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Maintenance optimization for power distribution systems subjected to hurricane hazard, timber decay and climate change

机译:遭受飓风危害,木材腐烂和气候变化的配电系统的维护优化

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Electric power systems are vulnerable to extensive damage due to hurricanes with most of the damage concentrated on overhead distribution systems. There is evidence that climate change will affect future hurricane patterns. Additionally, wood poles, which are most commonly used in distribution systems, are susceptible to decay. The scarcity of resources and increasing demand for higher reliability warrant the use of optimization techniques for wood pole maintenance planning. This paper presents a framework for optimal maintenance of wood poles subjected to non-stationary hurricane hazard and decay. Maintenance cost, service life, and system performance are considered separately and simultaneously in the optimization. Periodic chemical treatment and repair of decayed poles using fiber-reinforced polymer are considered. The distribution system of a virtual city assumed to be in Florida is used to demonstrate the framework. The results of the single-objective optimization indicate that the objective that maximizes service life resulted in higher optimal maintenance time. However, delaying maintenance will lead to a larger probability of pole failure, higher corrective maintenance cost, and lower system performance. The result of the multi-objective optimization is closer to the result of the cost-based optimization because the cost function is more sensitive to the variation of maintenance time. (C) 2017 Elsevier Ltd. All rights reserved.
机译:电力系统容易遭受飓风造成的广泛破坏,大部分破坏集中在架空配电系统上。有证据表明,气候变化将影响未来的飓风模式。另外,配电系统中最常用的木杆容易腐烂。资源的稀缺和对更高可靠性的日益增长的需求保证了将优化技术用于木杆维护计划。本文为遭受非平稳飓风危害和腐烂的木杆提供了最佳维护的框架。在优化过程中,维护成本,使用寿命和系统性能被分别和同时考虑。考虑使用纤维增强聚合物进行定期化学处理和修复衰变极。假设位于佛罗里达州的虚拟城市的分发系统用于演示该框架。单目标优化的结果表明,最大化使用寿命的目标会导致更长的最佳维护时间。但是,延迟维护会导致磁极故障的可能性更大,纠正性维护成本更高,系统性能也会降低。多目标优化的结果更接近基于成本的优化的结果,因为成本函数对维护时间的变化更加敏感。 (C)2017 Elsevier Ltd.保留所有权利。

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