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Numerical Modeling of Combustion Processes and Pollutant Formations in Direct-Injection Diesel Engines
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  • Numerical Modeling of Combustion Processes and Pollutant Formations in Direct-Injection Diesel Engines
  • Numerical Modeling of Combustion Processes and Pollutant Formations in Direct-Injection Diesel Engines
저자명
Kim. Yong-Mo,Lee. Joon-Kyu,Ahn. Jae-Hyun,Kim. Seong-Ku
간행물명
KSME international journal
권/호정보
2002년|16권 7호|pp.1009-1018 (10 pages)
발행정보
대한기계학회
파일정보
정기간행물|ENG|
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이 논문은 한국과학기술정보연구원과 논문 연계를 통해 무료로 제공되는 원문입니다.
서지반출

기타언어초록

The Representative Interactive Flamelet (RIF) concept has been applied to numerically simulate the combustion processes and pollutant formation in the direct injection diesel engine. Due to the ability for interactively describing the transient behaviors of local flame structures with CFD solver, the RIF concept has the capabilities to predict the auto-ignition and subsequent flame propagation in the diesel engine combustion chamber as well as to effectively account for the detailed mechanisms of soot formation, NOx formation including thermal NO path, prompt and nitrous 70x formation, and reburning process. Special emphasis is given to the turbulent combustion model which properly accounts for vaporization effects on the mixture fraction fluctuations and the pdf model. The results of numerical modeling using the RIF concept are compared with experimental data and with numerical results of the commonly applied procedure which the low-temperature and high-temperature oxidation processes are represented by the Shell ignition model and the eddy dissipation model, respectively. Numerical results indicate that the RIF approach including the vaporization effect on turbulent spray combustion process successfully predicts the ignition delay time and location as well as the pollutant formation.