Spatio-Temporal Failure Propagation in Cyber-Physical Power Systems

Osman Boyaci, M. Narimani, K. Davis, E. Serpedin
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引用次数: 4

Abstract

Cascading failure in power systems is triggered by a small perturbation that leads to a sequence of failures spreading through the system. The interconnection between different components in a power system causes failures to easily propagate across the system. The situation gets worse by considering the interconnection between cyber and physical layers in power systems. A plethora of work has studied the cascading failure in power systems to calculate its impact on the system. Understanding how failures propagate into the system in time and space can help the system operator to take preventive actions and upgrade the system accordingly. Due to the nonlinearity of the power flow equation as well as the engineering constraints in the power system, it is essential to understand the spatio-temporal failure propagation in cyber-physical power systems (CPPS). This paper proposes an asynchronous algorithm for investigating failure propagation in CPPS. The physics of the power system is addressed by the full AC power flow equations. Various practical constraints including load shedding, load-generation balance, and island operation are considered to address practical constraints in power system operation. The propagation of various random initial attacks of different sizes is analyzed and visualized to elaborate on the applicability of the proposed approach. Our findings shed light on the cascading failure evolution in CPPS.
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信息物理电力系统的时空故障传播
电力系统中的级联故障是由一个小的扰动引发的,它会导致一系列故障在整个系统中蔓延。电力系统中不同组件之间的互连导致故障很容易在整个系统中传播。考虑到电力系统中网络层和物理层之间的互连,情况会变得更糟。大量的工作研究了电力系统中的级联故障,以计算其对系统的影响。了解故障如何在时间和空间上传播到系统中,可以帮助系统操作员采取预防措施并相应地升级系统。由于功率流方程的非线性和电力系统的工程约束,了解网络物理电力系统(CPPS)的时空故障传播是十分必要的。提出了一种用于研究CPPS中故障传播的异步算法。电力系统的物理是由完整的交流潮流方程解决的。考虑了各种实际约束,包括减载、负荷发电平衡和孤岛运行,以解决电力系统运行中的实际约束。对不同规模的随机初始攻击的传播进行了分析和可视化,以说明所提出方法的适用性。我们的研究结果揭示了CPPS的级联失效演变。
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