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A Novel Communication-Based Average Voltage Regulation Scheme for a Droop Controlled DC Microgrid

机译:一种基于通信的降压控制直流微电网平均调压方案

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摘要

In a dc microgrid, enhanced voltage regulation (VR) and load sharing (LS) are necessary for the economic and reliable operation of the system. Traditionally, droop control is used for LS in microgrids. However, because of the nature of the droop control, good VR and accurate LS cannot be achieved simultaneously. To overcome this drawback, a low-bandwidth, communication- based average VR technique along with an algorithm for equal voltage correction factor is proposed in this paper. Here, precise LS is achieved via droop control using a high value of droop gain, while good VR is obtained through low-speed control area network (CAN) communication, which provides fault tolerance and expandability feature to the system. Only the local dc bus voltage information is exchanged over CAN by the grid connected converters, which ensure low communication traffic. Thus, sufficient bandwidth is available on the CAN bus that can be used for control and monitoring purpose-a highly desirable proposition for a smart grid application. Effect of communication delays on system stability has been modeled and analyzed. Simulation and experimental results are presented to validate the feasibility of the proposed scheme. Plug-n-play and fail-safe features of the proposed technique are highlighted.
机译:在直流微电网中,增强的电压调节(VR)和负载分配(LS)对于系统的经济可靠运行是必需的。传统上,下垂控制用于微电网中的LS。但是,由于下垂控制的性质,不能同时获得良好的VR和精确的LS。为了克服这个缺点,本文提出了一种基于低带宽,基于通信的平均VR技术以及一种用于等电压校正因子的算法。此处,通过使用高下垂增益值的下垂控制可实现精确的LS,而通过低速控制局域网(CAN)通信可获得良好的VR,这为系统提供了容错能力和可扩展性。并网转换器通过CAN仅交换本地直流总线电压信息,从而确保了低通信量。因此,CAN总线上有足够的带宽可用于控制和监视目的-这是智能电网应用程序非常需要的建议。已对通信延迟对系统稳定性的影响进行了建模和分析。仿真和实验结果表明了该方案的可行性。突出显示了所提出技术的即插即用和故障安全功能。

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