Fault diagnosis of power converters in a grid connected photovoltaic system using artificial neural networks

Author:

Mimouni A.ORCID,Laribi S.ORCID,Sebaa M.ORCID,Allaoui T.ORCID,Bengharbi A. A.ORCID

Abstract

Introduction. The widespread use of photovoltaic systems in various applications has spotlighted the pressing requirement for reliability, efficiency and continuity of service. The main impediment to a more effective implementation has been the reliability of the power converters. Indeed, the presence of faults in power converters that can cause malfunctions in the photovoltaic system, which can reduce its performance. Novelty. This paper presents a technique for diagnosing open circuit failures in the switches (IGBTs) of power converters (DC-DC converters and three-phase inverters) in a grid-connected photovoltaic system. Purpose. To ensure supply continuity, a fault-diagnosis process is required throughout all phases of energy production, transfer, and conversion. Methods. The diagnostic approach is based on artificial neural networks and the extraction of features corresponding to the open circuit fault of the IGBT switch. This approach is based on the Clarke transformation of the three-phase currents of the inverter output as well as the calculation of the average value of these currents to determine the exact angle of the open circuit fault. Results. This method is able to effectively identify and localize single or multiple open circuit faults of the DC-DC converter IGBT switch or the three-phase inverter IGBT switches.

Publisher

National Technical University Kharkiv Polytechnic Institute

Subject

Electrical and Electronic Engineering,Mechanical Engineering,Energy Engineering and Power Technology

Cited by 4 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. A Fast Diagnosis Method for Power Switch Faults in Inverter Based on DC Voltage Waveform;IEEE Transactions on Power Electronics;2024-07

2. Identification of Open-Circuit Faults in T-Type Inverters Using Fuzzy Logic Approach;Advances in Electrical and Electronic Engineering;2023-12-31

3. Fault Diagnosis Using Artificial Neural Network for Two-Level VSI in PMSM Drive System;2023 International Conference on Electrical, Computer and Energy Technologies (ICECET);2023-11-16

4. Integrated through-silicon-via-based inductor design in buck converter for improved efficiency;Electrical Engineering & Electromechanics;2023-10-21

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