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Design and development of a microgrid control system for integration of induction generation with storage capability at Saint Paul Island, Alaska

机译:Alaska Saint Paul Island储存能力集成微电网控制系统的设计与开发

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This paper presents a centralized microgrid control system for effective operation of wind turbines and diesel engines coupled to a flywheel electrical storage component on Saint Paul Island. The wind turbines have sufficient capacity to support the entire island without using the diesel engines, allowing the formation of an islanded power system completely powered by renewables. The proposed strategy includes use of the flywheel, wind turbines, and diesel generators to attain survivability and resilience. The strategy is challenged and validated against different low to turbulent wind gust profiles and low to peak loading. Multiple permissive-based decoupling schemes, tie-flow controls, and heat load trading features are implemented. The tie-line flow control/heat load trading is operated in tandem with local diesel generators and wind turbines to maintain a minimum flow from the utility. The control system was tested using hardware-in-the-loop (HIL) with a simplified electrical model of Saint Paul Island.
机译:本文介绍了一种集中式微电网控制系统,用于在圣保罗岛上耦合到飞轮蓄电部件的风力涡轮机和柴油发动机的有效操作。风力涡轮机具有足够的容量来支撑整个岛而不使用柴油发动机,允许形成由可再生能源的孤岛电力系统。拟议的策略包括飞轮,风力涡轮机和柴油发电机的使用,以实现生存性和弹性。该策略受到挑战,并验证与湍流风阵板不同,低至峰值负荷。实现了多种基于许多允许的去耦方案,系带控制和热负荷交易特征。系列流量控制/热负荷交易串联运行,局部柴油发电机和风力涡轮机以维持从本实用程序的最小流量。使用硬件 - 环路(HIL)用Saint Paul Island的简化电气模型进行测试。

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