Abstract
AbstractThe power density of Modular Multilevel Converters (MMCs) is often limited by the over-dimensioning of the module capacitance value. This is common because with conventional control schemes, large voltage and energy margins must be included in the MMC design to avoid overvoltages in the module capacitors and saturation effects due to undervoltages in the module capacitors. This paper presents two Model Predictive Control methods that can reduce the necessary voltage and energy margins to a minimum and therefore increase the power density of the MMC system compared to conventionally controlled MMCs. A trade-off between computational effort and module capacitance over-dimensioning is discovered for the proposed constrained MPC. The unconstrained MPC is compared to the constrained MPC and conventional PI control using simulations. Finally, the performance of the unconstrained MPC is experimentally verified with an MMC system prototype and compared to a traditional PI control system.
Funder
Swiss Federal Institute of Technology Zurich
Publisher
Springer Science and Business Media LLC
Subject
Electrical and Electronic Engineering
Reference29 articles.
1. Sharifabadi K, Harnefors L, Nee H-P, Norrga S, Teodorescu R (2016) Design, control, and application of modular multilevel converters for HVDC transmission systems. John Wiley & Sons, Hoboken
2. Hillers A, Biela J (2013) Optimal design of the modular multilevel converter for an energy storage system based on split batteries. In: 15th Europ. Conf. on Power Electron. and Appl. (EPE)
3. Nakanishi T, Itoh J (2018) High power density design for a modular multilevel converter with an h‑bridge cell based on a volume evaluation of each component. IEEE Trans Power Electron 33(3):1967–1984
4. Ilves K, Norrga S, Harnefors L, Nee H-P (2014) On energy storage requirements in modular multilevel converters. IEEE Trans Power Electron 29(1):77–88
5. Kolb J, Kammerer F, Gommeringer M, Braun M (2015) Cascaded control system of the modular multilevel converter for feeding variable-speed drives. IEEE Trans Power Electron 30(1):349–357
Cited by
1 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献