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DOE OSTI · 1848751

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

Abstract

This paper 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 realspace 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 VSVMPC strategy.

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BibTeXRIS

Li, Yufei, Zhao, Yue. 2020-08-11. A Virtual Space Vector Model Predictive Control for a Seven-Level Hybrid Multilevel Converter. https://doi.org/10.1109/tpel.2020.3015444

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