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Optimizing the robustness of electrical power systems against cascading failures

机译:优化电力系统的鲁棒性以防止级联故障

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摘要

Electrical power systems are one of the most important infrastructures that support our society. However, their vulnerabilities have raised great concern recently due to several large-scale blackouts around the world. In this paper, we investigate the robustness of power systems against cascading failures initiated by a random attack. This is done under a simple yet useful model based on global and equal redistribution of load upon failures. We provide a comprehensive understanding of system robustness under this model by (i) deriving an expression for the final system size as a function of the size of initial attacks; (ii) deriving the critical attack size after which system breaks down completely; (iii) showing that complete system breakdown takes place through a first-order (i.e., discontinuous) transition in terms of the attack size; and (iv) establishing the optimal load-capacity distribution that maximizes robustness. In particular, we show that robustness is maximized when the difference between the capacity and initial load is the same for all lines; i.e., when all lines have the same redundant space regardless of their initial load. This is in contrast with the intuitive and commonly used setting where capacity of a line is a fixed factor of its initial load.
机译:电力系统是支持我们社会的最重要的基础设施之一。但是,由于世界各地发生数次大规模停电,他们的漏洞最近引起了人们的极大关注。在本文中,我们研究了电源系统针对随机攻击引发的级联故障的鲁棒性。这是在简单但有用的模型下完成的,该模型基于发生故障时负载的全局且均等的重新分配。我们通过(i)得出最终系统规模的表达式作为初始攻击规模的函数来全面了解该模型下的系统鲁棒性; (ii)得出关键攻击大小,然后系统完全崩溃; (iii)根据攻击规模显示出系统完全崩溃是通过一阶(即不连续的)过渡发生的; (iv)建立最大化鲁棒性的最佳负载容量分布。特别是,我们表明,当所有线路的容量和初始负载之间的差异相同时,鲁棒性将得到最大化。即,当所有线路都具有相同的冗余空间时,无论其初始负载如何。这与直观且通常使用的设置(线路的容量是其初始负载的固定因子)形成对比。

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