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A Full State-Variable Direct Predictive Control for Islanded Microgrids With Parallel Converters

机译:具有平行转换器的孤岛微电网的全状态变量直接预测控制

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In this work, we propose a high-quality control solution for islanded microgrids with multiparallel power converters; it uses a full state-variable direct model predictive control (FSV-DMPC) and has a simple structure. Unlike the conventional cascaded control loops, the proposed FSV-DMPC solution tracks the optimal reference generated by a robust droop loop using a unified cost function. This proposal enables the FSV-DMPC to be inserted into the entire control framework with plug-and-play capability; it is robust to parameter variations while also guaranteeing dynamics and stability. We conduct a deep analysis of the proposed approach, taking into account both the characteristics of the solution and the bounded stability of the system. Through comprehensive comparative studies with a classical double-loop linear controller, we validate that our solution achieves superior output voltage regulation during the load transients in terms of voltage error and settling time. Meanwhile, similar steady-state performances are accomplished for both methods. Finally, we verify our approach experimentally in different scenarios through a lab-constructed microgrid test bench. Experimental data confirm that the proposed approach achieves excellent steady-state and transient performances and obtains accurate load sharing.
机译:在这项工作中,我们提出了一种带有多平行动力转换器的岛状微电网的高质量控制解决方案;它使用完整的状态可变直接模型预测控制(FSV-DMPC),结构简单。与传统的级联控制回路不同,所提出的FSV-DMPC解决方案跟踪使用统一成本函数由强大的下垂循环产生的最佳参考。该提议使FSV-DMPC能够通过即插即用能力插入整个控制框架中;对于参数变化是强大的,同时也保证了动态和稳定性。我们对所提出的方法进行深入分析,考虑到解决方案的特点和系统的有界稳定性。通过具有古典双环线性控制器的全面比较研究,我们验证了我们的解决方案在负载瞬变期间在电压误差和稳定时间方面实现了卓越的输出电压调节。同时,两种方法都完成了类似的稳态性能。最后,我们通过实验室构造的微电网测试台在实验中实验地验证了我们的方法。实验数据证实,该方法实现了出色的稳态和瞬态性能,并获得了准确的负载共享。

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