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Soft-Switching Smart Transformer Design and Application for Photovoltaic Integrated Smart City Power Distribution

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dc.contributor.author Esenboga, Burak
dc.contributor.author Demirdelen, Tugce
dc.date.accessioned 2023-04-26T11:00:24Z
dc.date.available 2023-04-26T11:00:24Z
dc.date.issued 2023-01
dc.identifier.citation Esenboğa, B., & Demirdelen, T. (2022). Soft-Switching Smart Transformer Design and Application for Photovoltaic Integrated Smart City Power Distribution. Sustainability, 15(1), 32. https://doi.org/10.3390/su15010032 tr_TR
dc.identifier.issn 2071-1050
dc.identifier.uri http://openacccess.atu.edu.tr:8080/xmlui/handle/123456789/4209
dc.identifier.uri http://dx.doi.org/10.3390/su15010032
dc.description WOS indeksli yayınlar koleksiyonu. / WOS indexed publications collection. tr_TR
dc.description.abstract Smart city power distributions have become promising technologies to meet the demand for energy in developed countries. However, increase in smart grids causes several power quality problems on the smart grid, in particular, current and voltage harmonic distortions, sudden voltage sag and swells, fault current, and isolation deterioration. Smart transformers are potential solutions to improve the power quality on the electric grid. They present energy efficiency, ensure grid reliability and power flow control, voltage regulation, bidirectional power flow, fault current limiting, harmonic blocking, and galvanic isolation. Therefore, this paper offers an optimal selection of a three-stage (AC-DC-DC-AC) smart transformer model and power control strategy for solar PV power plant integrated smart grids. The topology of the rectifier, isolated bidirectional converter, and inverter has soft-switching features. This enables low conduction loss, low electromagnetic interference (EMI), high efficiency, achievable zero-voltage switching for converters, and zero-current switching for electrical auxiliary systems. Operation strategies of the proposed ST, PWM control, voltage, and current control between converters, including a medium-voltage (MV) high-frequency transformer to realize a 10 kVA, 450 Vdc to 220 Vdc, or 220 Vac ST, are presented. Significantly, the ST prototype achieves 96.7% conversion efficiency thanks to its control strategy, even under unstable power generation conditions from the solar PV plant. Experimental results obtained on the 344 Vac 10.4 A load current validates the dv/dt rate 6.8 kV/us. The dynamic and experimental results of the proposed bidirectional smart transformer demonstrate the success in preventing power quality problems for photovoltaic integrated smart city power distribution. tr_TR
dc.language.iso en tr_TR
dc.publisher SUSTAINABILITY / MDPI tr_TR
dc.relation.ispartofseries 2023;Volume: 15 Issue: 1
dc.subject smart transformer tr_TR
dc.subject power quality tr_TR
dc.subject smart city tr_TR
dc.subject power distribution tr_TR
dc.subject solar PV tr_TR
dc.title Soft-Switching Smart Transformer Design and Application for Photovoltaic Integrated Smart City Power Distribution tr_TR
dc.type Article tr_TR


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