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Comparing Network-Centric and Power Flow Models for the Optimal Allocation of Link Capacities in a Cascade-Resilient Power Transmission Network

机译:比较以网络为中心和潮流模型,以在级联弹性输电网络中优化链路容量

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摘要

In this paper, we tackle the problem of searching for the most favorable pattern of link capacity allocation that makes a power transmission network resilient to cascading failures with limited investment costs. This problem is formulated within a combinatorial multiobjective optimization framework and tackled by evolutionary algorithms. Two different models of increasing complexity are used to simulate cascading failures in a network and quantify its resilience: a complex network model [namely, the Motter-Lai (ML) model] and a more detailed and computationally demanding power flow model [namely, the ORNL-Pserc-Alaska (OPA) model]. Both models are tested and compared in a case study involving the 400-kV French power transmission network. The results show that cascade-resilient networks tend to have a nonlinear capacity-load relation: In particular, heavily loaded components have smaller unoccupied portions of capacity, whereas lightly loaded links present larger unoccupied portions of capacity (which is in contrast with the linear capacity-load relation hypothesized in previous works of literature). Most importantly, the optimal solutions obtained using the ML and OPA models exhibit consistent characteristics in terms of phrase transitions in the Pareto fronts and link capacity allocation patterns. These results provide incentive for the use of computationally cheap network-centric models for the optimization of cascade-resilient power network systems, given the advantages of their simplicity and scalability.
机译:在本文中,我们解决了以下问题:寻找最有利的链路容量分配模式,该模式可使输电网络具有有限的投资成本,可应对级联故障。这个问题是在组合的多目标优化框架内提出的,并由进化算法解决。使用两种不同的模型来增加复杂性,以模拟网络中的级联故障并量化其弹性:一个复杂的网络模型[即Motter-Lai(ML)模型]和一个更详细且计算要求更高的潮流模型[即ORNL-Pserc-Alaska(OPA)模型]。在涉及400 kV法国输电网络的案例研究中,对这两种模型进行了测试和比较。结果表明,级联弹性网络倾向于具有非线性的容量-负载关系:特别是,重负载的组件具有较小的未占用容量部分,而轻负载的链路则具有较大的未占用容量部分(与线性容量相反)先前文献中假设的荷载关系)。最重要的是,使用ML和OPA模型获得的最佳解决方案在帕累托前沿的短语过渡和链接容量分配模式方面表现出一致的特性。这些结果为使用计算廉价的以网络为中心的模型来优化级联弹性电网系统提供了动力,因为它们具有简单性和可扩展性的优点。

著录项

  • 来源
    《IEEE systems journal》 |2017年第3期|1632-1643|共12页
  • 作者单位

    Chair on Systems Science and the Energetic Challenge, Chair on Systems Science and the Energetic Challenge, École Centrale Paris and Supélec, École Centrale Paris and Supélec, Châtenay-Malabry, Châtenay-Malabry, FranceFrance;

    Chair on Systems Science and the Energetic Challenge, Chair on Systems Science and the Energetic Challenge, École Centrale Paris and Supélec, École Centrale Paris and Supélec, Châtenay-Malabry, Châtenay-Malabry, FranceFrance;

    Chair on Systems Science and the Energetic Challenge, Chair on Systems Science and the Energetic Challenge, École Centrale Paris and Supélec, École Centrale Paris and Supélec, Châtenay-Malabry, Châtenay-Malabry, FranceFrance;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Load modeling; Power system faults; Computational modeling; Power system protection; Optimization; Biological system modeling; Resource management;

    机译:负荷建模;电力系统故障;计算建模;电力系统保护;优化;生物系统建模;资源管理;

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