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Cooperative control strategy of energy storage systems and micro sources for stabilizing microgrids in different operation modes

机译:储能系统和微源在不同运行模式下稳定微电网的协同控制策略

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摘要

The islanding capability of Microgrids (MGs), when a fault happens in the grid, is seen as one major driver in enhancing the reliable of MGs. However, the use of power electronic interfaces based-MGs faces some difficulties in maintaining stability in an islanding mode due to the low capacity of installed DGs as well as the low speed response of MGs to any load changes. In fact, the lack of availability of spinning reserves makes fast response to load changes, as well as balancing between power generation and load demand difficult. This leads to deviation in voltage and frequency from their (pre-determined) permitted values. In this paper, a new MG's topology along with a novel control strategy is proposed for stabilizing MGs in different operation modes. Battery storage is used to address the slow response problem of micro sources (MSs) to load changes, and to balance load demands and power generation in the islanding mode of MGs. A droop control idea is adopted in the lowest level of a hierarchy controller to enhance cooperation between power electronic inverters, and to improve load dispatch and voltage regulation. The voltage variation of the MG's main bus is considered as a load change criterion, instead of the output power of converters, to increase the response speed of the control system. The effectiveness of the proposed control strategy is assessed using MATLA/SIMULINK. It is shown that the proposed control strategy improves the operation of MGs in grid connected and islanding modes where soft transient between these two modes are achieved. (C) 2015 Elsevier Ltd. All rights reserved.
机译:当电网发生故障时,微电网(MG)的孤岛能力被视为提高MG可靠性的主要驱动力。然而,由于安装的DG的容量低以及MG对任何负载变化的低速响应,使用基于电力电子接口的MG在保持孤岛模式下的稳定性方面面临一些困难。实际上,缺乏旋转备用的可用性使对负载变化的快速响应以及发电与负载需求之间的平衡变得困难。这导致电压和频率偏离其(预定)允许值。在本文中,提出了一种新的MG拓扑以及一种新颖的控制策略,用于稳定不同操作模式下的MG。电池存储用于解决微源(MS)响应速度慢的问题,以改变负载,并在MG的孤岛模式下平衡负载需求和发电。在分级控制器的最低层采用了下垂控制思想,以增强电力电子逆变器之间的协作,并改善负载分配和电压调节。 MG主总线的电压变化被视为负载变化标准,而不是转换器的输出功率,以提高控制系统的响应速度。建议的控制策略的有效性使用MATLA / SIMULINK进行评估。结果表明,所提出的控制策略改善了MG在并网和孤岛模式下的运行,在这两种模式之间实现了软过渡。 (C)2015 Elsevier Ltd.保留所有权利。

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