HangJin Jo
Pohang University of Science and Technology · Engineering
About the Lab
Professor HangJin Jo's research lab specializes in thermal-fluid sciences with a focus on advanced heat transfer mechanisms, particularly nucleate boiling and condensation on structured surfaces. The lab investigates the fundamental physics of phase change heat transfer using nano/microstructured and biphilic surfaces to enhance heat transfer performance and critical heat flux. Key research directions include surface wettability engineering, bubble dynamics, and the development of high-efficiency heat exchangers for advanced energy systems such as sodium-cooled fast reactors. The lab also emphasizes practical applications through thermal-hydraulic performance evaluation and economic optimization of compact heat exchangers.
Research Overview
Research Output Trend
Figures are computed from collected data and may differ slightly.
Selected Papers
15A study of nucleate boiling phenomena on nano/microstructures is a very basic and useful study with a view to the potential application of modified surfaces as heating surfaces in a number of fields. We present a detailed study of boiling experiments on fabricated nano/microstructured surfaces used as heating surfaces under atmospheric conditions, employing identical nanostructures with two different wettabilities (silicon-oxidized and Teflon-coated). Consequently, enhancements of both boiling h
We investigated nucleate boiling heat transfer with precisely controlled wetting patterns and micro-posts, to gain insights into the impact of surface heterogeneity. To create heterogeneous wetting patterns, self-assembled monolayers (SAMs) were spatially patterned. Even at a contact angle <90°, bubble nucleation and bubble frequency were accelerated on SAM patterns, since this contact angle is larger than that found on plain surfaces. Micro-posts were also fabricated on the surface, whic
Condensed liquid behavior on hydrophobic micro/nano-structured surfaces is a subject with multiple practical applications, but remains poorly understood. In particular, the loss of superhydrophobicity of hydrophobic micro/nanostructures during condensation, even when the same surface shows water-repellant characteristics when exposed to air, requires intensive investigation to improve and apply our understanding of the fundamental physics of condensation. Here, we postulate the criterion require
In this study, we evaluate the thermal-hydraulic performance and economics of Printed Circuit Heat Exchanger (PCHE) according to the channel types and associated shape variables for the design of recuperators with Sodium-cooled Fast Reactors (SFRs). To perform the evaluations with variables such as the Reynolds number, channel types, tube diameter, and shape variables, a code for the heat exchanger is developed and verified through a comparison with experimental results. Based on the code, the v
Research Areas
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