Best Researcher Award
Jimin Youn
Korea Advanced Institute of Science and Technology, South Korea
| Jimin Youn | |
|---|---|
| Affiliation | Korea Advanced Institute of Science and Technology |
| Country | South Korea |
| Scholar ID | I5NaMdcAAAAJ |
| Documents | 14 |
| Citations | 8 |
| h-index | 1 |
| Subject Area | Thermal Model |
| Event | International Environmental Scientists Award |
Jimin Youn is affiliated with the Korea Advanced Institute of Science and Technology and is associated with research in the area of thermal modeling. The available profile information records 14 documents and identifies Thermal Model as the principal subject area for this recognition profile.
Contents
Abstract
This academic recognition profile presents Jimin Youn’s research association with thermal modeling at the Korea Advanced Institute of Science and Technology. Thermal models are important analytical tools for describing heat transfer, temperature behavior, energy balances, and coupled thermal phenomena in engineering systems.[1]
Keywords
Jimin Youn, Best Researcher Award, Thermal Model, thermal modeling, heat transfer, computational modeling, engineering research, Korea Advanced Institute of Science and Technology.
Introduction
Thermal modeling provides a framework for representing temperature fields and energy transport through mathematical, numerical, and computational approaches. Such models support analysis and design across engineering and scientific applications, particularly where thermal behavior interacts with materials, structures, or operating conditions.[2]
Research Profile
The supplied academic information identifies Jimin Youn with the Korea Advanced Institute of Science and Technology in South Korea and records 14 research documents. The documented subject focus for this profile is Thermal Model, while detailed citation and h-index information has not been supplied.
Research Contributions
Within thermal-model research, contributions may involve mathematical formulation, numerical simulation, parameter analysis, and validation of predicted thermal behavior. These approaches are commonly used to improve understanding of heat-transfer processes and support evidence-based engineering decisions.[3]
Publications
The supplied profile records 14 documents associated with the researcher. Individual publication titles, journals, publication years, and DOI identifiers were not provided in the source data; therefore, no specific publication is attributed here without independent bibliographic verification.
Research Impact
The potential research value of thermal modeling lies in its capacity to connect physical principles with computational prediction and system analysis. Thermal simulation and modeling can contribute to improved system understanding, design optimization, and assessment of energy-related performance.[4]
Award Suitability
The profile provides an academic affiliation, a defined thermal-model subject area, and a documented research output of 14 documents. These details can form part of an award assessment, alongside independently verified evidence concerning research quality, originality, scholarly contribution, and broader relevance.
Conclusion
Jimin Youn’s supplied profile connects research activity at the Korea Advanced Institute of Science and Technology with the field of Thermal Model. The Best Researcher Award profile can serve as a structured academic summary while leaving detailed impact assessment to documented evidence and the award evaluation process.
External Links
References
- Incropera, F. P., DeWitt, D. P., Bergman, T. L., & Lavine, A. S. (2011). Fundamentals of Heat and Mass Transfer. Wiley.
https://doi.org/10.1002/9780470937529 - Jimin Youn, Hyeongjun Kim, Kyeongsu Shi, Kyoungchul Kong (2024). Thermal characteristic modeling and compensation for the improvement of actuator homeostasis
- Versteeg, H. K., & Malalasekera, W. (2007). An Introduction to Computational Fluid Dynamics: The Finite Volume Method. Pearson.
- Jongwon Kim, Abhiraj Singh, Jimin Youn, Hyeongjun Kim, Jeongsu Park, Jinsu Park, Kyoungchul Kong (2025). Optimization of crutch-free walking for a powered exoskeleton considering human adaptation
- Embodied Teaching for Powered Exoskeletons via Variance-Decomposed Impedance Learning
- Active Temperature Limitation Algorithm to Maximize Potential Driving Current Capability of Electric Motors