A Novel Feedback/Feedforward Control Strategy for Three-Phase Voltage-Source Converters

Author(s):  
A. E. Leon ◽  
J. A. Solsona ◽  
C. Busada ◽  
H. Chiacchiarini ◽  
M. I. Valla
2020 ◽  
Vol 10 (5) ◽  
pp. 1703 ◽  
Author(s):  
Zhao Han ◽  
Xiaoli Wang ◽  
Baochen Jiang ◽  
Jingru Chen

In microgrids, paralleled converters can increase the system capacity and conversion efficiency but also generate zero-sequence circulating current, which will distort the AC-side current and increase power losses. Studies have shown that, for two paralleled three-phase voltage-source pulse width modulation (PWM) converters with common DC bus controlled by space vector PWM, the zero-sequence circulating current is mainly related to the difference of the zero-sequence duty ratio between the converters. Therefore, based on the traditional control ideal of zero-vector action time adjustment, this paper proposes a zero-sequence circulating current suppression strategy using proportional–integral quasi-resonant control and feedforward compensation control. Firstly, the dual-loop decoupled control was utilized in a single converter. Then, in order to reduce the amplitude and main harmonic components of the circulating current, a zero-vector duty ratio adjusting factor was initially generated by a proportional–integral quasi-resonant controller. Finally, to eliminate the difference of zero-sequence duty ratio between the converters, the adjusting factor was corrected by a feedforward compensation link. The simulation mode of Matlab/Simulink was constructed for the paralleled converters based on the proposed control strategy. The results verify that this strategy can effectively suppress the zero-sequence circulating current and improve power quality.


2015 ◽  
Vol 23 ◽  
pp. 1025-1039 ◽  
Author(s):  
Hesam RAHBARIMAGHAM ◽  
Erfan MAALI AMIRI ◽  
Behrooz VAHIDI ◽  
Gevorg BABAMALEK GHAREHPETIAN ◽  
Mehrdad ABEDI

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