Plug and Play DC-DC Converters for Smart DC Nanogrids with Advanced Control Ancillary Services

Guangyuan Liu, Aram Khodamoradi, P. Mattavelli, T. Caldognetto, P. Magnone
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引用次数: 13

Abstract

This paper gives a general view of the control possibilities for dc-dc converters in dc nanogrids. A widely adopted control method is the droop control, which is able to achieve proportional load sharing among multiple sources and to stabilize the voltage of the dc distribution bus. Based on the droop control, several advanced control functions can be implemented. For example, power-based droop controllers allow dc-dc converters to operate with power flow control or droop control, whether the hosting nanogrid is operating connected to a strong upstream grid or it is operating autonomously (i.e., islanded). Converters can also be equipped with various supporting functions. Functions that are expected to play a crucial role in nanogrids that fully embrace the plug-and-play paradigm are those aiming at the monitoring and tuning of the key performance indices of the control loops. On-line stability monitoring tools respond to this need, by continuously providing estimates of the stability margins of the loops of interest; self-tuning can be eventually achieved on the basis of the obtained estimates. These control solutions can significantly enhance the operation and the plug-and-play feature of dc nanogrids, even with a variable number of hosted converters. Experimental results are reported to show the performance of the control approaches.
即插即用DC-DC转换器智能直流纳米电网与先进的控制辅助服务
本文给出了直流纳米网格中dc-dc变换器控制可能性的一般观点。一种被广泛采用的控制方法是下垂控制,它可以实现多源负载的比例分担,并稳定直流配电母线的电压。在下垂控制的基础上,可以实现多种高级控制功能。例如,基于功率的下垂控制器允许dc-dc转换器在功率流控制或下垂控制下运行,无论托管纳米电网是连接到强大的上游电网还是自主运行(即孤岛)。转换器还可以配备各种配套功能。在完全采用即插即用模式的纳米电网中,预期将发挥关键作用的功能是那些旨在监测和调整控制回路的关键性能指标的功能。在线稳定性监测工具响应了这一需求,通过不断提供感兴趣回路的稳定裕度估计;最终可以在获得的估计的基础上实现自调优。这些控制解决方案可以显著增强直流纳米电网的操作和即插即用特性,即使有可变数量的托管转换器。实验结果表明了控制方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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