Single-Phase PWM Control of qZSIs for Switching-Loss and Capacitor Reduction Utilizing Accurate DC-Side Current Reference

Tomoyuki Mannen
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Abstract

This paper proposes a single-phase PWM control method for qZSIs that utilizes an accurate dc-side current reference, and that can reduces the number of the switching to 1/3. The proposed method regulates the average voltage of the dc-link in the impedance source so as to follow the highest line-to-line voltage of the ac mains. In this case, only one of three legs in qZSI operates under a high-frequency PWM and the other legs operate under the line-frequency switching in the proposed method. This paper also theoretically discusses the inductor current of the impedance source. As a result, this paper reveals that the capacitance of the impedance source strongly affects to the inductor current ripple and that the qZSI should minimize its capacitance in the impedance source to achieve its best performance. The proposed single-phase PWM are verified in experiments. The experimental results exhibit its highest efficiency of 97.6% at 1.1 kW by using a fabricated full-Si-based qZSI. The proposed single-phase PWM can reduce the power loss in the qZSI to less than half compared to a conventional modulation method. It is confirmed the validity of the theoretical analysis of the proposed method.
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基于精确直流侧电流基准的qzsi开关损耗和电容减小的单相PWM控制
本文提出了一种利用精确直流侧基准电流的qzsi单相PWM控制方法,可将开关次数减少到1/3。所提出的方法调节阻抗源中直流链路的平均电压,以跟随交流电源的最高线对线电压。在这种情况下,qZSI的三个支路中只有一个在高频PWM下工作,其他支路在所提出的方法中的线频开关下工作。本文还从理论上讨论了阻抗源的电感电流。结果表明,阻抗源的电容对电感电流纹波影响较大,qZSI应尽量减小其在阻抗源中的电容,以达到最佳性能。实验验证了所提出的单相PWM控制方案。实验结果表明,制备的全硅基qZSI在1.1 kW时效率最高,达到97.6%。与传统调制方法相比,所提出的单相PWM可以将qZSI的功率损耗降低到一半以下。理论分析证实了该方法的有效性。
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