基于约束谱聚类的电网级联故障系统风险缓解策略

IF 4.1 3区 工程技术 Q1 COMPUTER SCIENCE, INFORMATION SYSTEMS
Mohamed Salama , Wael El-Dakhakhni , Michael Tait
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引用次数: 0

摘要

电网容易受到自然或人为灾害事件的破坏,这些事件可能会同时破坏关键/多个电网组件的功能,导致一系列级联故障在整个电网中蔓延。通过将电网运行与结构驱动的建模策略相结合,当前的研究提出了一种管理此类级联故障风险(称为系统风险)的方法,以最大限度地减少大规模灾难性停电的可能性。运营导向建模策略通过调度和甩负荷来实现,以在破坏性事件后重新平衡电力需求和供应。另一方面,网格结构驱动的建模策略通过使用约束谱聚类算法,采用了有意控制的孤岛方法。在集成(操作+结构)级联故障模型中引入后一种算法有助于识别最佳切割集线,以在初始故障后和级联传播前将电网分离为一组功能子电网。为了证明所开发的系统风险管理策略的实用性,考虑到不同数量的子电网,在不同的中断场景下,使用基于高保真物理的模型模拟了实际电网,以比较有策略实施和没有策略实施的级联故障大小。仿真结果表明,综合(调度和减载控制孤岛)策略可以有效地提高电网的整体稳健性,进而提高其弹性,并有效地管理灾难性停电系统风险。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Systemic risk mitigation strategy for power grid cascade failures using constrained spectral clustering

Power grids are prone to damage induced by natural or anthropogenic hazard events that might disrupt the functionality of key/multiple grid components concurrently, resulting in a chain of cascade failures spreading throughout the grid. Through integrating grid operation-guided with structure-driven modeling strategies, the current study proposes an approach to manage the risks of such cascade failure (known as systemic-risks) to minimize the possibility of large-scale catastrophic blackouts. The operation-guided modeling strategy is implemented through dispatch and load shedding to rebalance power demand and supply after disruptive events. On the other hand, the grid structure-driven modeling strategy adopted intentional controlled islanding approach through employing a constrained spectral clustering algorithm. Introducing the latter algorithm within the integrated (operation + structure) cascade failure model facilitated identifying the optimal cut-set lines to separate the grid into a group of functioning sub-grids following initial failure and prior to cascade propagation. To demonstrate the utility of the developed systemic risk management strategy, an actual power grid was simulated using a high-fidelity physics-based model under different disruption scenarios to compare the cascade failure size with and without strategy implementation, considering different numbers of sub-grids. The simulations demonstrate that the integrated (dispatch & load shedding-controlled islanding) strategy can effectively boost the overall grid robustness, and subsequently its resilience, and effectively manage catastrophic blackout systemic risks.

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来源期刊
International Journal of Critical Infrastructure Protection
International Journal of Critical Infrastructure Protection COMPUTER SCIENCE, INFORMATION SYSTEMS-ENGINEERING, MULTIDISCIPLINARY
CiteScore
8.90
自引率
5.60%
发文量
46
审稿时长
>12 weeks
期刊介绍: The International Journal of Critical Infrastructure Protection (IJCIP) was launched in 2008, with the primary aim of publishing scholarly papers of the highest quality in all areas of critical infrastructure protection. Of particular interest are articles that weave science, technology, law and policy to craft sophisticated yet practical solutions for securing assets in the various critical infrastructure sectors. These critical infrastructure sectors include: information technology, telecommunications, energy, banking and finance, transportation systems, chemicals, critical manufacturing, agriculture and food, defense industrial base, public health and health care, national monuments and icons, drinking water and water treatment systems, commercial facilities, dams, emergency services, nuclear reactors, materials and waste, postal and shipping, and government facilities. Protecting and ensuring the continuity of operation of critical infrastructure assets are vital to national security, public health and safety, economic vitality, and societal wellbeing. The scope of the journal includes, but is not limited to: 1. Analysis of security challenges that are unique or common to the various infrastructure sectors. 2. Identification of core security principles and techniques that can be applied to critical infrastructure protection. 3. Elucidation of the dependencies and interdependencies existing between infrastructure sectors and techniques for mitigating the devastating effects of cascading failures. 4. Creation of sophisticated, yet practical, solutions, for critical infrastructure protection that involve mathematical, scientific and engineering techniques, economic and social science methods, and/or legal and public policy constructs.
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