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Electrical and topological drivers of the cascading failure dynamics in power transmission networks

机译:输电网络中级联故障动态的电气和拓扑驱动程序

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To systematically study key factors affecting cascading failures in power systems, this paper advances algorithms for generating synthetic power grids with realistic topological and electrical features, while computationally quantifying how such factors influence system performance probabilistically. Key parameters affecting line outages and power losses during cascading failures include line redundancy, load/generator layout and re-dispatch strategies. Our study combines a synthetic power grid generator with a direct current (DC) cascading failure simulator. The impact of each of the factors and their interactions unravel useful insights for interventions aimed at reducing the probabilities of large blackouts on existing and future power systems. Moreover, conclusions drawn from a spectrum of different power grid topologies and electrical configurations offer more generality than typically attained when studying specific test cases. Line redundancy and distributed generation appear as the most efficacious parameters for reducing the probabilities of large power losses and multiple line overloads, although the effect decays with network density. Also, re-dispatch strategies are critical on the distribution of the cascading failure size in terms of line failures. These and related results provide the basis for probabilistic analyses and future design of evolving power transmission systems under uncertainty. (C) 2018 Published by Elsevier Ltd.
机译:为了系统地研究影响电力系统级联故障的关键因素,本文提出了生成具有现实拓扑和电气特征的合成电网的算法,同时通过计算量化了这些因素如何概率性地影响系统性能。在级联故障期间,影响线路中断和功率损耗的关键参数包括线路冗余,负载/发电机布局和重新调度策略。我们的研究将合成电网发电机与直流(DC)级联故障模拟器结合在一起。每个因素的影响及其相互作用揭示了有助于减少现有和未来电力系统大停电概率的干预措施的有用见解。此外,从各种不同的电网拓扑和电气配置中得出的结论比研究特定测试用例时通常获得的结论更具普遍性。线路冗余和分布式发电似乎是减少大功率损耗和线路过载的可能性的最有效参数,尽管这种影响会随着网络密度的降低而降低。此外,就线路故障而言,重调度策略对于级联故障大小的分布至关重要。这些以及相关的结果为不确定条件下不断发展的输电系统的概率分析和未来设计提供了基础。 (C)2018由Elsevier Ltd.发布

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