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Article

Analysis of Asymmetric Hybrid Modular Multilevel Topology for Medium-Voltage Front-End Converter Applications

1
Department of Electrical Engineering, University of Engineering and Technology, Mardan 23200, Pakistan
2
Department of Electrical Engineering, SEIEE, Shanghai Jiao Tong University, Shanghai 200240, China
3
Faculty of Electrical Engineering, Ostfold University College, 1757 Halden, Norway
*
Authors to whom correspondence should be addressed.
Energies 2023, 16(4), 1572; https://doi.org/10.3390/en16041572
Submission received: 10 January 2023 / Revised: 31 January 2023 / Accepted: 2 February 2023 / Published: 4 February 2023
(This article belongs to the Special Issue Progress in Design and Control of Power Converters)

Abstract

Modular multilevel converters (MMCs) have been conceived as an alternative in front-end converter applications to enhance the converter system’s reliability, minimize total harmonic distortion, and improve power quality. These converters utilize several DC-link capacitors and power electronic switches, along with switches operating with high switching frequencies, to attain the desired characteristics. Thereby, this paper systematically proposes a novel three-phase asymmetric hybrid modular multilevel converter (AHMMC) for front-end converters used in lower-medium-voltage applications. The AHMMC configuration is based on a three-phase converter connected to a per-phase series arrangement with a cascaded converter module (CCM). The study investigates the AHMMC and proposes a control scheme, which minimizes the voltage range on switches and maintains the current to its reference value. Furthermore, the study also introduces an active balancing of voltage across DC-link capacitors based on the phase opposition disposition PWM (POD-PWM) method. Our new configuration has features such as low switching loss, reduced DC-link voltage, a wider modulation range for the unity power factor (PF), and low voltage and current harmonic distortion. The simulation results are added to verify the performance of the new AHMMC topology and the usefulness of the modular control scheme. In addition, a low-voltage laboratory prototype based on customized control and power boards is built to validate the proposed converter and its control scheme in practice.
Keywords: asymmetric hybrid converter; front-end converter; hybrid modulation; modular multilevel converter; MMC; power-factor correction; PFC; series-active filter; space-vector pulse-width modulation; SV-PWM asymmetric hybrid converter; front-end converter; hybrid modulation; modular multilevel converter; MMC; power-factor correction; PFC; series-active filter; space-vector pulse-width modulation; SV-PWM

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MDPI and ACS Style

Ali, M.; Farooq, A.; Khan, M.Q.; Khan, M.M.; Mihet-Popa, L. Analysis of Asymmetric Hybrid Modular Multilevel Topology for Medium-Voltage Front-End Converter Applications. Energies 2023, 16, 1572. https://doi.org/10.3390/en16041572

AMA Style

Ali M, Farooq A, Khan MQ, Khan MM, Mihet-Popa L. Analysis of Asymmetric Hybrid Modular Multilevel Topology for Medium-Voltage Front-End Converter Applications. Energies. 2023; 16(4):1572. https://doi.org/10.3390/en16041572

Chicago/Turabian Style

Ali, Muhammad, Ajmal Farooq, Muhammad Qasim Khan, Muhammad Mansoor Khan, and Lucian Mihet-Popa. 2023. "Analysis of Asymmetric Hybrid Modular Multilevel Topology for Medium-Voltage Front-End Converter Applications" Energies 16, no. 4: 1572. https://doi.org/10.3390/en16041572

APA Style

Ali, M., Farooq, A., Khan, M. Q., Khan, M. M., & Mihet-Popa, L. (2023). Analysis of Asymmetric Hybrid Modular Multilevel Topology for Medium-Voltage Front-End Converter Applications. Energies, 16(4), 1572. https://doi.org/10.3390/en16041572

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