Pourya ShamsiView profile
Associate Professor
Pourya Shamsi serves as an Associate Professor in the Department of Electrical Engineering at Missouri University of Science and Technology, where he is affiliated with the Center for Intelligent Infrastructure. His research focuses on power electronics and smart grid technologies, with particular emphasis on DC-DC conversion systems and renewable energy integration. Education: B.Sc. in Electrical and Computer Engineering, University of Tehran, Tehran, Iran (2007) Ph.D. in Electrical and Computer Engineering, University of Texas at Dallas, TX (2012) Dr. Shamsi's research spans several critical areas in modern power systems, with primary focus on smart grids, microgrid stability assessment, energy management systems, and advanced power conversion technologies. His work on switching power converters, particularly VHF/UHF dc-dc converters and motor drives, addresses key challenges in renewable energy integration and electric vehicle charging infrastructure. His research has strong practical applications in improving grid stability and enabling extreme fast charging capabilities. Analysis of Dr. Shamsi's recent publications (2021-2025) reveals a consistent research trajectory focused on high step-up DC-DC converters, with particular emphasis on innovative topologies incorporating coupled inductors, voltage multiplier cells, and soft-switching techniques. His work demonstrates strong connections between theoretical power electronics design and practical applications in photovoltaic systems, DC microgrids, and electric vehicle charging infrastructure. The research shows increasing focus on modular and extendable converter designs that can scale for different power applications while maintaining high efficiency. Dr. Shamsi is actively involved in research through the Center for Intelligent Infrastructure at Missouri S&T, where his work contributes to advancing power conversion technologies for modern energy systems. His research has direct applications in renewable energy integration, grid stability enhancement, and next-generation charging infrastructure.









