Han Ho Song
Seoul National University · 化学工学
研究室紹介
Professor Han Ho Song's research lab specializes in advanced internal combustion engine technologies, with a strong focus on low-emission and high-efficiency power systems. Key research directions include homogeneous charge compression ignition (HCCI) engines, particularly through in-cylinder fuel pre-processing and combustion control strategies to extend low-load operation. The lab also investigates hybrid energy systems integrating molten carbonate fuel cells with HCCI engines to improve overall system efficiency and reduce emissions. Additionally, the group conducts well-to-wheel (WTW) greenhouse gas emission analyses for alternative vehicle technologies under future energy policy scenarios, with a regional focus on South Korea.
Research Overview
Research Output Trend
Figures are computed from collected data and may differ slightly.
Selected Papers
15This paper compares the well-to-wheel (WTW) greenhouse gas (GHG) emissions of representative vehicle types–internal combustion engine vehicle (ICEV), hybrid electric vehicle (HEV), plug-in hybrid electric vehicle (PHEV), battery electric vehicle (BEV), and fuel cell electric vehicle (FCEV)–in the future (2030) based on a WTW analysis for the present (2017) and an analysis of various energy policies that could affect future emissions. South Korea was selected as the target region because it has d
In-cylinder pre-processing (or recompression reaction) of pilot-injected fuel during negative value overlap (NVO) has been investigated as a method to extend the low-load limit of residual-effected homogeneous charge compression ignition (HCCI). In an effort to elucidate the chemical and thermal effects involved, model calculations have been performed on the recompression reaction and ignition delay of the recompression products using a reduced n-heptane mechanism (160 reactions, 1424 reactions)
Experiments have been reported in the literature in which the low-load limit of a retention-mode HCCI engine operating on gasoline has been significantly extended by pre-processing of the fuel during negative valve overlap. This paper presents experimental studies in which this low-load-limit extension is demonstrated and characterized using simple, single-component hydrocarbon fuels with relatively well-known chemical kinetics. The model fuels were n-heptane and i-octane and this choice was mad