Using Both the Circulating Currents and the Common-Mode Voltage for the Branch Energy Control of Modular Multilevel Converters

Author(s):  
Rebecca Dierks ◽  
Jakub Kucka ◽  
Axel Mertens
2016 ◽  
Vol 10 (6) ◽  
pp. 798-806 ◽  
Author(s):  
Weihao Zhou ◽  
Wuhua Li ◽  
Xiangning He ◽  
Jiabing Hu ◽  
Xiaoming Yuan ◽  
...  

Energies ◽  
2021 ◽  
Vol 14 (5) ◽  
pp. 1359
Author(s):  
Gianluca Brando ◽  
Efstratios Chatzinikolaou ◽  
Dan Rogers ◽  
Ivan Spina

In the developing context of distributed generation and flexible smart grids, in order to realize electrochemical storage systems, Modular Multilevel Converters (MMCs) represent an interesting alternative to the more traditional Voltage Source Inverters (VSIs). This paper presents a novel analytical investigation of electrochemical cell power losses in MMCs and their dependence on the injected common mode voltage. Steady-state cell losses are calculated under Nearest Level Control (NLC) modulation for MMCs equipped with a large number of half-bridge modules, each directly connected to an elementary electrochemical cell. The total cell losses of both a Single Star MMC (SS-MMC) and a Double Star MMC (DS MMC) are derived and compared to the loss of a VSI working under the same conditions. An optimum common mode voltage injection law is developed, leading to the minimum cell losses possible. In the worst case, it achieves a 17.5% reduction in cell losses compared to conventional injection laws. The analysis is experimentally validated using a laboratory prototype set-up based on a two-arm SS-MMC with 12 modules per arm. The experimental results are within 2.5% of the analytical models for all cases considered.


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