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首页> 外文期刊>Journal of Modern Power Systems and Clean Energy >Modeling cascading failures and mitigation strategies in PMU based cyber-physical power systems
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Modeling cascading failures and mitigation strategies in PMU based cyber-physical power systems

机译:在基于PMU的网络物理电源系统中建模级联故障和缓解策略

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This paper presents a model of cascading failures in cyber-physical power systems (CPPSs) based on an improved percolation theory, and then proposes failure mitigation strategies. In this model, the dynamic development of cascading failures is divided into several iteration stages. The power flow in the power grid, along with the data transmission and delay in the cyber layer, is considered in the improved percolation theory. The interaction mechanism between two layers is interpreted as the observability and controllability analysis and data update analysis influencing the node state transformation and security command execution. The resilience indices of the failures reflect the influence of cascading failures on both topological integrity and operational state. The efficacy of the proposed mitigation strategies is validated, including strategies to convert some cyber layer nodes into autonomous nodes and embed unified power flow controller (UPFC) into the physical layer. The results obtained from simulations of cascading failures in a CPPS with increasing initial failure sizes are compared for various scenarios. Dynamic cascading failures can be separated into rapid and slow processes. The interdependencies and gap between the observable and controllable parts of the physical layer with the actual physical network are two fundamental reasons for first-order transition failures. Due to the complexity of the coupled topological and operational relations between the two layers, mitigation strategies should be simultaneously applied in both layers.
机译:本文提出了一种基于改进的渗流理论的网络物理电力系统(CPPS)级联故障模型,然后提出了故障缓解策略。在此模型中,级联故障的动态发展分为几个迭代阶段。改进的渗流理论考虑了电网中的潮流以及网络层中的数据传输和延迟。两层之间的交互机制被解释为影响节点状态转换和安全命令执行的可观察性和可控性分析以及数据更新分析。故障的弹性指标反映了级联故障对拓扑完整性和运行状态的影响。所提出的缓解策略的有效性得到了验证,包括将某些网络层节点转换为自治节点并将统一功率流控制器(UPFC)嵌入物理层的策略。比较了在各种情况下,随着初始故障规模的增加,在CPPS中级联故障的仿真结果。动态级联故障可以分为快速过程和缓慢过程。物理层的可观察部分和可控制部分与实际物理网络之间的相互依赖性和差距是一阶过渡故障的两个根本原因。由于两层之间耦合的拓扑和操作关系非常复杂,因此应在两层中同时应用缓解策略。

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