Experimental study demonstrates single-stage dynamic voltage boosting in a five-level inverter, indicating reduced component voltage stress and improved power conversion flexibility.
Applications of mid-point-clamped multilevel inverters, e.g., active neutral point-clamped (ANPC) or stacked multicell (SMC) converters, have been significantly broadened in recent years due to better performance, reduced common-mode voltage and leakage current, bidirectional power flow capability, and simplicity in the circuit design. Nonetheless, the dc-link voltage utilization factor is only 50% (i.e., the peak of the ac output voltage is half of the dc-link voltage), which requires additional front-end boost-integrated circuit to accommodate low and wide varying input voltage. In this article, a single-stage ANPC-based five-level (5L) boost-integrated inverter is proposed, which is able to meet the peak amplitude of the grid voltage even when the dc-link voltage is low and wide varying. The proposed topology is comprised of 2 boost inductors, 4 capacitors, and 10 power switches, which can be assembled with 2 standard T-type modules and 2 additional discrete power switches. Compared with the conventional two-stage ANPC and/or SMC-5L inverters with a front-end bidirectional boost converter, the proposed topology requires the same number of power switches while providing more flexible/dynamic voltage conversion gain with a reduced total standing voltage across the switches. Operating principles, circuit analysis, and modulation strategy of the proposed topology are discussed. Finally, a comparative study supported by closed-loop grid-tied experimental results is presented to confirm the potentiality and feasibility of this proposal.
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Barzegarkhoo et al. (2023) studied this question.
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