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Abstrakt

The transformer-less grid connected inverters are gaining more popularity due to their high efficiency, very low ground leakage current and economic feasibility especially in photovoltaic systems. The major issue which surfaces these systems is that of common mode leakage current which arises due to the absence of an electrical transformer connected between the inverter and the utility grid. Several topologies have evolved to reduce the impact of common mode leakage current and a majority of them have succeeded in eliminating the impacts and have well kept them within the limits of grid standards. This paper compares and analyses the impact of the common mode leakage current for four popular inverter configurations through simulation of the topologies such as H5, H6, HERIC and FBZVR inverters.

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Autorzy i Afiliacje

D. John Sundar
M. Senthil Kumaran
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Abstrakt

Unintentional islanding detection is one the mandatory criterion that must be met by PV inverters before connecting them into the grid. Acceptable time for inverter for islanding detection is less than 2 seconds. In this paper voltage parameters after islanding occurrence and before turning off the inverter are analyzed. In order to simulate islanding state and perform measurements the testing system was build. Three different commercial PV inverters were tested. Measured signals were used to calculate voltage envelope, phasor, frequency and ROCOF. Collected data proved to be helpful to compere different inverters.
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Bibliografia

[1] S. Barczentewicz, A Bień, K. Duda , „The use of PMU data for detecting and monitoring selected electromagnetic disturbances”, International Journal od Electronics and Telecommunication. 2020, https://doi.org/10.24425/ijet.2020.134040
[2] IEEE Standard for Synchrophasor Measurements for Power Systems—Amendment 1: Modification of Selected Performance Requirements, IEEE Standard C37.118.1a, Apr. 2014.
[3] International Standard Synchrophasor for power systems – Measurements, IEC/IEEE 60255-118-1, Edition 1.0, Dec. 2018.
[4] G. A. Dileep, “Survey on smart grid technologies and applications”, Renewable Energy, vol. 146, pp. 2589-2625, 2020, https://doi.org/10.1016/j.renene.2019.08.092
[5] S. Barczentewicz, T. Lerch, A. Bień, K. Duda, “Laboratory Evaluation of a Phasor-Based Islanding Detection Method”. Energies. 2021; 14(7):1953. https://doi.org/10.3390/en14071953
[6] IEEE 15471-2020 „Standard Conformance Test Procedures for Equipment Interconnecting Distributed Energy Resources with Electric Power Systems and Associated Interfaces”
[7] S. Raza, H. Arof, H. Mokhlis, H. Mohamad, H. Azil Illias, “Passive islanding detection technique for synchronous generators based on performance ranking of different passive parameters”. IET Gener. Transm. Distrib. 2017, 11, 4175–4183, https://doi.org/10.1049/iet-gtd.2016.0806
[8] Z. Lin, T. Xia, Y. Ye, Y. Zhang, L. Chen, Y. Liu, K. Tomsovic, T. Bilke, F. Wen, “Application of wide area measurement systems to islanding detection of bulk power systems.” IEEE Trans. Power Syst. 2013, 28, 2006–2015, https://doi.org/10.1109/TPWRS.2013.2250531
[9] S.I. Jang, K.H. Kim, “An islanding detection method for distributed generations using voltage unbalance and total harminic distrotion of current.” IEEE Trans. Power Deliv. 2004, 19, 745–752, https://doi.org/10.1109/TPWRD.2003.822964
[10] R. Teodorescu, M. Liserre, P. Rodriguez, “Grid Converters for Photovoltaic and Wind Power System” John Wiley & Sons, Ltd: Chichester, West Sussex, UK; 2011; pp. 93–96
[11] S. Murugesan, M. Venkatakirthiga, “Active Unintentional Islanding Detection Method for Multiple PMSG based DGs.” IEEE Trans. Ind. Appl. 2020, 56, 4700–4708, https://doi.org/10.1109/TIA.2020.3001504
[12] S. Murugesan, V. Murali, “Hybrid Analyzing Technique Based Active Islanding Detection for Multiple DGs.” IEEE Trans. Ind. Inform. 2019, 15, 1311–1320, https://doi.org/10.1109/TII.2018.2846025
[13] D. Sivadas, K. Vasudevan, “An Active Islanding Detection Strategy with Zero Non detection Zone for Operation in Single and Multiple Inverter Mode Using GPS Synchronized Pattern.” IEEE Trans. Ind. Electron. 2020, 67, 5554–5564, https://doi.org/10.1109/TIE.2019.2931231
[14] M. Ropp, E. Aaker, K. Haigh, J. Sabbah, “Using power line carrier communication to prevent islanding”. IEEE Photovolt. Spec. Conf. 2002, 1675–1678, https://doi.org/10.1109/PVSC.2000.916224
[15] X. Wilson, Z. Guibin, L. Chun, W. Wencong, W. Guangzhu, K. A Jacek, “Power line signaling based technique for anti-islanding protection of distributed generators-Part I: Sheme and analysis.”, IEEE Trans. Power Deliv. 2007, 22, 1758–1766, https://doi.org/10.1109/TPWRD.2007.899618
[16] Z. Ye, R. Walling, L. Garces, R. Zhou, L. Li, T. Wang, “Study and Development of Anti-Islanding Control. for Grid-Connected Inverters”; Nat. Renew. Energy Lab.: Golden, CO, USA, May 2004, NREL/ SR-560-36243.
[17] S. Katyara, A. Hashmani, B.S. Chowdhary, H.B. Musavi, A. Aleem, F.A. Chachar, M.A. Shah, “Wireless Networks for Voltage Stability Analysis and Anti-islanding Protection of Smart Grid System.” Wirel. Pers. Commun. 2020, 1–18, https://doi.org/10.1007/s11277-020-07432-w
[18] K. Duda, T.P. Zieliński, S. Barczentewicz, “Perfectly Flat-Top and Equiripple Flat-Top Cosine Windows”, IEEE Trans. Instrum. Meas. 2016, 65, 1558–1567, https://doi.org/10.1109/TIM.2016.2534398
[19] K. Duda, T.P. Zieliński, “FIR Filters Compliant with the IEEE Standard for M Class PMU”. Metrol. Meas. Syst. 2016, 23, 623–636, https://doi.org/10.1515/mms-2016-0055

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Autorzy i Afiliacje

Szymon Henryk Barczentewicz
1
Tomasz Lerch
1
ORCID: ORCID
Andrzej Bień
1

  1. AGH University of Science and Technology, Poland

Abstrakt

With the extinction of fossil fuels and high increase in power demand, the necessity for renewable energy power generation has increased globally. Solar PV is one such renewable energy power generation, widely used these days in the power sector. The inverters used for power conversion suffer from power losses in the switching elements. This paper aims at the detailed analysis on switching losses in these inverters and also aims at increasing the efficiency of the inverter by reducing losses. Losses in these power electronic switches vary with their types. In this analysis the most widely used semiconductor switches like the insulated gate bipolar transistor (IGBT) and metal oxide semiconductor field effect transistor (MOSFET) are compared. Also using the sinusoidal pulse width modulation (SPWM) technique, improves the system efficiency considerably. Two SPWM-based singlephase inverters with the IGBT and MOSFET are designed and simulated in a MATLAB Simulink environment. The voltage drop and, thereby, the power loss across the switches are compared and analysed. The proposed technique shows that the SPWM inverter with the IGBT has lower power loss than the SPWM inverter with the MOSFET.
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Autorzy i Afiliacje

Sivaraj Panneerselvam
1
ORCID: ORCID
Karunanithi Kandasamy
1
ORCID: ORCID
Chandrasekar Perumal
1
ORCID: ORCID

  1. Vel Tech Rangarajan Dr. Sagunthala R&D Institute of Science and Technology, Chennai, Tamil Nadu, India

Abstrakt

Distributed generation is an issue intensively studied in recent years. It concerns, among others protection systems of distributed generation units connected to electric power grids. The main goal of this paper is to present the issue of functional reliability of selected passive loss of mains (LoM) protection systems, i.e. methods of detecting island operation in distribution power grids, which are implemented in PV inverters installed in sample MV and LV grids, typical for Polish conditions. First, different methods of detecting island operation have been distinguished and shortly characterized. Some problems concerning their action have also been presented. Then commonly used passive methods of island grid operation detection have been described. Next sample distribution grid has been presented and chosen disturbances modelled in the grid to test mentioned passive methods have been defined. For each of the determined type of disturbance the dynamic simulation has been carried out, as well as voltage and frequency plots for two selected RES nodes have been recorded and observed. All considered passive methods of island grid operation detection have been implemented in a Matlab/Simulink environment. Models of RoCoF, U/OVP and U/ OFP algorithms have been presented in diagrams. Then, results of carried out extensive studies have been shown in tables and discussed. The results are a consequence of a realized research project concerning electric grids in rural areas. Summary, final conclusions, and future research possibilities constitute the last part of the paper. The conclusions are mainly concentrated on evaluation of action of passive methods of island operation detection as well as possibility of using the methods in Polish conditions, particularly in rural distribution grids.

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Autorzy i Afiliacje

M. Parol
M. Połecki

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