Dual-Current Loops Control Strategy of PWM Rectifier under Unbalanced Grid Voltage Conditions

Author:

Ni Yi Feng1,Zhu Yong Qiang1

Affiliation:

1. North China Electric Power University

Abstract

The unbalanced grid voltage causes the current harmonics, the fluctuation of the active power in AC side and the fluctuation of the DC voltage. The dual-current loops control strategy can slove those problems. The positive and negative sequence components of grid voltages and currents were calculated based on the symmetrical component method and were used to calculate the instantaneous power in double dq rotate coordinate, which ratate at positive and negative synchronous angular velocity respectively. The dual-current loops control strategy was finally verified in simulation by comparing with the conventional synchronous PI current control. The simulation results show the dual-current loops control strategy is effective on eliminating the fluctuation of the active power in AC side and the fluctuation of the DC voltage.

Publisher

Trans Tech Publications, Ltd.

Reference6 articles.

1. WANG Jiuhe, YANG Xiuyuang. Control strategy of voltage source PWM rectifiers under unbalanced voltage conditions [J]. Proceedings of the CSEE, 2011, 31(18): 14-20(in Chinese).

2. GENG Qiang, XIA Changliang, YAN Yan, et al. Direct power control in constant switching frequency for PWM rectifier under unbalanced grid voltage conditions [J]. Proceedings of the CSEE, 2011, 30(26): 79-85(in Chinese).

3. Wang Yingjie,Wu Xiaojie,Dai Peng,et al.New control scheme of three-phase PWM rectifier under unbalanced input voltage condition [J]. Electric Drive,2009,39(7): 19-23(in Chinese).

4. Hwang J G, Lehn P W. Control of AC-DC converters under unbalanced operating conditions using the DC space vector control concept [C]/IEEE Power Electronics Specialists Conference. Rhodes, Greece: IEEE,2008: 830-836.

5. LIU Jin, ZHANG Yigong, JIA Junchuan. Control Scheme for DFIG wind power generation system under unbalanced grid voltage conditions [J]. Modern Electric Power, 2013, 30(5): 19-24.

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