DocumentCode :
1933378
Title :
Analysis and control of DC voltage ripple for modular multilevel converters under single line to ground fault
Author :
Xiaojie Shi ; Zhiqiang Wang ; Tolbert, Leon M. ; Wang, F.
Author_Institution :
Dept. of Electr. Eng. & Comput. Sci., Univ. of Tennessee, Knoxville, TN, USA
fYear :
2013
fDate :
15-19 Sept. 2013
Firstpage :
4112
Lastpage :
4118
Abstract :
This paper deals with DC voltage ripple suppression of the modular multilevel converter (MMC) under single-line-to-ground (SLG) fault condition. First, the instantaneous power of a phase unit is derived theoretically according to the equivalent circuit model of the MMC under unbalanced condition, providing a mathematical explanation of the double-line frequency ripple contained in the dc voltage. Moreover, different characteristics of phase current during three possible SLG faults are analyzed and compared. Based on the derivation and analysis, a quasi-PR controller is proposed to suppress the dc voltage ripple. The proposed controller, combining with the negative and/or zero sequence current controllers, could enhance the overall fault-tolerant capability of the MMC under different types of SLG faults. In addition, no extra cost will be introduced given that only DC voltage is required to be detected. Simulation results from a three-phase MMC based rectifier system generated with the Matlab/Simulink software are provided to support the theoretical considerations.
Keywords :
electric current control; fault tolerance; mathematical analysis; power convertors; rectifiers; voltage control; DC voltage ripple suppression; Matlab-Simulink software; SLG faults; circuit model; dc voltage ripple; dc voltage ripple analysis; dc voltage ripple control; double-line frequency ripple; fault-tolerant capability; ground fault; mathematical explanation; modular multilevel converters; phase current; quasi-PR controller; single-line-to-ground fault condition; three-phase MMC based rectifier system; zero sequence current controllers; Capacitors; Circuit faults; Current control; Equivalent circuits; Frequency control; Mathematical model; Voltage control;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Energy Conversion Congress and Exposition (ECCE), 2013 IEEE
Conference_Location :
Denver, CO
Type :
conf
DOI :
10.1109/ECCE.2013.6647247
Filename :
6647247
Link To Document :
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