A Hybrid Submodular Optimization Approach to Controlled Islanding with Heterogeneous Loads

D. Sahabandu, Luyao Niu, Andrew Clark, R. Poovendran
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引用次数: 1

Abstract

Cascade failures, in which the failure of generators or transmission lines causes neighboring generators or lines to trip offline, threaten power system stability. Controlled islanding mitigates cascade failures by deliberately removing a subset of transmission lines in order to partition the system into disjoint, internally stable islands. In this paper, we investigate algorithms for controlled islanding to ensure stability while minimizing power flow disruption and load-generator imbalance. We consider a scenario where there are heterogeneous loads with varying costs of load shedding and formulate a hybrid optimization problem of jointly selecting a set of transmission lines to remove (discrete variables) and how much load to shed at each bus (continuous variables). In order to solve this optimization problem with provable optimality bounds, we propose a new notion of hybrid submodularity. We develop a polynomial-time islanding algorithm that achieves a provable 1/2-optimality bound. We use IEEE 118-bus and ACTIVsg 500-bus case studies to demonstrate that our approach provides better islanding solutions compared to a Mixed-Integer Linear Program (MILP)-based approach.
异构负载控制孤岛的混合子模块优化方法
串级故障是指发电机或输电线路发生故障,导致相邻的发电机或线路脱机,威胁电力系统的稳定。可控孤岛通过故意移除一部分传输线,从而将系统划分为不相连的、内部稳定的孤岛,从而减轻级联故障。在本文中,我们研究了控制孤岛的算法,以确保稳定,同时最大限度地减少潮流中断和负载-发电机不平衡。我们考虑了一个具有不同减载成本的异构负载的场景,并制定了一个混合优化问题,即共同选择一组要删除的传输线(离散变量)和每条母线要减少多少负载(连续变量)。为了解决具有可证明最优性界的优化问题,我们提出了混合子模块化的新概念。我们开发了一个多项式时间孤岛算法,该算法实现了一个可证明的1/2-最优性界。我们使用IEEE 118总线和ACTIVsg 500总线案例研究来证明,与基于混合整数线性程序(MILP)的方法相比,我们的方法提供了更好的孤岛解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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