Salim Kashmala, Asif Muhammad, Ali Farman, Armghan Ammar, Ullah Nasim, Mohammad Al-Sharef, Al Ahmadi Ahmad Aziz
Department of Electrical Engineering, Qurtuba University of Science and IT, Dera Ismail Khan 29050, Pakistan.
Department of Electrical Engineering, Main Campus, University of Science & Technology, Bannu 28100, Pakistan.
Micromachines (Basel). 2022 Jul 8;13(7):1085. doi: 10.3390/mi13071085.
This paper examines the design and analysis of DC-DC converters for high-power and low-voltage applications such as renewable energy sources (RESs) and comparisons between converters based on switch stresses and efficiency. The RESs including photovoltaic arrays and fuel cell stacks must have enhanced output voltages, such as 380 V DC in the case of a full bridge inverter or 760 V DC in the case of a half bridge inverter, in order to interface with the 220 V AC grid-connected power system. One of the primary difficulties in developing renewable energy systems is enhancing DC-DC converters' efficiency to enable high step-up voltage conversion with high efficiency and low voltage stress. In the present work, the efficiency, current, and voltage stress of switches of an isolated Flyback boost converter, simple DC-DC Boost converter, and an Interleaved boost converter, are explored and studied relatively. The most suitable and optimized options with a high efficiency and low switching stress are investigated. The more suitable topology is designed and analyzed for the switch technology based on the Silicon-Metal Oxide Semiconductor Field Effect Transistor (Si-MOSFET) and the Gallium Nitride-High Electron Mobility Transistor (GaN-HEMT). The Analytical approach is analyzed in this paper based on efficiency and switching stress. It is explored that GaN HEMT based Flyback boost converter is the best. Finally, the future direction for further improving the efficiency of the proposed boost converter is investigated.
本文研究了用于可再生能源等大功率、低电压应用的DC-DC转换器的设计与分析,并基于开关应力和效率对转换器进行了比较。包括光伏阵列和燃料电池堆在内的可再生能源必须提高输出电压,例如全桥逆变器情况下为380 V直流,半桥逆变器情况下为760 V直流,以便与220 V交流并网电力系统连接。开发可再生能源系统的主要困难之一是提高DC-DC转换器的效率,以实现高效、低电压应力的高升压电压转换。在本工作中,对隔离式反激升压转换器、简单DC-DC升压转换器和交错式升压转换器的开关效率、电流和电压应力进行了相对研究。研究了具有高效率和低开关应力的最合适和优化的选项。基于硅金属氧化物半导体场效应晶体管(Si-MOSFET)和氮化镓高电子迁移率晶体管(GaN-HEMT)的开关技术,设计并分析了更合适的拓扑结构。本文基于效率和开关应力对分析方法进行了分析。研究发现基于GaN HEMT的反激升压转换器是最好的。最后,研究了进一步提高所提出的升压转换器效率的未来方向。