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Direct-current vector control of three-phase grid-connected rectifier-inverter

机译:三相并网整流逆变器的直流矢量控制

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The three-phase grid-connected converter is widely used in renewable and electric power system applications. Traditionally, control of the three-phase grid-connected converter is based on the standard decoupled d-q vector control mechanism. Nevertheless, the study of this paper shows that there is a limitation in the conventional standard vector control method. Some of the limitations have also been found recently by other researchers. To overcome the shortage of the conventional vector control technique, this paper proposes a new direct-current d-q vector control mechanism in a nested-loop control structure, based on which an optimal control strategy is developed in a nonlinear programming formulation. The behaviors of both the conventional and proposed control methods are compared and evaluated in simulation and laboratory hardware experiment environments, both of which demonstrates that the proposed approach is effective for grid-connected power converter control in a wide system conditions while the conventional standard vector control approach may behave improperly especially when the converter operates beyond its PWM saturation limit.
机译:三相并网转换器广泛用于可再生和电力系统应用。传统上,三相并网转换器的控制基于标准的解耦d-q矢量控制机制。然而,本文的研究表明,传统的标准矢量控制方法存在局限性。其他研究人员最近也发现了一些局限性。为了克服传统矢量控制技术的不足,本文提出了一种在嵌套环控制结构中的新型直流d-q矢量控制机制,并在此基础上以非线性规划公式提出了最优控制策略。在仿真和实验室硬件实验环境中,对常规控制方法和拟议控制方法的行为进行了比较和评估,这两者都表明,该方法对于宽系统条件下的并网功率变换器控制是有效的,而常规标准矢量控制这种方法的行为可能不正确,尤其是当转换器工作超过其PWM饱和极限时。

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