Paper published in a journal (Scientific congresses and symposiums)
Reduced Chemical Reaction Mechanisms: Experimental and HCCI Modelling Investigations of Autoignition Processes of n-Heptane in Internal Combustion Engines
Machrafi, Hatim; Lombaert, K.; Cavadias, S.et al.
2005 • In Journal of the Society of Automotive Engineers
Machrafi, Hatim ; Université de Liège - ULiège > Département d'astrophys., géophysique et océanographie (AGO) > Thermodynamique des phénomènes irréversibles
Lombaert, K.
Cavadias, S.
Guibert, P.
Language :
English
Title :
Reduced Chemical Reaction Mechanisms: Experimental and HCCI Modelling Investigations of Autoignition Processes of n-Heptane in Internal Combustion Engines
Huang Y., Sung C. J., and Eng J. A., Dilution limits of n-butane/air mixtures under conditions relevant to HCCI combustion. Combust. Flame 2004; 136: 457-466.
Curran H.J., Gaffuri P., Pitz, W.J., and Westbrook C.K., A comprehensive modeling study of iso-octane oxidation. Combust. Flame 2002; 129: 253-280.
Tanaka S., Ayala F., and Keck J.C., A Reduced Chemical Kinetic Model For HCCI Combustion Of Primary Reference Fuels In A Rapid Compression Machine. Combust. Flame 2003; 133: 467-481.
Tanaka S., Ayala, F., Keck J. C., and Heywood J. B., Two-stage ignition in HCCI combustion and HCCI control by fuels and additives. Combust. Flame 2003; 132: 219-239.
Griffiths J. F., MacNamara J. P., Sheppard C. G. W., Turton D. A., and Whitaker B. J., The relationship of knock during controlled autoignition to temperature inhomogeneities and fuel reactivity. Fuel 2002; 81: 2219-2225.
Stan, C., Guibert, P., Thermodynamic aspects of auto-ignition generated combustion AIGC (Part I), MTZ, Part I, 2004
Guibert, P., Mokhtari, S., Morin, C., Experimental analysis of auto-ignition generated combustion AIGC, MTZ, Part II, 2004
ikas G., and Peters N., Kinetic Modelling of n-Decane Combustion and Autoignition. Combust. Flame 2001; 126: 1456-1475.
Li, H., Miller, D.L., Cernansky N.P., 1996 Society of Automotive Engineers SAE- http://www.sae.org/technical/papers/960498 960498
Zheng, W., Yang, D.L., Miller, N.P., Cernansky 2002 Society of Automotive Engineers 2002-01-0423
Glassman I., Combustion, third edition, Academic Press; 1996.
Blin-Simiand N., Rigny R., Viossat V., Circan S., and Sahetchian K., Auto-ignition of hydrocarbon/air mixtures in a CFR engine: experimental and modeling study, Combust Sci Technol 1993; 88: 329-348.
Ogink R., and Golovitchev V., Generalized skeletal reaction mechanism for Aliphatic hydrocarbons (from methane to iso-octane) for CFD Engine Modeling. First Biennial Meeting of The Scandinavian-Nordic Section of the Combustion Institute, Göteborg, Sweden, 2001: 151-156.
Soyhan, H.S., Mauss F., and Sorusbay C., Chemical Kinetic Modeling of Combustion in Internal Combustion Engines Using Reduced Chemistry 2002 Combustion Science and Technology 174 (11&12) 73-91.
Lewis B., and Von Elbe G., Combustion, Flames and Explosions of Gases, 3rd edition, Academic Press; 1987.
Aneja R., Bolton B., Hakim N., and Pavlova-Mackinnon Z., Attaining Tier 2 Emissions Through Diesel Engine and Aftertreatment Integration-strategy and experimental results. Eighth Diesel Engine Emissions Reduction Conference-Detroit; 2002.
Senthil Kumar, M., Ramesh, A., Nagalingam B., Use of hydrogen to enhance the performance of a vegetable oil fuelled compression ignition engine 2002 International Journal of Hydrogen Energy 28 1143-1154.
Gauthier, B.M., Davidson, D.F., Hanson R.K., Shock tube determination of ignition delay times in full-blend and surrogate fuel mixtures 2004 Combustion and Flame 139 300-311.
Fieweger, K., Blumenthal R., and Adomeit G., Self-ignition of S.I. Engine Model Fuels: A Shock Tube Investigation at High Pressure 1997 Combustion and Flame 109, 599-619.
Horning, D.C., Davidson, D.F., Hanson, R.K., Study of the High-Temperature Autoignition of n-Alkane/O/Ar Mixtures 2002 Journal Propulsion Power 18, 363-371.
Golovitchev V semi-detailed mechanism of n-heptane,. www.tfd.chalmers.se/~valeri/MECH.html janv-04
Warnatz J., Maas U., and Dibble R.W., Combustion Physical and chemical fundamentals, modelling and simulation, experiments, pollutant formation, 2000, 3rd. edition. Springer
Banerjee I., and Ierapetritou M. G., Development of an adaptive chemistry model considering micromixing effects 2003 Chem. Eng. Sci 58 4537-4555.
Dixon-Lewis G., Computer modeling of combustion reactions in flowing systems with transport: combustion chemistry 1984 Springer-Verlag
Lovas T., Nilsson D., and Mauss F., Automatic reduction procedure for chemical mechanisms applied to premixed methane/air flames 2000 Twenty-Eighth Symposium (International) on Combustion 1809-1815.
Simon Y., Scacchi G., and Baronnet F., Etude des réactions d'oxydation du n-heptane et de l'isooctane 1996 Can. J. Chem. 74 1391-1402.
Curran, H. J., Gaffuri, P., Pitz, W. J., and Westbrook, C. V. Callahan, and Dryer F. L., Complete mechanism for the oxidation of n-heptane,. http://www-cms.llnl.gov/combustion/combustion2.html#n-C7H16-detailed-mechanism December 2004
Kee Robert J., Coltrin Michael E., and Glarborg Peter, Chemically Reacting Flow: Theory and Practice 2003 John Wiley and Sons, Hoboken, New Jersey