Research Areas
Biography and Research Information
OverviewAI-generated summary
Yannal Nawafleh's research focuses on the development and analysis of solid-state circuit breakers (SSCBs) for direct current (DC) power protection. His work investigates designs aimed at minimizing conduction losses and improving efficiency, particularly for low-voltage DC (LVDC) and broader DC grid applications. Nawafleh has published on multi-port SSCB designs utilizing silicon carbide (SiC) MOSFET modules, exploring aspects such as lossless operation and post-fault optimization.
His recent publications also delve into the switching dynamics and control of solid-state transformers. Nawafleh collaborates with researchers at the University of Arkansas at Fayetteville, including Mohammad Dehan Rahman, Xiaoqing Song, Juan Carlos Balda, and Daixin Chen, with whom he has co-authored multiple publications. His research has resulted in 7 publications and 11 citations, with an h-index of 2.
Metrics
- h-index: 2
- Publications: 8
- Citations: 11
Selected Publications
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Design and Development of a Multi-Port Solid State Circuit Breaker Based on Half Bridge SiC MOSFETs (2025)
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A High-Efficiency Bidirectional Solid-State Circuit Breaker Using Half-Bridge SiC MOSFET Modules for DC Grid Protection (2025)
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Analysis and Modeling of Switching Dynamics in SiC Bidirectional Field-Effect Transistors (2025)
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A Low-Loss Multipart Solid State Circuit Breaker Utilizing Bidirectional Common-Source SiC MOSFETs (2025)
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A Minimized Conduction Loss Multiport SSCB Design with Post-Fault Optimization (2025)
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Serial Peripheral Interface Based Primary Layer Control of a Solid State Transformer (2024)
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A SiC MOSFET Based Multi-Port Solid State Circuit Breaker for DC Protection (2024)
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A Multi-Port Solid State Circuit Breaker for LVDC Protection: Towards A Lossless Design (2024)
Collaboration Network
Top Collaborators
- A Multi-Port Solid State Circuit Breaker for LVDC Protection: Towards A Lossless Design
- A SiC MOSFET Based Multi-Port Solid State Circuit Breaker for DC Protection
- A Minimized Conduction Loss Multiport SSCB Design with Post-Fault Optimization
- Serial Peripheral Interface Based Primary Layer Control of a Solid State Transformer
- A Low-Loss Multipart Solid State Circuit Breaker Utilizing Bidirectional Common-Source SiC MOSFETs
Showing 5 of 6 shared publications
- A Multi-Port Solid State Circuit Breaker for LVDC Protection: Towards A Lossless Design
- A SiC MOSFET Based Multi-Port Solid State Circuit Breaker for DC Protection
- Serial Peripheral Interface Based Primary Layer Control of a Solid State Transformer
- A Low-Loss Multipart Solid State Circuit Breaker Utilizing Bidirectional Common-Source SiC MOSFETs
- Analysis and Modeling of Switching Dynamics in SiC Bidirectional Field-Effect Transistors
- A High-Efficiency Bidirectional Solid-State Circuit Breaker Using Half-Bridge SiC MOSFET Modules for DC Grid Protection
- Serial Peripheral Interface Based Primary Layer Control of a Solid State Transformer
- Serial Peripheral Interface Based Primary Layer Control of a Solid State Transformer
- Serial Peripheral Interface Based Primary Layer Control of a Solid State Transformer
- Serial Peripheral Interface Based Primary Layer Control of a Solid State Transformer
- Serial Peripheral Interface Based Primary Layer Control of a Solid State Transformer
- Serial Peripheral Interface Based Primary Layer Control of a Solid State Transformer
- Analysis and Modeling of Switching Dynamics in SiC Bidirectional Field-Effect Transistors
- Analysis and Modeling of Switching Dynamics in SiC Bidirectional Field-Effect Transistors
- Analysis and Modeling of Switching Dynamics in SiC Bidirectional Field-Effect Transistors
- A High-Efficiency Bidirectional Solid-State Circuit Breaker Using Half-Bridge SiC MOSFET Modules for DC Grid Protection
- A High-Efficiency Bidirectional Solid-State Circuit Breaker Using Half-Bridge SiC MOSFET Modules for DC Grid Protection
- A High-Efficiency Bidirectional Solid-State Circuit Breaker Using Half-Bridge SiC MOSFET Modules for DC Grid Protection
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