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Modeling the Effects of Fuel Spray Characteristics on Diesel Engine Combustion and Emission

Mark PattersonRolf D. Reitz

Abstract

<div class="htmlview paragraph">A new spray model has been developed to improve the prediction of diesel engine combustion and emissions using the KIVA-II CFD code. The accuracy of modeling the spray breakup process has been improved by the inclusion of Rayleigh-Taylor accelerative instabilities, which are calculated simultaneously with a Kelvin-Helmholtz wave model. This model improves the prediction of the droplet sizes within a diesel spray and provides a more accurate initial condition for the evaporation, combustion, and emissions models. An improvement to the droplet drag model is also presented. This model accounts for the increased droplet drag due to the change in the droplet's shape, as well as the increase in the frontal area of the droplet. The drag model affects the breakup process locally, producing a more realistic droplet size distribution, and therefore a more accurate calculation of the vaporization process. Through the introduction of this model the prediction of the pressure, heat release, and emissions produced by single and split injections can now be accurately modeled.</div>

Advanced Combustion Engine TechnologiesVehicle emissions and performanceBiodiesel Production and ApplicationsCombustionAutomotive engineeringDiesel fuelDiesel engineHomogeneous charge compression ignitionSpray characteristicsEnvironmental scienceDiesel cycleInternal combustion engineWaste management
Citations
564
FWCI
10.37
field-weighted impact
References
17
Percentile
99%
vs. same field & year
Citations per year
References
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SAE technical papers on CD-ROM/SAE technical paper series · 1994 · 331 citations
The Tab Method for Numerical Calculation of Spray Droplet Breakup
SAE technical papers on CD-ROM/SAE technical paper series · 1987 · 1,177 citations
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Modeling the Effects of Fuel Spray Characteristics on Diesel Engine Combustion and Emission · Scinovex