Passive anti-Islanding protection for Three-Phase Grid-Connected photovoltaic power systems
•This paper proposes a new passive anti-islanding strategy for photovoltaic systems.•The proposed strategy reduces the voltage stress of photovoltaic inverters.•The performance of the proposed strategy in fault ride-through operation is proved. This paper presents the performances of a new passive a...
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| Published in | International journal of electrical power & energy systems Vol. 148; p. 108946 |
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| Main Authors | , , , , , , , , |
| Format | Journal Article |
| Language | English |
| Published |
Elsevier Ltd
01.06.2023
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| Subjects | |
| Online Access | Get full text |
| ISSN | 0142-0615 |
| DOI | 10.1016/j.ijepes.2023.108946 |
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| Abstract | •This paper proposes a new passive anti-islanding strategy for photovoltaic systems.•The proposed strategy reduces the voltage stress of photovoltaic inverters.•The performance of the proposed strategy in fault ride-through operation is proved.
This paper presents the performances of a new passive anti-islanding protection with minimal switching losses for three-phase grid-connected photovoltaic power systems. The novelty of the proposed strategy consists of five conventional passive relays, which are as follows: over/under current, over/under voltage, over/under frequency, rate of change of frequency, and dc-link voltage-based anti-islanding methods. Integrating these methods in a synergistic way reduces the limitations of each method, while combining the strengths and benefits of each method in islanding detection. As such, the dc-link voltage-based method consists in supervising the dc-link voltage in voltage source converters to reduce the voltage stress and increase performance. The performance in islanding prevention is determined by the detection time of islanding operation mode. The proposed anti-islanding protection was simulated under complete disconnection of the photovoltaic inverter from the electrical power system, as well as under grid faults as required by new grid codes. |
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| AbstractList | •This paper proposes a new passive anti-islanding strategy for photovoltaic systems.•The proposed strategy reduces the voltage stress of photovoltaic inverters.•The performance of the proposed strategy in fault ride-through operation is proved.
This paper presents the performances of a new passive anti-islanding protection with minimal switching losses for three-phase grid-connected photovoltaic power systems. The novelty of the proposed strategy consists of five conventional passive relays, which are as follows: over/under current, over/under voltage, over/under frequency, rate of change of frequency, and dc-link voltage-based anti-islanding methods. Integrating these methods in a synergistic way reduces the limitations of each method, while combining the strengths and benefits of each method in islanding detection. As such, the dc-link voltage-based method consists in supervising the dc-link voltage in voltage source converters to reduce the voltage stress and increase performance. The performance in islanding prevention is determined by the detection time of islanding operation mode. The proposed anti-islanding protection was simulated under complete disconnection of the photovoltaic inverter from the electrical power system, as well as under grid faults as required by new grid codes. |
| ArticleNumber | 108946 |
| Author | Banu, Ioan Viorel Istrate, Marcel Barkat, Fadila Motas, Justina G. Neagu, Bogdan Guerrero, Josep M. Culea, George Livinti, Petru Andrioaia, Dragos |
| Author_xml | – sequence: 1 givenname: Ioan Viorel surname: Banu fullname: Banu, Ioan Viorel email: ionut.banu@ub.ro, ibanu@tuiasi.ro, ibanu86@yahoo.com organization: The Department of Power Engineering and Computer Science, Faculty of Engineering, “Vasile Alecsandri” University of Bacau, Bacau 600115 Romania – sequence: 2 givenname: Fadila surname: Barkat fullname: Barkat, Fadila organization: Semiconductors and Functional Material Laboratory, Faculty of Technology, University of Amar Telidji, Laghouat 03000, Algeria – sequence: 3 givenname: Marcel surname: Istrate fullname: Istrate, Marcel organization: “Gheorghe Asachi” Technical University of Iasi, Iasi 700050 Romania – sequence: 4 givenname: Josep M. surname: Guerrero fullname: Guerrero, Josep M. organization: The Villum Center for Research on Microgrids (CROM), AAU Energy, Aalborg University, 9220 Aalborg East, Denmark – sequence: 5 givenname: George surname: Culea fullname: Culea, George organization: The Department of Power Engineering and Computer Science, Faculty of Engineering, “Vasile Alecsandri” University of Bacau, Bacau 600115 Romania – sequence: 6 givenname: Petru surname: Livinti fullname: Livinti, Petru organization: The Department of Power Engineering and Computer Science, Faculty of Engineering, “Vasile Alecsandri” University of Bacau, Bacau 600115 Romania – sequence: 7 givenname: Justina G. surname: Motas fullname: Motas, Justina G. organization: “Gheorghe Asachi” Technical University of Iasi, Iasi 700050 Romania – sequence: 8 givenname: Bogdan surname: Neagu fullname: Neagu, Bogdan organization: “Gheorghe Asachi” Technical University of Iasi, Iasi 700050 Romania – sequence: 9 givenname: Dragos surname: Andrioaia fullname: Andrioaia, Dragos organization: The Department of Power Engineering and Computer Science, Faculty of Engineering, “Vasile Alecsandri” University of Bacau, Bacau 600115 Romania |
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| Keywords | Grid-connected PV systems Solar power generation DC-link voltage Distributed energy resources Islanding detection |
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