基于全致动误差模型的直流电机平均电压恢复和电流共享的分布式二次控制。

IF 10.5 1区 计算机科学 Q1 AUTOMATION & CONTROL SYSTEMS
Yi Yu;Guo-Ping Liu;Yi Huang;Lihua Xie
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引用次数: 0

摘要

基于变换器的多母线直流微电网的建模问题以及多母线直流微电网中电压调节与电流平衡的矛盾一直是人们关注的热点问题。电压调节对于确保各电网的稳定性和电能质量至关重要,而电流共享则反映了各电网协调电力的能力,对延长发电机组的使用寿命至关重要。然而,由于线路阻抗的存在,电流不再具有在总线上一致电压下的调节自由。此外,现有模型在描述直流mg时未能很好地平衡准确性和简洁性,导致基于模型的二次控制研究很少。考虑到这一点,本文通过FA系统理论建立了一个包含电路和内部控制回路动力学的直流MG误差模型。在此基础上,提出了分布式最优控制方法。与已有的研究结果相比,本文提出的误差模型在结构简单的同时,也能很好地捕捉到永磁电机的功率特性。对于电压恢复和精确分配电流的调节任务,本文将两者统一为一个综合调节误差,提供了一种解决两者冲突的新方法。然后,给出了闭环MG系统的稳定性。此外,本文还包括电流共享的共识分析和平均电压的跟踪分析。最后,开发了一个配备光伏和电池的实验室规模的MG原型,以验证所提出方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Distributed Secondary Control for Average Voltage Recovery and Current Sharing of DC MGs via a Fully Actuated Error Model
The modeling problem of converter-based multibus direct current (DC) microgrids (MGs) and the conflict between voltage regulation and current balancing in such MGs have been a hot topic of interest. Voltage regulation is essential for ensuring the stability and power quality of MGs, while current sharing is a reflection of the MGs’ ability to coordinate power and is critical to extend the lifespan of the generation units. However, due to the presence of line impedance, currents no longer have the freedom of regulation under consistent voltages across the buses. Additionally, existing models have failed to strike a good balance between accuracy and simplicity in describing DC MGs, resulting in rare research on model-based secondary control. With this in mind, this article develops a DC MG error model containing the dynamics of both the circuit and inner control loops via the fully actuated system theory. Further, a distributed optimal control is proposed based on this model. Compared to existing studies, the suggested error model captures the power characteristics of MGs while possesses a simple structure. For regulation tasks of voltage recovery and precise current allocation, this article unifies these two into a single integrated regulation error, offering a novel approach to address their conflict. Subsequently, the stability of the closed-loop MG system is given. Furthermore, this article includes a consensus analysis of current sharing and a tracking analysis of the average voltages. Finally, a laboratory-scale MG prototype equipped with photovoltaics and batteries is developed to validate the effectiveness of the proposed method.
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来源期刊
IEEE Transactions on Cybernetics
IEEE Transactions on Cybernetics COMPUTER SCIENCE, ARTIFICIAL INTELLIGENCE-COMPUTER SCIENCE, CYBERNETICS
CiteScore
25.40
自引率
11.00%
发文量
1869
期刊介绍: The scope of the IEEE Transactions on Cybernetics includes computational approaches to the field of cybernetics. Specifically, the transactions welcomes papers on communication and control across machines or machine, human, and organizations. The scope includes such areas as computational intelligence, computer vision, neural networks, genetic algorithms, machine learning, fuzzy systems, cognitive systems, decision making, and robotics, to the extent that they contribute to the theme of cybernetics or demonstrate an application of cybernetics principles.
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