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Island DC Microgrid Hierarchical Coordinated Multi-Mode Control Strategy

机译:岛式直流微电网分级协调多模式控制策略

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As renewable energy sources connecting to power systems continue to improve and new-type loads, such as electric vehicles, grow rapidly, direct current (DC) microgrids are attracting great attention in distribution networks. In order to satisfy the voltage stability requirements of island DC microgrids, the problem of inaccurate load power dispatch caused by line resistance must be solved and the defects of centralized communication and control must be overcome. A hierarchical, coordinated, multiple-mode control strategy based on the switch of different operation modes is proposed in this paper and a three-layer control structure is designed for the control strategy. Based on conventional droop control, a current-sharing layer and a multi-mode switching layer are used to ensure the stable operation of the DC microgrid. Accurate load power dispatch is satisfied using a difference discrete consensus algorithm. Furthermore, virtual bus voltage information is applied to guarantee smooth switching between various modes, which safeguards voltage stability. Simulation verification is carried out for the proposed control strategy by power systems computer aided design/electromagnetic transients including DC (PSCAD/EMTDC). The results indicate that the proposed control strategy guarantees the voltage stability of island DC microgrids and accurate load power dispatch under different operation modes.
机译:随着连接到电力系统的可再生能源的持续改进以及诸如电动汽车等新型负载的迅速增长,直流(DC)微电网在配电网络中引起了极大的关注。为了满足孤岛直流微电网的电压稳定性要求,必须解决由线路电阻引起的负荷功率分配不准确的问题,必须克服集中通讯和控制的缺陷。提出了一种基于不同操作模式切换的分层,协调,多模式控制策略,并设计了一种三层控制结构。基于常规的下垂控制,均流层和多模式切换层用于确保直流微电网的稳定运行。使用差分离散共识算法可以满足准确的负载功率分配。此外,虚拟总线电压信息用于确保各种模式之间的平滑切换,从而保证了电压稳定性。通过电力系统计算机辅助设计/包括DC(PSCAD / EMTDC)的电磁瞬变对提出的控制策略进行了仿真验证。结果表明,所提出的控制策略可以保证孤岛直流微电网的电压稳定性,并能在不同的运行模式下准确分配负荷功率。

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