网络物理智能电网分散控制体系结构的图论方法

Hareesh Kumar Reddy M, V. V
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引用次数: 0

摘要

企业、家庭和工业部门对电力的需求正在增长,这促使研究人员对寻找未来电网的新兴解决方案产生了兴趣。智能电网是一种使用信息和通信技术的电能基础设施。此外,智能电网允许双向电力流动和改进的监测结构,该结构具有抗攻击、可靠和预测未来不确定性的意识。由于智能电网在很大程度上依赖于通信和网络基础设施,因此研究网络突发事件对物理电力系统的影响势在必行。本文提出了一种基于图论的网络物理智能电网突发事件分析模型。在基于图论的建模中,电力网络和网络网络都被表示为两个独立的图。利用最优潮流算法量化了网络偶然性对物理系统的影响。本文考虑的控制体系结构是分散的。采用乘法器交替方向法解决了分散最优潮流问题。利用ieee39总线系统对该算法进行了说明。结果表明,与传统的集中式控制结构相比,分散控制结构的系统成本更低,向用户供电的功率更大。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Graph Theoretic Approach for Decentralized Control Architecture of Cyber Physical Smart Grid
The need for power in the corporate, domestic, and industrial sectors is growing and driving the interest of researchers to hunt for emerging solutions for the future power grid. The smart grid is an electrical energy infrastructure that uses information and communication technologies. Moreover, the smart grid allows bi-directional power flow and an improved monitoring structure that is attack-resistant, reliable, and aware of predicting future uncertainty. Since the smart grid depends heavily on communication and cyber infrastructure, it is imperative to study the effects of cyber contingencies on the physical power system. This paper proposes a graph theory based modelling to perform cyber contingency analysis for a cyber physical smart grid. Both power and cyber networks are represented as two individual graphs in graph theory-based modeling. The effect of cyber contingency on the physical system is quantified using an optimal power flow algorithm. The control architecture considered in this paper is decentralized. The decentralized Optimal Power Flow (OPF) problem has been solved using the Alternating Direction Method of Multipliers (ADMM). The proposed algorithm is illustrated utilizing IEEE 39 bus system. The results show that the system cost is less, and power supplied to the customers is more in a decentralized control structure than in traditional centralized architecture.
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