The Design and Analysis of a Two-Stage PV Converter with Quasi-Z Source Inverter

E. Kabalci
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引用次数: 5

Abstract

The single-phase photovoltaic (PV) systems are being widely researched due to several environmental and financial advantages. The PV converters are implemented either in single stage of two-stage topologies according to intermediate dc bus requirements. In the two-stage topologies, the recent researches are based on transformerless structures to eliminate bulky and lossy transformer isolation. Therefore, several methods including stray current grounding have been proposed in the literature to obtain isolation without the use of transformer. This paper proposes a two-stage PV converter with quasi Z-source (qZS) inverter in the second stage. The first stage of PV converter is comprised by a conventional boost converter that the maximum power point tracking (MPPT) controller is improved with integral regulator addition to incremental conductance algorithm. The MPPT efficiency of improved system is measured as 98.8% regarding to the designed controller. In addition to its efficiency, MPPT controller stabilized the intermediate dc bus voltage against the various irradiation values applied to PV plant. The qZS network is designed to ensure continuous conduction mode (CCM) operation considering shoot-through and non-shoot-through states. The switching control of H-bridge inverter is realized by the designed grid tracking controller that samples grid voltage as a reference input and decomposes to detect phase, frequency, and amplitude values. The power factor of inverter output is measured at 0.988 and total harmonic distortion (THD) ratios of current and voltage waveforms are at 1.71 %.
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准z源逆变器两级光伏变换器的设计与分析
单相光伏(PV)系统由于其环境和经济上的优势而受到广泛的研究。根据中间直流母线的要求,光伏变流器可以采用单级或两级拓扑结构。在两级拓扑中,最近的研究是基于无变压器结构,以消除笨重和损耗的变压器隔离。因此,文献中提出了几种方法,包括杂散电流接地,以获得不使用变压器的隔离。提出了一种两级光伏变换器,第二级采用准z源(qZS)逆变器。光伏变换器的第一级由传统升压变换器组成,最大功率点跟踪(MPPT)控制器采用积分调节器和增量电导算法进行改进。与设计的控制器相比,改进后的系统的最大功率效率为98.8%。除了效率之外,MPPT控制器还稳定了中间直流母线电压,以抵抗施加在光伏电站上的各种辐照值。qZS网络设计用于考虑射通和非射通状态,以确保连续导通模式(CCM)运行。h桥逆变器的开关控制是通过所设计的电网跟踪控制器来实现的,该控制器以电网电压为参考输入采样并分解检测相位、频率和幅度值。逆变器输出功率因数为0.988,电流波形和电压波形的总谐波失真率为1.71%。
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