Abdelrahman Elbakheit | Sustainable Architecture | Best Researcher Award

Dr. Abdelrahman Elbakheit | Sustainable Architecture | Best Researcher Award

Associate Prof | King Saud University | Saudi Arabia

Dr. Abdelrahman Elbakheit’s research focuses on the integration of renewable energy systems into sustainable architectural design, emphasizing building-integrated photovoltaics (BIPV), wind turbines, and their optimization for energy-efficient buildings. His work bridges the fields of architecture, engineering, and environmental design, exploring hybrid systems that combine solar and wind energy technologies to enhance building performance and sustainability. Through computational fluid dynamics (CFD) simulations, design experimentation, and real-world case studies, his studies have provided innovative frameworks for improving energy generation efficiency in tall buildings and façade systems. He has contributed to the development of Saudi Arabia’s Green Building Code and authored numerous influential publications addressing topics such as ducted photovoltaic façade systems, aerofoil wing integration for wind energy, and bioclimatic high-rise design. His book and journal works extend from evaluating design parameters to proposing new architectural solutions that merge aesthetics with renewable functionality. Dr. Elbakheit’s expertise also extends to teaching, sustainable project consultancy, and reviewing for international journals such as Energy and Buildings and Solar Energy. His contributions have earned recognition through patents for rooftop wind turbine supports and several awards for innovation and research excellence. With consistent involvement in academic, industrial, and policy-related sustainability initiatives, Dr. Elbakheit continues to advance the integration of renewable technologies within the built environment, influencing the global shift toward climate-responsive architecture and resilient urban development.

Featured Publications:

Elbakheit, A. R. (2012). Why tall buildings? The potential of sustainable technologies in tall. International Journal of High-Rise Buildings, 1(2), 117–123.

Elbakheit, A. R. (2019). A ducted photovoltaic façade unit with buoyancy cooling: Part I experiment. Buildings, 9(4), 88.

Elbakheit, A. R. (2018). Effect of turbine resistance and positioning on performance of Aerofoil wing building augmented wind energy generation. Energy and Buildings, 174, 365–371.

Elbakheit, A. R. (2008). Effect of duct width in ducted photovoltaic facades. Proceedings of the CTBUH 8th World Congress, Dubai, UAE, 3–5.

Elbakheit, A. R. (2019). A ducted photovoltaic façade unit with buoyancy cooling: Part II CFD simulation. Buildings, 9(5), 133.

Felipe Campuzano-Diosa | Energy Efficiency | Best Researcher Award

Felipe Campuzano-Diosa | Energy Efficiency | Best Researcher Award

King Abdullah University of Science and Technology - Saudi Arabia

AUTHOR PROFILE

GOOGLE SCHOLAR

SUMMARY

Felipe Campuzano-Diosa is a highly accomplished research scientist specializing in thermochemical energy conversion. Based at King Abdullah University of Science and Technology (KAUST), he contributes to clean energy advancements through cutting-edge research on combustion, pyrolysis, gasification, and fuel upgrading. His expertise spans both renewable and non-renewable resources, supporting sustainable energy solutions. With a career grounded in academic excellence and industrial collaboration, Campuzano-Diosa has developed a profound understanding of power systems and advanced fuel chemistry, making significant contributions to the fields of materials engineering and clean combustion technologies.

EDUCATION

Felipe Campuzano-Diosa holds a Ph.D. in Materials Engineering from the University of Antioquia, where he earned Summa Cum Laude distinction. He also completed an M.Sc. in Energy Systems from Pontificia Bolivariana University and a B.Sc. in Mechanical Engineering from the University of Antioquia. His academic projects focused on pyrolysis, fuel characterization, and combustion, laying a solid foundation for his future research in thermochemical processes. These degrees supported his transition into highly specialized fields such as waste-to-energy, advanced reactor design, and alternative fuel production.

PROFESSIONAL EXPERIENCE

Felipe has worked extensively in both academic and industrial research settings. At KAUST, he currently serves as a Research Scientist and previously worked as a Postdoctoral Fellow and Visiting Researcher. His experience includes collaboration with Air Products and Chemicals on projects such as ammonia cracking and vacuum oil residue gasification. Prior to KAUST, he contributed to reactor design and waste-to-energy projects at institutions in Colombia. Over the years, Felipe has supported technical and experimental activities, mentored students, and actively participated in collaborative international energy research.

RESEARCH INTEREST

Felipe’s research interests lie in thermochemical energy conversion, particularly in pyrolysis, gasification, and combustion processes. He focuses on converting waste into useful energy products, upgrading fuels, and studying their chemical and combustion characteristics. His work includes analyzing advanced fuel properties using FT-ICR MS, NMR, TGA, and GC-MS, and optimizing catalysts and reaction mechanisms. He is especially interested in sustainable energy technologies, non-conventional fuels, and material characterization for cleaner power generation, all directed toward achieving efficient and eco-friendly energy systems.

AWARD AND HONOR

Felipe Campuzano-Diosa has been recognized for his academic and research excellence throughout his career. He received the Summa Cum Laude distinction for his Ph.D. thesis and was awarded multiple scholarships from Colciencias and Pontificia Bolivariana University. His accomplishments also include a prestigious Young Researcher Scholarship and an English language scholarship for advanced academic communication. These honors underscore his dedication to scientific progress, innovation in engineering, and outstanding performance in both research and education.

RESEARCH SKILL

Felipe possesses extensive expertise in designing and operating pyrolysis and combustion reactors, fuel analysis, and advanced material characterization. His technical skills include using sophisticated analytical tools such as FT-ICR MS, SEM, TGA-FTIR, NMR, and GC-MS. He has also contributed to reactor optimization, emissions testing, and catalyst evaluation under extreme conditions. His multidisciplinary approach combines mechanical, chemical, and environmental engineering techniques, allowing him to lead and collaborate on diverse research initiatives in energy and material sustainability.

PUBLICATIONS

Title: Auger reactors for pyrolysis of biomass and wastes
Authors: F. Campuzano, R.C. Brown, J.D. Martínez
Journal: Renewable and Sustainable Energy Reviews, 2019

Title: On the distillation of waste tire pyrolysis oil: A structural characterization of the derived fractions
Authors: F. Campuzano, A.G.A. Jameel, W. Zhang, A.H. Emwas, A.F. Agudelo, ...
Journal: Fuel, 2021

Title: Fuel and chemical properties of waste tire pyrolysis oil derived from a continuous twin-auger reactor
Authors: F. Campuzano, A.G. Abdul Jameel, W. Zhang, A.H. Emwas, A.F. Agudelo, ...
Journal: Energy & Fuels, 2020

Title: Effects of ammonia addition on soot formation in ethylene laminar premixed flames
Authors: C. Shao, F. Campuzano, Y. Zhai, H. Wang, W. Zhang, S.M. Sarathy
Journal: Combustion and Flame, 2022

Title: Possibilities of carbon black recovery from waste tyre pyrolysis to be used as additive in rubber goods – a review
Authors: N. Cardona, F. Campuzano, M. Betancur, L. Jaramillo, J.D. Martínez
Journal: IOP Conference Series: Materials Science and Engineering, 2018

CONCLUSION

Felipe Campuzano-Diosa stands out as a dynamic researcher dedicated to advancing sustainable energy through thermochemical processes. With a strong foundation in engineering and an international research presence, he has contributed significantly to the fields of clean combustion and alternative fuels. His blend of technical depth, collaborative spirit, and innovation positions him as a thought leader in energy engineering. His career exemplifies a commitment to solving real-world energy challenges through scientific excellence and interdisciplinary research.