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Tytuł artykułu

Optimal automated design of EMI filter for mitiating conducted electromagnetic disturbance in photovoltaic DC-DC converters

Treść / Zawartość
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Warianty tytułu
PL
Optymalny zautomatyzowany projekt filtra EMI w celu łagodzenia przewodzonych zakłóceń elektromagnetycznych w fotowoltaicznych przetwornikach DC-DC
Języki publikacji
EN
Abstrakty
EN
This paper focuses on optimizing the electromagnetic interference (EMI) filter design of DC-DC boost converters for photovoltaic (PV) systems. A comprehensive computer-aided procedure is presented, which integrates the parasitic elements of the EMI filter, to achieve precise automated design with volume reduction. This procedure is guided by strict rules and precise measurements, relying on comprehensive databases sourced from commercial data sheets related to passive components. It also takes into account the parasitic capacitance of boost converters. Experimental validations of the proposed algorithm are presented, using the EN 55022 Class B standard as a reference to rigorously assess the performance of the proposed filter circuit for mitigating conducted electromagnetic disturbances in DC–DC converter.
PL
Niniejszy artykuł koncentruje się na optymalizacji projektu filtra zakłóceń elektromagnetycznych (EMI) przetwornic podwyższających napięcie DC-DC dla systemów fotowoltaicznych (PV). Przedstawiono kompleksową procedurę wspomaganą komputerowo, która integruje elementy pasożytnicze filtra EMI, aby osiągnąć precyzyjny zautomatyzowany projekt ze zmniejszeniem objętości. Ta procedura jest prowadzona według ścisłych zasad i precyzyjnych pomiarów, opierając się na kompleksowych bazach danych pochodzących z komercyjnych arkuszy danych dotyczących elementów pasywnych. Bierze również pod uwagę pojemność pasożytniczą przetwornic podwyższających napięcie. Przedstawiono eksperymentalne walidacje proponowanego algorytmu, wykorzystując normę EN 55022 klasy B jako odniesienie do rygorystycznej oceny wydajności proponowanego obwodu filtra w celu łagodzenia przewodzonych zakłóceń elektromagnetycznych w przetwornicy DC-DC.
Rocznik
Strony
228--233
Opis fizyczny
Bibliogr. 24 poz., rys., tab.
Twórcy
autor
  • Laboratory of Instrumentation (LINS), Faculty of Electrical Engineering, University of Science and Technology Houari Boumediene (USTHB), BP 32 Bab Ezzouar, 16111, Algiers, Algeria
  • University of Science and Technology Houari Boumediene (USTHB), BP 32 Bab Ezzouar, 16111, Algiers, Algeria
  • University Kasdi Merbah Ouargla (UKMO), BP 511, 30000, Ouargla, Algeria
Bibliografia
  • [1] D. Penciu, S. ANDREICA, R. GLIGA, C. MUNTEANU, M. PURCAR, and Ş. ARDELEANU, "Assessment of Electromagnetic Interferences Produced by a Photovoltaic On-Grid System," in 2023 10th International Conference on Modern Power Systems (MPS), 2023, pp. 1-4.
  • [2] C. Jettanasen and C. Pothisarn, "Performance and electromagnetic interference mitigation of DC-DC converter connected to photovoltaic panel," Int. J. of Smart Grid and Clean Energy, vol. 8, pp. 806-812, 2019.
  • [3] A. Ouhammam, H. Mahmoudi, Y. El Hachimi, and A. Daghouri, "Simulation and optimization of EMI filter of conducted emission for high voltage gain DC-DC converter," Simulation, vol. 15, 2024.
  • [4] M. T. Nooshabadi, J.-L. Schanen, H. Iman-Eini, and L. G. A. Rodrigues, "Optimization of EMI Filters of Multi-Level Flying Capacitor Boost Converter," IEEE Transactions on Industry Applications, 2024.
  • [5] E. Şehirli, "Examining the Design of Different Types of DM EMI Filters and Their Effect on EMI Noise and Control Characteristics for Cuk DC-DC Converter," International Transactions on Electrical Energy Systems, vol. 2023, p. 7101065, 2023.
  • [6] I. Grobler and M. N. Gitau, "Modelling and measurement of high-frequency conducted electromagnetic interference in DC–DC converters," IET Science, Measurement & Technology, vol. 11, pp. 495-503, 2017.
  • [7] X. Ruan, L. Xie, Q. Ji, and X. Yuan, "Measurement of Conducted Electro-magnetic Interference (EMI) and Design of EMI Filter," in Conducted Electromagnetic Interference in Power Converters: Modeling, Prediction and Reduction, ed: Springer, 2024, pp. 25-38.
  • [8] S. Takahashi, K. Wada, H. Ayano, S. Ogasawara, and T. Shimizu, "Review of modeling and suppression techniques for electromagnetic interference in power conversion systems," IEEJ Journal of Industry Applications, vol. 11, pp. 7-19, 2022.
  • [9] D.-T. Do and H. Hirsch, "EMI filter performance of transformerless topology for photovoltaic applications," in 2020 International Symposium on Electromagnetic Compatibility-EMC EUROPE, 2020, pp. 1-6.
  • [10] H. Hizarci, U. Pekperlak, and U. Arifoglu, "Conducted emission suppression using an EMI filter for grid-tied three-phase/level T-type solar inverter," IEEE Access, vol. 9, pp. 67417-67431, 2021.
  • [11] G. Giglia, G. Ala, M. C. Di Piazza, G. C. Giaconia, M. Luna, G. Vitale, et al., "Automatic EMI filter design for power electronic converters oriented to high power density," Electronics, vol. 7, p. 9, 2018.
  • [12] N. Jia, L. Xue, and H. Cui, "Mitigating EMI Noise in Propagation Paths: Review of Parasitic and Coupling Effects in Power Electronic Packages, Filters, and Systems," IEEE Open Journal of Power Electronics, 2024.
  • [13] M. Ali, J. Friebe, and A. Mertens, "Design and Optimization of Input and Output EMI Filters under the Influence of Parasitic Couplings," in 2021 23rd European Conference on Power Electronics and Applications (EPE'21 ECCE Europe), 2021, pp. 1-10.
  • [14] P. Gonzalez-Vizuete, J. Bernal-Mendez, M. J. Freire, and M. A. Martin-Prats, "Improving performance of compact EMI filters by using metallic and ferrite sheets," IEEE Transactions on Power Electronics, vol. 36, pp. 9057-9068, 2021.
  • [15] R. He, Y. Xu, S. Walunj, S. Yong, V. Khilkevich, D. Pommerenke, et al., "Modeling strategy for EMI filters," IEEE Transactions on Electromagnetic Compatibility, vol. 62, pp. 1572-1581, 2020.
  • [16] S. Negri, G. Spadacini, F. Grassi, and S. A. Pignari, "Black-box modeling of EMI filters for frequency and time-domain simulations," IEEE Transactions on Electromagnetic Compatibility, vol. 64, pp. 119-128, 2021.
  • [17] D. Zhang, T. Fan, P. Ning, and X. Wen, "An automatic EMI filter design methodology for electric vehicle application," in 2017 IEEE Energy Conversion Congress and Exposition (ECCE), 2017, pp. 4497-4503.
  • [18] G. Ala, G. Giaconia, G. Giglia, M. Di Piazza, M. Luna, G. Vitale, et al., "Computer aided optimal design of high power density EMI filters," in 2016 IEEE 16th International Conference on Environment and Electrical Engineering (EEEIC), 2016, pp. 1-6.
  • [19] Y. Sugiura, K. Wada, and S. Takahashi, "Measurement of DC-side Electromagnetic Noise inside Photovoltaic Power Converters," in 2021 IEEE International Future Energy Electronics Conference (IFEEC), 2021, pp. 1-5.
  • [20] T. A. W. Wijanarko, Y. Yudhistira, D. Mandaris, H. W. Nugroho, Y. Yoppy, A. N. Bakti, et al., "Characterization of conducted emissions at DC line of off-grid PV systems," in AIP Conference Proceedings, 2024.
  • [21] J. Zhang, W. Chen, B. Zhang, X. Song, and H. Huang, "Optimal design of EMI filters for PV system based on parasitic parameter and stability analysis," in 2015 9th International Conference on Power Electronics and ECCE Asia (ICPE-ECCE Asia), 2015, pp. 2744- 2751.
  • [22] W. Qiu, L. Zhang, H. Yin, L. C. Markel, D. Liao, B. W. McConnell, et al., "Modeling, testing, and mitigation of electromagnetic pulse on PV systems," Solar Energy, vol. 264, p. 112010, 2023.
  • [23] M. T. Nooshabadi, J.-L. Schanen, S. Farhangi, and H. Iman-Eini, "Frequency Model for EMI Study of Three-Phase Grid Connected Photovoltaic Inverter on Both DC and AC Sides," in 2023 IEEE Applied Power Electronics Conference and Exposition (APEC), 2023, pp. 620-625.
  • [24] S. W. Pasko, M. K. Kazimierczuk, and B. Grzesik, "Self-capacitance of coupled toroidal inductors for EMI filters," IEEE Transactions on Electromagnetic Compatibility, vol. 57, pp. 216-223, 2015.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-3ee7a5e7-0cb0-40bb-af34-b923649460ce
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