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Multiple-Vector Direct Model Predictive Control for Grid-Connected Power Converters with Reduced Calculation Burden

机译:减少计算负担的并网功率变换器的多矢量直接模型预测控制

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This paper proposes a multiple-vector direct model predictive control (MV-DMPC) scheme with reduced calculation burden for grid-connected power converters. The proposed control scheme is based on the discrete space vector modulation (DSVM) technique, where the real voltage vectors (VVs) of the converter are employed together with new virtual VVs to improve the steady-state performance of the proposed controller. Furthermore, in order to reduce the calculation burden of the proposed strategy, a deadbeat function is presented to directly compute the reference voltage vector from the demanded reference current/power. Then, the optimal real or virtual voltage vector is selected based on a certain cost function to apply in the next sampling instant. The performance of the proposed method is validated via simulation results and compared with that of the conventional DMPC and the well-known voltage oriented control (VOC) with proportional-integral (PI) controllers.
机译:本文提出了一种减轻了并网功率变换器的计算负担的多矢量直接模型预测控制(MV-DMPC)方案。所提出的控制方案基于离散空间矢量调制(DSVM)技术,其中将转换器的实际电压矢量(VV)与新的虚拟VV一起使用,以提高所提出控制器的稳态性能。此外,为了减轻所提出策略的计算负担,提出了无差拍函数,以根据所需的参考电流/功率直接计算参考电压矢量。然后,基于某个成本函数选择最佳的实际或虚拟电压矢量,以应用于下一个采样时刻。仿真结果验证了所提方法的性能,并将其与常规DMPC和众所周知的带比例积分(PI)控制器的电压定向控制(VOC)进行了比较。

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