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Balancing System Survivability and Cost of Smart Grid Via Modeling Cascading Failures

机译:通过级联故障建模平衡系统的生存能力和智能电网的成本

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摘要

As a typical emerging application of cyber physical system, smart power grid is composed of interdependent power grid and communication/control networks. The latter one contains relay nodes for communication and operation centers to control power grid. Failure in one network might cause failures in the other. In addition, these failures may occur recursively between the two networks, leading to cascading failures. We propose a k-to- n interdependence model for smart grid. Each relay node and operation center is supported by only one power station, while each power station is monitored and controlled by k operation centers. Each operation center controls n power stations. We show that the system controlling cost is proportional to k. Through calculating the fraction of functioning parts (survival ratio) using percolation theory and generating functions, we reveal the nonlinear relation between controlling cost and system robustness, and use graphic solution to prove that a threshold exists for the proportion of faulty nodes, beyond which the system collapses. The extensive simulations validate our analysis, determine the percentage of survivals and the critical values for different system parameters. The mathematical and experimental results show that smart grid with higher controlling cost has a sharper transition, and thus is more robust. This is the first paper that focuses on on improving smart power grid robustness by changing monitoring strategies from an interdependent complex networks perspective.
机译:智能电网作为网络物理系统的典型新兴应用,由相互依存的电网和通信/控制网络组成。后者包含用于通信和操作中心以控制电网的中继节点。一个网络中的故障可能会导致另一个网络中的故障。另外,这些故障可能在两个网络之间递归发生,从而导致级联故障。我们提出了智能电网的k对n相互依赖模型。每个中继节点和操作中心仅由一个电站支持,而每个电站由k个操作中心进行监视和控制。每个运营中心控制n个电站。我们证明系统控制成本与k成正比。通过使用渗流理论计算功能部件的比例(生存率)并生成函数,我们揭示了控制成本与系统鲁棒性之间的非线性关系,并使用图形解证明存在故障节点比例的阈值,超过此阈值系统崩溃。广泛的仿真验证了我们的分析,确定了不同系统参数的存活率百分比和临界值。数学和实验结果表明,具有较高控制成本的智能电网具有更为尖锐的过渡,因此更加鲁棒。这是第一篇致力于通过从相互依赖的复杂网络角度更改监视策略来提高智能电网鲁棒性的论文。

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