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Dynamic Modeling and Control of Interleaved Flyback Module-Integrated Converter for PV Power Applications

机译:光伏发电应用的交错式反激模块集成转换器的动态建模和控制

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摘要

For photovoltaic applications, the interleaved flyback module-integrated converters (MICs) (IFMICs) operating in continuous conduction mode (CCM) show the advantages of high power density, low voltage and current stresses, and low electromagnetic interference but demonstrate a difficult control problem compared to the discontinuous conduction mode. This paper concentrates on the control issues and presents detailed modeling, in-depth dynamic analysis, and a two-step controller design approach for IFMIC systems operating in CCM. The proposed modeling approach is based on the fourth-order system considering the dynamics of the output $CL$ filter. This realistic fourth-order system modeling shows the presence of a resonant peak at a certain frequency, which can cause phase loss and constraints of system bandwidth. A decoupled two-step controller design approach is thus proposed to simplify the modeling and control synthesis in the IFMIC development. The decoupled controller consists of a proportional–integral controller (based on the simplified model), followed by a lag term for mitigating the effect of the resonant peak. A 200-W digitally controlled MIC prototype is constructed for evaluation purposes. The simulation and experimental results verify the effectiveness of the proposed modeling and control approaches.
机译:对于光伏应用,以连续传导模式(CCM)工作的交错式反激模块集成转换器(MIC)(IFMIC)具有高功率密度,低电压和电流应力以及低电磁干扰的优势,但相比而言存在控制难题到不连续传导模式。本文着重于控制问题,并针对在CCM中运行的IFMIC系统,提供了详细的建模,深入的动态分析和两步控制器设计方法。所提出的建模方法基于四阶系统,考虑了输出 $ CL $ 过滤器的动力学。这种逼真的四阶系统建模表明,在某个频率下会出现一个共振峰,这会引起相位损失和系统带宽的限制。因此,提出了一种解耦的两步控制器设计方法,以简化IFMIC开发中的建模和控制综合。解耦控制器由比例积分控制器(基于简化模型)组成,后接一个滞后项,以减轻谐振峰值的影响。出于评估目的,构建了200W数字控制的MIC原型。仿真和实验结果验证了所提出的建模和控制方法的有效性。

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