An effective fault detection technique for a quasi-Z-Source based grid-tied PV system

M. Trabelsi, M. Mansouri, H. Abu-Rub, H. Nounou
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引用次数: 5

Abstract

In high performance grid-connected PV systems, deploying a power electronics converter capable of operating effectively in the presence of any single point of failure is essential. One of the main advantages of Cascaded H-Bridge (CHB) Multilevel Inverter (MLI) is the modularity. Moreover, the association of a quasi Z-Source (qZS) network with a CHB MLI was deeply investigated in the last decade for grid-tied PV systems. This structure is considered as a single-stage DC/AC topology having the capability of boosting the DC input voltage with high-quality multilevel AC voltage, independent DC-link voltage compensation, and control of the power transfer with high reliability. Thus, this topology suits well fault-tolerant PV systems due to the modularity of the CHB inverter and the flexibility of the qZS network in controlling the DC-link voltage even under faults. However, the effective operation of the MLI needs a continuous monitoring to detect abnormalities and faults to provide more effective and less interrupted energy supplies. The Exponentially Weighted Moving Average (EWMA) method has been proved to be among the most effective univariate techniques to detect small and moderate faults. Thus, this paper presents an effective EWMA based fault detection technique for a 3-phase 3-cell qZS-CHB MLI. Simulation results show the effectiveness of the proposed technique in detecting faults compared to the conventional Generalized Likelihood Ratio Test (GLRT) technique.
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准z源并网光伏系统的有效故障检测技术
在高性能并网光伏系统中,部署能够在任何单点故障情况下有效运行的电力电子转换器至关重要。级联h桥(CHB)多电平逆变器(MLI)的主要优点之一是模块化。此外,在过去十年中,对并网光伏系统中准z源(qZS)网络与CHB MLI的关联进行了深入研究。该结构被认为是一种单级DC/AC拓扑结构,具有用高质量的多电平交流电压提升直流输入电压、独立的直流链路电压补偿和高可靠性的功率传输控制的能力。因此,由于CHB逆变器的模块化以及qZS网络在故障情况下控制直流链路电压的灵活性,这种拓扑结构非常适合容错光伏系统。然而,MLI的有效运行需要持续监测,以发现异常和故障,以提供更有效和更少中断的能源供应。指数加权移动平均(EWMA)方法已被证明是检测中小故障最有效的单变量方法之一。因此,本文提出了一种有效的基于EWMA的三相三单元qZS-CHB MLI故障检测技术。仿真结果表明,与传统的广义似然比检验(GLRT)技术相比,该方法在故障检测方面是有效的。
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