Ji-Hun Park | Structural Engineering | Best Researcher Award
Dr. Ji-Hun Park, Korea Institute of Civil Engineering and Building Technology, South Korea.
Dr. Ji-Hun Park, a dedicated researcher at the Korea Institute of Civil Engineering and Building Technology (KICT), specializes in materials and structural engineering.
Having earned his Bachelor’s, Master’s, and Ph.D. degrees from Kunsan National University, he has made significant contributions to sustainable construction through innovations in concrete materials, structural behavior, and thermal energy storage technologies.
His work extends to 3D printing applications and photocatalyst-based solutions for environmental challenges, with over 14 SCI-indexed publications.
Passionate about advancing civil engineering, Ji-Hun’s contributions bridge foundational research and practical applications. ![🌱](https://fonts.gstatic.com/s/e/notoemoji/16.0/1f331/32.png)
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![🔬](https://fonts.gstatic.com/s/e/notoemoji/16.0/1f52c/32.png)
![📚](https://fonts.gstatic.com/s/e/notoemoji/16.0/1f4da/32.png)
![🌱](https://fonts.gstatic.com/s/e/notoemoji/16.0/1f331/32.png)
Publication profile
Orcid
Education and Experience
Bachelor’s Degree: Materials Engineering, Kunsan National University
Master’s Degree: Structural Engineering, Kunsan National University
Ph.D.: Structural Engineering, Kunsan National University
Current Position: Researcher at the Department of Structural Engineering Research, KICT
Suitability For The Award
Dr. Ji-Hun Park is a distinguished candidate for the Best Researcher Award, showcasing an exceptional academic and professional trajectory in the field of Materials and Structural Engineering. With a strong foundation built at Kunsan National University and a prominent role at the Korea Institute of Civil Engineering and Building Technology, Dr. Park has significantly advanced innovative and sustainable construction solutions.
Professional Development
Publications Top Notes
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Friction Behavior of Ceramic Materials for the Development of Bridge-Bearing Friction Materials (2024)
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A Feasibility Study on the Lateral Behavior of a 3D-Printed Column for Application in a Wind Turbine Tower (2023)