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A Virtual Space Vector Model Predictive Control for a Seven-Level Hybrid Multilevel Converter

机译:七级混合多级转换器的虚拟空间矢量模型预测控制

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This article proposes a virtual space vector (VSV) model predictive control (MPC) for a three-phase seven-level (7L) hybrid multilevel converter (HMC), where each phase consists of an active-neutral-point-clamped converter with a floating H-bridge. To achieve the best current tracking, which is the primary goal of the proposed algorithm, a novel geometrical positioning approach is proposed to select the optimal voltage vector among all the real-space vectors and VSVs. Then, all the possible switching sequences that belong to the optimal voltage vector are evaluated to realize the dc capacitor voltage balancing and common-mode voltage reduction. Through an external modulator, the optimal voltage vector can be synthesized by using either one-, three-, or seven-segment switching sequence. Compared with the conventional MPC, the proposed VSV-MPC can reduce not only the computational burden but also the current THD. Both simulation and experimental results obtained on silicon carbide based 7L-HMC prototype are presented to validate the feasibility and effectiveness of the proposed VSV-MPC strategy.
机译:本文为三相七级(7L)混合多电平转换器(HMC)提出了虚拟空间矢量(VSV)模型预测控制(MPC),其中每个阶段由有功率中性点夹紧转换器组成浮动H桥。为了实现最佳电流跟踪,这是所提出的算法的主要目标,提出了一种新的几何定位方法,以选择所有真实空间向量和VSV之间的最佳电压矢量。然后,评估属于最佳电压矢量的所有可能的开关序列以实现DC电容器电压平衡和共模电压降低。通过外部调制器,可以通过使用一个,三个或七段切换序列来合成最佳电压矢量。与传统MPC相比,所提出的VSV-MPC不仅可以减少计算负担,也可以减少当前的THD。在碳化硅基于7L-HMC原型上获得的模拟和实验结果都是为了验证所提出的VSV-MPC策略的可行性和有效性。

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