate nonlocally; after one component outages, the next failure may be very distant, both topologically and geographically. As a result, simple models of topological contagion do not accurately represent the propagation of cascades in power systems. However, cascading power outages do follow patterns, some of which are useful in understanding and reducing blackout risk. This paper describes a method by which the data from many cascading failure simulations can be transformed into a graph-based model of influences that provides actionable information about the many ways that cascades propagate in a particular system. The resulting “influence graph” model is Markovian, in that component outage probabilities depend only on the outages that occurred in the prior generation. To validate the model, we compare the distribution of cascade sizes resulting from n−2 contingencies in a 2896 branch test case to cascade sizes in the influence graph. The two distributions are remarkably similar. In addition, we derive an equation with which one can quickly identify modifications to the proposed system that will substantially reduce cascade propagation. With this equation, one can quickly identify critical components that can be improved to substantially reduce the risk of large cascading blackouts.
机译:在级联输电中断中,组件中断会非本地传播;在一个组件中断之后,下一个故障在拓扑和地理上可能都非常遥远。结果,简单的拓扑传染模型不能准确地表示电力系统中级联的传播。但是,级联停电确实遵循模式,其中一些模式有助于理解和减少停电风险。本文介绍了一种方法,通过该方法,可以将来自许多级联故障模拟的数据转换为基于图形的影响模型,该模型提供有关级联在特定系统中传播的多种方式的可操作信息。最终的“影响图”模型是Markovian模型,因为组件的中断概率仅取决于上一代中发生的中断。为了验证模型,我们将2896分支测试用例中由n-2突发事件引起的级联大小分布与影响图中的级联大小进行了比较。两种分布非常相似。此外,我们导出了一个方程,利用该方程可以快速识别对所提议系统的修改,这将大大减少级联传播。利用这一方程式,可以快速确定可以改善的关键组件,从而大幅降低大面积连锁停电的风险。

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  • 来源
    《Power Systems, IEEE Transactions on》 |2017年第2期|958-967|共10页
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  • 作者单位
  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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