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Computational study of charge stratification in early-injection SCCI engines under light-load conditions

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Abstract

Under light-load conditions in early-injection stratified-charge compression-ignition (SCCI) engines, excessive premixing can lead to undesirable levels of unburned hydrocarbons (UHC) and carbon monoxide (CO) emissions. Optimal stratification can reduce these emissions. In this work, the effects of changes in swirl, injection pressure, injector hole-size and number of holes, injection timing, and piston geometry on stratification are computationally investigated. It is shown that these parameters affect the stratification through their influence on the rate of spray penetration, drop vaporization, and fuel/air mixing. The outcome is characterized by examining the evolution of the spatial distribution of the fuel vapor in the chamber and its mass-based distribution function. All other parameters remaining the same, decreasing drop size leads to faster vaporization and richer mixtures. Increasing penetration leads to greater spreading and leaner mixtures. Increasing spray included-angle leads to greater spreading and leaner mixtures. Increasing injection pressure leads to increased mixing and leaner mixtures. Increasing injector hole-size leads to richer mixtures at lighter loads because the duration of injection is reduced and the fuel is confined closer to the axis. Increasing swirl leads to faster breakup of the head-vortex and confinement of the fuel closer to the axis, and hence richer mixture.

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References

  • Abraham, J. (1996). Entrainment characteristics of transient gas jets. Numerical Heat Transfer, 30, 347–364.

    Article  Google Scholar 

  • Abraham, J. (1997). What is adequate resolution in the numerical computations of transient jets?. SAE Trans. 106,3, SAE Paper No. 970051, 141–155.

    Google Scholar 

  • Abraham, J., Wey, M.-J. and Bracco, F. V. (1988). Pressure non-uniformity and mixing characterisitics in stratifiedcharge rotary engine combustion. SAE Trans. 97,3, SAE Paper No. 880624, 1146–1159.

    Google Scholar 

  • Abraham, J. and Bracco, F. V. (1989). Fuel air mixing and distribution in a direct-injection stratified-charge rotary engine. SAE Trans. 98,3, SAE Paper No. 890329, 515–526.

    Google Scholar 

  • Abraham, J. and Bracco, F.V. (1992). Combustion optimization computations-Part I: Swirl and squish effects in air-assist injection engines. SAE Trans. 101,3, SAE Paper No. 922240, 1275–1291.

    Google Scholar 

  • Abraham, J., Magi, V., MacInnes, J. and Bracco, F. V. (1994). Gas vs spray injection: Which mixes faster?. SAE Trans. 103,3, SAE Paper No. 940895, 1367–1381.

    Google Scholar 

  • Abraham, J. and Magi, V. (1997). Comparisons of transient jets: RNG k-e model versus standard k-e model. SAE Trans. 106,3, SAE Paper No. 970885, 1442–1452.

    Google Scholar 

  • Amsden, A. A. (2000). KIVA-3V, Release 2: Improvements to KIVA-3V. Los Alamos National Laboratory Report No. LA-UR-99-915.

  • Anders, J. and Abraham, J. (2007). Turbulence and residual gas effects on mixing, combustion, and emissions in split-injection of gaseous fuel. SAE Paper No. 2007-01-0146.

  • Aneja, R. and Abraham, J. (1998). How far does the liquid penetrate in a diesel engine: Computed results vs measurements. Combustion Science and Technology, 138, 233–255.

    Article  Google Scholar 

  • Aumann, R., McCracken, M. and Abraham, J. (2002). An evaluation of a composite model for predicting dropdrop collision outcomes in multidimensional spray computations. SAE Trans. 111,3, SAE Paper No. 2002-01-0943, 1593–1601.

    Google Scholar 

  • Berntsson, A.W. and Denbratt, I. (2007). Optical study of HCCI combustion using NVO and an SI stratified charge. SAE Paper No. 2007-24-0012.

  • Dec, J. E., Hwang, W. and Sjoberg, M. (2006). An investigation of thermal stratification in HCCI engines using chemiluminescence imaging. SAE Paper No. 2006-01-1518.

  • Girard, J. E., Dibble, R. W., Flowers, D. L. and Aceves, S. M. (2002). An investigation of the effect of fuel-air mixedness on the emissions from an HCCI engine. SAE Paper No. 2002-01-1758.

  • Gopalakrishnan, V. and Abraham, J. (2003). An investigation of ignition and heat release characteristics in diesel engines using an interactive flamelet model. SAE Trans. 112,3, SAE Paper No. 2003-01-1062, 1430–1436.

    Google Scholar 

  • Hou, Z.-X. and Abraham, J. (1994). Three-dimensional modeling of soot and NO in a direct-injection diesel engine. SAE Paper No. 941896.

  • Hwang, W., Dec, J. E. and Sjoberg, M. (2007). Fuel stratification for low-load HCCI combustion: Performance & fuel-PLIF measurements. SAE Paper No. 2007-01-4130.

  • Iyer, V., Post, S. and Abraham, J. (2000). Is the liquid penetration in diesel sprays mixing controlled? Proc. Combustion Institute 28,1, 1111–1118.

    Article  Google Scholar 

  • Iyer, V. and Abraham, J. (2003). An evaluation of a twofluid model for sprays. J. Fluids Engineering, 125, 660–669.

    Article  Google Scholar 

  • Magi, V., Iyer, V. and Abraham, J. (2001). The k-e model and computed spreading rates in round and plane jets. Numerical Heat Transfer, Part A: Applications 40,4, 317–334.

    Article  Google Scholar 

  • McCracken, M. E. and Abraham, J. (2002). Characterization of mixing enhancement in swirl-spray interactions in diesel engines. Combustion Science and Technology 174,10, 93–124.

    Article  Google Scholar 

  • O’Rourke, P. J. and Bracco, F. V. (1980). Modeling of drop interactions in thick sprays and a comparison with experiments. The Institution of Mechanical Engineers, Publication 1980–9, 101–116.

  • Premnath, K. N. and Abraham, J. (2002). Dependence of fuel-air mixing characteristics on injection timing in an early-injection diesel engine. SAE Paper No. 2002-01-0944.

  • Siebers, D. L. (1998). Liquid-phase fuel penetration in diesel sprays. SAE Paper No. 980809.

  • Siebers, D. L. (1999). Scaling liquid-phase fuel penetration in diesel sprays based on mixing-limited vaporization. SAE Paper No. 1999-01-0528.

  • Sjoberg, M., Dec, J. E., Babajimopoulos, A. and Assanis, D. (2004). Comparing enhanced natural thermal stratification against retarded combustion phasing for smoothing of HCCI heat-release rates. SAE Paper No. 2004-01-2994.

  • Sjoberg, M. and Dec, J. E. (2005). Effects of engine speed, fueling rate, and combustion phasing on the thermal stratification required to limit HCCI knocking intensity. SAE Paper No. 2005-01-2125.

  • Sjoberg, M., Edling, L.-O., Eliassen, T., Magnusson, L. and Angstrom, H.-E. (2002). GDI HCCI: effects of injection timing and air swirl on fuel stratification, combustion and emissions formation. SAE Paper No. 2002-01-0106.

  • Sjoberg, M. and Dec, J. E. (2006). Smoothing HCCI heatrelease rates using partial fuel stratification with twostage ignition fuels. SAE Paper No. 2006-01-0629.

  • Wilcox, D. C. (1993). Turbulence Modeling for CFD. Ch. 4. DCW Industries, Inc. La Canada. CA.

    Google Scholar 

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Abraham, J. Computational study of charge stratification in early-injection SCCI engines under light-load conditions. Int.J Automot. Technol. 12, 721–732 (2011). https://doi.org/10.1007/s12239-011-0084-y

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  • DOI: https://doi.org/10.1007/s12239-011-0084-y

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