Assoc. Prof. Dr. Ali Mosallanejad | Engineering | Excellence in Research

Assoc. Prof. Dr. Ali Mosallanejad | Engineering | Excellence in Research

Professor | Shahid Beheshti Univesity | Iran

Assoc. Prof. Dr. Ali Mosallanejad is a recognized academic and researcher whose expertise lies broadly within Engineering, with a strong focus on electrical and power Engineering systems. His work in Engineering spans power electronics, HVDC technologies, power system analysis, and advanced Engineering modeling and simulation. He has made sustained contributions to Engineering through high quality journal articles, conference publications, and applied Engineering solutions addressing complex industrial challenges. His research output includes numerous peer reviewed Engineering publications that have attracted wide international citations, reflecting strong global visibility and impact within the Engineering community. He has actively collaborated with Engineering researchers, industry experts, and multidisciplinary teams, strengthening knowledge transfer between academic Engineering research and real world Engineering applications. Through Engineering driven innovation, his work has supported improvements in energy systems reliability, efficiency, and technological sustainability, demonstrating clear societal and industrial relevance. His Engineering contributions continue to influence modern Engineering practices, policy oriented research, and future Engineering developments at both national and international levels. Google Scholar profile of 963 Citations, 16 h-index, 30 i10 index.

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Featured Publications

Prof. Ramsey F. Hamade | Engineering Mechanics | Research Excellence Award

Prof. Ramsey F. Hamade | Engineering Mechanics | Research Excellence Award

Professor | American University of Beirut | Lebanon

Prof. Ramsey F. Hamade is a globally respected scholar and innovator whose work is firmly rooted in Engineering Mechanics and whose contributions span advanced manufacturing science applied design and applied analysis. His expertise in Engineering Mechanics integrates experimental investigation computational modeling and applied Engineering Mechanics for materials processing machining joining and structural response. Through sustained research leadership Engineering Mechanics has been advanced across friction based processing nondestructive evaluation biomedical applications and sustainable manufacturing with Engineering Mechanics serving as the unifying scientific framework. He has authored more than eighty peer reviewed journal articles book chapters and patents reflecting strong productivity and influence in Engineering Mechanics research. His work demonstrates impactful collaboration with international academic and industrial partners translating Engineering Mechanics knowledge into practical technologies and societal benefit. The outcomes include improved material performance safer structures enhanced medical solutions and sustainable engineering practices all grounded in Engineering Mechanics rigor and relevance. His scholarly influence and visibility are reflected in the professional words Google Scholar profile of 2161 Citations, 26 h-index, 53 i10 index.

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Featured Publications


Evaluating the Learning Process of Mechanical CAD Students

RF Hamade, HA Artail, MY Jaber — Computers & Education, Vol. 49(3), pp. 640–661, 2007

Cited by 127


Relating Grain Size to the Zener–Hollomon Parameter for Twin-Roll-Cast AZ31B Alloy Refined by Friction Stir Processing

AH Ammouri, G Kridli, G Ayoub, RF Hamade — Journal of Materials Processing Technology, Vol. 222, pp. 301–306, 2015

Cited by 106


Design and Testing of a Locally Made Loop-Type Thermosyphonic Heat Sink for Stove-Top Thermoelectric Generators

R Nuwayhid, RF Hamade — Renewable Energy, Vol. 30(7), pp. 1101–1116, 2005

Cited by 98


A Case for Aggressive Drilling of Aluminum

RF Hamade, F Ismail — Journal of Materials Processing Technology, Vol. 166(1), pp. 86–97, 2005

Cited by 92


Extracting Cutting Force Coefficients from Drilling Experiments

RF Hamade, CY Seif, F Ismail — International Journal of Machine Tools and Manufacture, Vol. 46(3–4), pp. 387–396, 2006

Cited by 86

Assoc. Prof. Dr. Mohammad Silani | Engineering | Research Excellence Award

Assoc. Prof. Dr. Mohammad Silani | Engineering | Research Excellence Award

Associate Professor | Isfahan University of Technology | Iran

Assoc. Prof. Dr. Mohammad Silani is a distinguished figure in Engineering research, widely recognized for his contributions to computational mechanics, multiscale material modeling, fracture mechanics, and advanced numerical simulations. With an extensive background in Engineering applications, his work integrates molecular dynamics, finite element analysis, stochastic modeling, and phase-field theory to address complex material behavior in composite and nanocomposite structures. His Engineering research extends across multiscale modeling, machine learning–assisted simulations, and high-fidelity experimentation, establishing him as a leading contributor to Engineering innovation in computational materials science. He has served in multiple advanced academic and scientific capacities, has supervised doctoral and postgraduate research, and has actively collaborated internationally with institutions and Engineering research groups across Europe, Asia, and Australia. His scholarly output reflects a strong Engineering foundation, comprising many high-impact journal publications, conference contributions, and collaborations that have advanced computational Engineering and numerical methodology. His work on nanostructures, wear modeling, fatigue crack propagation, and hydrogen embrittlement demonstrates a deep Engineering perspective in bridging theory, simulation, and physical behavior. As a reviewer for numerous international journals, his expertise supports the global Engineering community through critical evaluation and scientific refinement. His research continues to influence structural integrity, biomaterial mechanics, lattice optimization, composites Engineering, mechanical design, and simulation-driven material development at multi-scale and multi-physics levels. His sustained contributions to Engineering research, academic leadership, and scientific cooperation reflect a career dedicated to advancing knowledge, improving computational frameworks, and developing reliable Engineering tools for industrial and scientific application. His work stands as a reference point for emerging researchers in Engineering modeling and mechanical material characterization, highlighting precision, innovation, and impactful academic leadership in modern Engineering science. Google Scholar profile of 3041 Citations, 22 h-index, 32 i10-index.

Profile: Google Scholar

Featured Publications

1. Koupaei, F. B., Javanbakht, M., Silani, M., Mosallanejad, M. H., & Saboori, A. (2026). Mechanics-based phase-field model for directional microstructure evolution: Multiscale finite element simulation of IN718 in DED process. Computational Materials Science, 261, 114342.

2. Sabetghadam-Isfahani, A., Silani, M., Javanbakht, M., & others. (2025). Molecular dynamics analysis of temperature and shear stress effects on nickel bi-crystal amorphization. Iranian Journal of Chemistry and Chemical Engineering, e732047.

3. Varshabi, N., Jafari, M., Jamshidian, M., Silani, M., Thamburaja, P., & Rabczuk, T. (2025). Phase-field modeling of stressed grain growth in nanocrystalline metals. International Journal of Mechanical Sciences, 110951.

4. Saffari, M. M., Javanbakht, M., Silani, M., & Jafarzadeh, H. (2025). Stress analysis of nanostructures including nanovoids and inclusions based on nonlocal elasticity theory with different kernels. International Journal of Applied Mechanics, 17(6), 2550041.

5. Sabetghadam-Isfahani, A., Javanbakht, M., & Silani, M. (2025). Atomistic-informed phase-field modeling of edge dislocation evolution in Σ3, Σ9, and Σ19 silicon bi-crystals. Computational Materials Science, 254, 113893.