Jihoon Chung
Hanyang University · Engineering
About the Lab
Professor Jihoon Chung's research lab specializes in advanced materials and clean energy systems, with a focus on rare-earth permanent magnets, high-efficiency energy conversion technologies, and sustainable power generation. The lab develops innovative synthesis methods for magnetic materials—such as Nd₂Fe₁₄B nanoparticles—using low-energy processes, while also advancing hybrid energy systems combining fuel cells, gas turbines, and carbon capture technologies. Research spans from nanomaterial synthesis and magnetic property optimization to system-level analysis of gas turbine and fuel cell hybrid cycles for improved efficiency and reduced emissions. The lab also contributes to precision measurement technologies, particularly in motion control and sensor error analysis for high-accuracy manufacturing systems.
Research Overview
Research Output Trend
Figures are computed from collected data and may differ slightly.
Selected Papers
15The Nd2Fe14B alloy has been successfully synthesized by nitrate-citrate auto-combustion followed by the reduction and diffusion process with low energy consumption. H3BO3, Fe(NO3)3·9H2O, and Nd(NO3)3·6H2O were used as precursors and citric acid was used as the chelating ligand of metal ions. Ammonia water was used to adjust pH to 7. CaH2 was used as a reducing agent for the reduction and diffusion process. NdFeO3 and Fe2O3 were produced during auto-combustion of gel. The combustion process of th
Nd<sub>2</sub>Fe<sub>14</sub>B hard phase magnetic nanoparticles were successfully synthesized using a chemical synthesis route followed by a reduction and diffusion process without consuming a large amount of energy.
The effect of hydrogen co-firing on the performance and operating conditions of gas turbines (GTs) and gas turbine combined cycles (GTCCs) was investigated. Two operating scenarios were applied, and off-design analyses were conducted for three GTs with different turbine inlet temperatures (TITs). In the first scenario, the TIT was kept constant. As the hydrogen co-firing ratio increases, the pressure ratio of GT increased, and the power outputs of both GT and GTCC increased. With 100 % hydrogen
The demand for clean energy continues to increase as the human society becomes more aware of environmental challenges such as global warming. Various power systems based on high-temperature fuel cells have been proposed, especially hybrid systems combining a fuel cell with a gas turbine (GT), and research on carbon capture and storage (CCS) technology to prevent the emission of greenhouse gases is already underway. This study suggests a new method to innovatively enhance the efficiency of a molt
Research Areas
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