Dr. Sadegh Ghavami | Nano Sensors | Research Excellence Award
Dr. Sadegh Ghavami | Nano Sensors | Sahand University of Technology | Iran
Dr. Sadegh Ghavami is a male geotechnical engineer and academic researcher with expertise in soil stabilization, physical and centrifuge modeling, numerical analysis, and advanced construction materials, demonstrating a comprehensive approach to civil infrastructure and smart geotechnical systems. He holds a Ph.D. in Civil Engineering with a focus on Geotechnical Engineering from Iran University of Science and Technology, supported by M.S. and B.S. degrees in Civil Engineering from Sharif University of Technology. His professional experience includes extensive teaching roles at multiple universities, delivering core and advanced courses such as soil mechanics, foundation engineering, soil dynamics, geotechnical earthquake engineering, and earth-fill dam design, as well as serving as a teaching assistant in continuum mechanics and geotechnical laboratory courses. Dr. Sadegh Ghavami’s research portfolio focuses on soil stabilization techniques, centrifuge-based physical modeling, finite element analysis of geotechnical systems, and construction material performance, emphasizing data-driven and sensor-informed approaches to infrastructure resilience. He has published in high-impact Scopus- and IEEE-indexed journals, contributing 11 peer-reviewed documents with more than 200 citations and an h-index of 6, reflecting substantial research influence.
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Top 5 Publications
The impacts of nano-SiO₂ and silica fume on cement kiln dust treated soil as a sustainable cement-free stabilizer
Use of Nano-SiO₂ to Improve Microstructure and Compressive Strength of Recycled Aggregate Concretes
Influence of sodium chloride on cement kiln dust-treated clayey soil: strength properties, cost analysis, and environmental impact
Effects of Silica Fume and Nano-silica on the Engineering Properties of Kaolinite Clay
Investigating the influence of the combination of cement kiln dust and fly ash on compaction and strength characteristics of high-plasticity clays