4.8 Article

Cell Capacitor Voltage Switching-Cycle Balancing Control for Modular Multilevel Converters

Journal

IEEE TRANSACTIONS ON POWER ELECTRONICS
Volume 37, Issue 3, Pages 2525-2530

Publisher

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/TPEL.2021.3116803

Keywords

Switches; Voltage control; Control systems; Capacitors; Multilevel converters; Harmonic analysis; Silicon carbide; Balancing; dc-dc; high voltage; medium voltage; modular multilevel converter (MMC); silicon carbide (SiC); switching cycle; voltage fluctuation; voltage ripple

Funding

  1. Advanced Research Projects Agency-Energy from the Department of Energy [DEAR0000892]

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This study proposes a new control method for modular multilevel converters to achieve voltage balancing within a single switching cycle. Experimental results demonstrate the feasibility of this approach.
Modular multilevel converters (MMC) with the conventional control are subjected to large capacitor voltage ripples, especially at low-line frequencies. The existing attenuation approaches, such as the second-order or high-frequency harmonic injections, are designed based on average models limiting the achievable performance. This letter aims to greatly increase the control time resolution, investigating the possibility to form the control in the timescale of a switching cycle. The circulating current is allowed to have multiple changes in one switching period. This critical alternation equips the MMC with the capability to achieve voltage balancing in a single switching cycle, shifting the MMC from a long-deemed line-cycle balancing converter to a switching-cycle balancing converter. The proposed approach is experimentally verified under dc-dc operation, which is the most challenging scenario for conventional controls. Test results under 6 kV dc-link voltage are provided performed with the custom-built 10-kV SiC mosfet-based MMC prototype.

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