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Fast and Secure Operation of Voltage Source Inverter based DERs using Model Predictive Droop Control

机译:使用模型预测下垂控制快速安全地运行基于电压源逆变器的DER

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Reliability of the power grid can be improved by the use of microgrids (MGs) concept, which regulates the voltage and frequency at the point of common coupling (PCC) during normal and/or faulty conditions. Droop characteristics based hierarchical control strategies are commonly used in MGs, where power converters can operate in parallel. However, the need of multiple control loops not only adds complexity to the controller design, but also reduces the dynamic response of the system. In the future power system, grid-tied converters with fast dynamic response are desired to handle the uncertainties induced by high penetration of distributed energy resources. Therefore, this paper presents a novel model predictive control to ensure fast dynamic response of high power three-level converters in stand-alone operating mode as well as grid-tied operating mode. The proposed controller is applied to a MG which consists of a solar inverter connected in parallel with an energy storage system to the PCC, where a local load is tied. Both simulation and experimental results are presented to demonstrate robustness and the high dynamic performance of the proposed controller under rapidly changing atmospheric conditions and different grid operating modes.
机译:通过使用微电网(MGs)概念可以提高电网的可靠性,该概念可在正常和/或故障情况下调节公共耦合点(PCC)处的电压和频率。基于下垂特性的分层控制策略通常在MG中使用,其中功率转换器可以并行运行。但是,需要多个控制回路,不仅增加了控制器设计的复杂性,而且降低了系统的动态响应。在未来的电力系统中,需要具有快速动态响应的并网转换器来处理由分布式能源的高渗透率引起的不确定性。因此,本文提出了一种新颖的模型预测控制,以确保大功率三电平转换器在独立运行模式以及并网运行模式下的快速动态响应。拟议中的控制器应用于MG,该MG包括一个太阳能逆变器,该逆变器与能量存储系统并联连接到PCC,在PCC上捆绑了本地负载。给出了仿真和实验结果,以证明所提出的控制器在快速变化的大气条件和不同的电网运行模式下的鲁棒性和高动态性能。

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