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BESS control on an microgrid with significant wind generation

机译:微风发电的微电网的BESS控制

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This paper compares lead compensation and droop control of a 10MW lithium-ion based battery energy storage system (BESS) designed to maintain load frequency control (LFC) by dispatching regulating reserves of active power to a 91MW test section of the Maui, Hawaii island grid model with wind generation of 30MW. The test section is part of an existing larger Maui grid model developed by General Electric in Siemen's Power System Simulator for Engineering, and the BESS model is based on Electric Power Research Institute's CBEST battery model. Performances of the two controllers are compared to minimize the deviations in grid frequency caused by wind power variations and loss of generation. The results show using the BESS to provide LFC via lead compensator caused a significant reduction in frequency volatility and the magnitude of the frequency deviations in comparison to a microgrid without a BESS and using the BESS to provide traditional droop control. The advantage of the LFC over Base Case (no BESS) and the Droop Control case (Case 2) is that is more effective at reducing the frequency deviation caused by a disturbance on the microgrid.
机译:本文比较了10MW锂离子电池储能系统(BESS)的铅补偿和下垂控制,该储能系统旨在通过将有功功率的调节储备分配给夏威夷毛伊岛电网的91MW测试段来维持负载频率控制(LFC)风力发电量为30MW的模型。测试部分是通用电气公司在Siemen工程用电力系统仿真器中开发的现有较大毛伊岛网格模型的一部分,而BESS模型则基于电力研究所的CBEST电池模型。比较这两个控制器的性能,以最大程度地减小由风力变化和发电损失引起的电网频率偏差。结果表明,与没有BESS的微电网以及使用BESS提供传统的下垂控制相比,使用BESS通过前导补偿器提供LFC可以显着降低频率波动性和频率偏差的幅度。 LFC优于基本情况(无BESS)和下垂控制情况(情况2)的优势在于,它在减少由微电网干扰引起的频率偏差方面更有效。

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