TY - JOUR
T1 - Numerical analysis of diesel combustion with high EGR and high boost pressure using a multi-dimensional CFD code coupled with complex chemistry analysis
AU - Takada, Keishi
AU - Kusaka, Jin
PY - 2008/1/1
Y1 - 2008/1/1
N2 - In this study, fuel ignition timing parameters, in-cylinder pressure and heat release rates, and quantities of major exhaust gas emissions from a diesel engine were calculated using multi-dimensional CFD codes coupled with complex chemistry analysis. In addition, a sensitivity analysis of parameters was conducted to identify the major variables affecting these diesel combustion parameters. Firstly, diesel combustion analysis under typical operating conditions was carried out to validate the analytical methods used in the study, and then the effects of intake gas variables (e.g. temperature, and pressure) were investigated in detail in the sensitivity analysis. The results show that the main determinant of ignition timing in the engine is the spatial density of oxygen in the cylinder. This finding indicates that diesel combustion with high EGR and high boost pressure can provide both high thermal efficiency and low emissions.
AB - In this study, fuel ignition timing parameters, in-cylinder pressure and heat release rates, and quantities of major exhaust gas emissions from a diesel engine were calculated using multi-dimensional CFD codes coupled with complex chemistry analysis. In addition, a sensitivity analysis of parameters was conducted to identify the major variables affecting these diesel combustion parameters. Firstly, diesel combustion analysis under typical operating conditions was carried out to validate the analytical methods used in the study, and then the effects of intake gas variables (e.g. temperature, and pressure) were investigated in detail in the sensitivity analysis. The results show that the main determinant of ignition timing in the engine is the spatial density of oxygen in the cylinder. This finding indicates that diesel combustion with high EGR and high boost pressure can provide both high thermal efficiency and low emissions.
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U2 - 10.4271/2008-01-1637
DO - 10.4271/2008-01-1637
M3 - Conference article
AN - SCOPUS:85072458268
SN - 0148-7191
JO - SAE Technical Papers
JF - SAE Technical Papers
T2 - 2008 SAE International Powertrains, Fuels and Lubricants Congress
Y2 - 23 June 2008 through 25 June 2008
ER -