Control Scheme for the Lagging Power Factor Operation of a Single-Phase Grid-Connected Inverter Using an Unfolding Circuit

IF 5 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE open journal of power electronics Pub Date : 2024-01-09 DOI:10.1109/OJPEL.2024.3351147
Yasuhiko Miguchi;Hidemine Obara;Atsuo Kawamura
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Abstract

A single-phase grid-connected inverter with an unfolding circuit typically consists of a first-stage dc/dc converter, which generates fully rectified sinusoidal waveforms, and a second-stage unfolding inverter, which switches every 180° of the line frequency waveform. This converter exhibits low switching loss and high efficiency, and the operating principle of the unfolding inverter typically includes synchronous voltage and current. However, limited studies have focused on the operation of inverters with power factor (PF) less than unity. Such operations often result in large overshoots and oscillations in the output voltages. To address this problem, we proposed a novel control scheme that enables leading PF operation without additional circuitry and overcomes the aforementioned limitations in the previous literature. Thus, this paper describes a novel control scheme that enables lagging PF operation. Notably, for a lagging PF, a phenomenon in which the dc voltage inevitably increases immediately after unfolding is known to occur, and herein, this phenomenon is used in reverse to rapidly decrease the dc current. Consequently, we develop a method to land the circuit variables at normal mode steady-state value by using reverse-polarity pulse width modulation (PWM)/forward-polarity PWM combination of the unfolding inverter and a virtual PWM inverter in the proposed controller. The control method is validated using simulations and experiments, and it is found to facilitate the four-quadrant operation of the unfolding inverter.
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使用展开电路的单相并网逆变器功率因数滞后运行控制方案
带有展开电路的单相并网逆变器通常由第一级直流/直流转换器和第二级展开逆变器组成,第一级直流/直流转换器产生完全整流的正弦波形,第二级展开逆变器每180°切换一次线路频率波形。这种转换器具有低开关损耗和高效率的特点,展开式逆变器的工作原理通常包括同步电压和同步电流。然而,对功率因数(PF)小于统一的逆变器运行的研究有限。这种操作通常会导致输出电压出现较大的过冲和振荡。为解决这一问题,我们提出了一种新型控制方案,无需额外电路即可实现功率因数领先的运行,并克服了以往文献中的上述局限性。因此,本文介绍了一种可实现滞后 PF 运行的新型控制方案。值得注意的是,对于滞后 PF,已知会出现直流电压在展开后不可避免地立即升高的现象,而本文则反向利用这一现象来快速降低直流电流。因此,我们开发了一种方法,通过在拟议控制器中使用展开逆变器和虚拟 PWM 逆变器的反向极性脉宽调制(PWM)/正向极性 PWM 组合,将电路变量降落在正常模式稳态值上。该控制方法通过仿真和实验进行了验证,发现它有利于展开式逆变器的四象限运行。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
8.60
自引率
0.00%
发文量
0
审稿时长
8 weeks
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