J. B. Heywood and F. Douce, Internal Combustion Engine Fundamentals Développement de la technique Incandescence Induite par Laser " pour caractériser les particules de suies dans un moteur DieselOrléans (France), 2006. [4] T. Feng. Numerical Modelling of Soot and NOx Formation in Non- Stationary Diesel Flames with Complex Chemistry Etude de la formation des particules de suie à partir des constituants représentatifs du gazole Annual European Community LRATP Convention emission inventory report 1990-2006 [7] Emissions de l'air en France-métropole ? Substances relatives à l'acidification, l'eutrophisation et à la pollution photochimique ? mai, Bibliographie [1] Glassman. Combustion Thèse de doctorat Thèse de doctorat Thèse de doctorat, 1996.

M. Guillou and C. , Bradley Fuel consumption testing to verify the effect of tire rolling resistance on fuel economy SAE paper, pp.2010-2011

]. S. Pagerit, P. Sharer, and A. , Rousseau Fuel economy sensitivity to vehicle mass for advanced vehicle powertrains SAE paper, pp.2006-2007

R. D. Diesel14-]-j and . Anderson, Die Entstehung des Dieselmotors The basics with applications, 1913.

T. Poinsot and D. Veynante, Theoretical and Numerical Combustion [16] N. Peters. Turbulent Combustion [17] N. Peters. Laminar Diffusion Flamelet Models in Non-Premixed Turbulent Combustion, Progress in Energy and Combustion Science, vol.10, pp.319-339, 1984.

]. O. Nelles, A. Fink, R. Isemann-]-g, J. M. Deyfus, M. Martinez et al., Chemkin II : A fortran Program For Predicting Homogeneous Gas Phase Chemical Kinetics With Sensibility Analysis, Local Linear Model Trees (Lolimot) tollbox for nonlinear system identification. » 12th IFAC Symposium on System Identification Reseaux de Neuronnes », Eyrolles NSRDS-NB537, U.S. National Bureau of Standars Sprak Advance Modeling and Control Caillol. Influence de la Composition du Gaz Naturel Carburant sur la Combustion Turbulente en Limite Pauvre dans les Moteurs à Allumage Commandé25] Hwa Chan, J. Zhu, Modelling of engine in-cylinder thermodynamics underhigh values of ignition retard, 1971.

C. R. Ferguson, S. Richard, G. Bougrine, F. Font, F. L. Lafossas et al., On the Reduction of a 3D CFD Combustion Model to Build a Physical 0D Model for Simulating Heat Release, Knock and Pollutants in SI Engines, Internal Combustion Engines Oil & Gas Science and Technology, in press, vol.64, issue.3, pp.223-242, 1986.

M. Rivas, P. Higelin, C. Caillol, and V. Talon, Validation and Application of a New 0D Flame/Wall Interaction Sub Model for SI Engines, SAE International Journal of Engines, vol.5, issue.3, pp.2011-2012, 20119150.
DOI : 10.4271/2011-01-1893

URL : https://hal.archives-ouvertes.fr/hal-00680448

S. Verhelst, C. G. Sheppard, and G. De-soete, Multi Zone Thermodynamics Modelling of Spark-ignition engine combustion-An overview, Energy Conversion and Management, inpress Overall Reaction Rates of NO and N2 Formation from Fuel Nitrogen " -Pittsburgh : [s.n, Proceedings 15th (Intl.) Symp. on. Combustion, pp.1093-1102, 1974.

]. M. Lapuerta, J. J. Hernandez, and O. Armas, Kinetic Modelling of Gaseous Emissions in a Diesel Engine, SAE Technical Paper Series, 2000.
DOI : 10.4271/2000-01-2939

S. H. Mansouri, Y. Bakhshan, M. V. Kuhlmann-raggi, and J. Sodré, Studies of Nox, CO, soot formation and oxydation from a direct injection stratified-charge engine, In press, Model for Kinetic Formation of CO Emissions in Internal Combustion Engines " SAE Paper, pp.2003-2004

J. B. Heywood, J. M. Higgins, P. A. Watts, and R. J. Tabaczynski, Development and Use of a Cycle Simulation to Predict SI Engine Efficiency and NOx Emissions, SAE Technical Paper Series, 1979.
DOI : 10.4271/790291

J. A. Gatowski, E. N. Chun, F. E. Ekchian, J. B. Heywood, R. M. Siewert et al., Annand, «Heat transfer in the cylinders of reciprocating internal combustion engine « heat release analysis of engine pressure data, SAE Paper 841359 A Phenomenological Engine Model for Direct Injection of Liquid Fuels, Spray Penetration, Vaporization, Ignition Delay, and Combustion Universal Diesel Engine Simulator (UniDES): 1st Report: Phenomenological Multi- Zone PDF Model for Predicting the Transient Behavior of Diesel Engine Combustion A PDF-Based Model for Full Cycle Simulation of Direct Injected Engines Accurate prediction of the rate of heat release in a modern direct injection diesel engine, Proc. Inst. Mech. Eng. SAE Technical Paper SAE Technical Paper Proc Instn Mech Engrs, vol.17753, issue.216, pp.663-675, 1606.

I. Arsie, F. D. Genova, C. Pianese, M. Sorrentino, G. Rizzo et al., Development and Identification of Phenomenological Models for Combustion and Emissions of Common-Rail Multi-Jet Diesel Engines, SAE Technical Paper Series, pp.2004-2005, 2004.
DOI : 10.4271/2004-01-1877

F. Payri, J. Benajes, F. V. Tinaut, N. Miyamoto, T. Chikahisa et al., A phenomenological combustion model for direct-injection, compression-ignition engines, Applied Mathematical Modelling, vol.12, issue.3, pp.293-304, 1970.
DOI : 10.1016/0307-904X(88)90037-6

URL : http://doi.org/10.1016/0307-904x(88)90037-6

]. A. Boula, Y. Genninasca, A. Charlet, P. Higelin-]-f, M. Chmela et al., Ecutest ? A real-time engine simulator for ECU development and testing. SAE Technical Paper Prediction of Turbulence Controlled Combustion in Diesel Engines ROHR Simulation for DI Diesel Engines Based on Sequential Combustion Mechanisms. SAE technical paper 2006-01-0654, Boulouchos et M. Bargende. A Phenomenological Combustion Model for Heat Release Rate Prediction in Hiugh-Speed DI Diesel Engines with Common-Rail Injection. SAE technical paper, 1911.

]. A. Maiboom, X. Tauzia, J. F. Hétet, M. Cormeraisflynn, R. P. Durett et al., A conceptual Model of D.I. Diesel Combustion Based on Laser- Sheet Imaging Diesel Combustion: An Integrated View Combining Laser Diagnostics, Chemical Kinetics, and Empirical Validation. SAE Technical paper 1999-01-0509 Effects of Gas Density and Vaporization on Penetration and Dispersion of Diesel Sprays. SAE technical paper 960034 [67] D. L. Siebers. Liquid-phase fuel penetration in diesel sprays Flame Lift-off on Direct-Injection Diesel Sprays under Quiscent conditions. SAE technical paper Model for predicting air-fuel mixing, combustion and emissions in DI diesel engines over whole operating range. technical paper Use of Multi-Zone DI Diesel Spray Combustion Model for Simulation and Optimization of Performance and Emissions of Engines with Multiple Injection « Développement d'une modélisation phénoménologique de chambres de combustion de moteurs à piston par réduction de modèle physique 3D dans la perspective d'une intégration dans un outil de simulation système, Thèse de doctorat Mauviot, A. Albrecht et T. Poinsot. A New 0D Approach for Diesel Combustion Modeling Coupling Probability Density Function with Complex Chemistry. SAE technical paper74] A. Dulbecco, F.A. Lafossas et T. Poinsot. A 0D Phenomenological Approach to Model Diesel HCCI Combustion with Multi-Injection Strategies Using Probability Density Functions and Detailed Tabulated Chemistry Oil & Gas Science and Technology Modeling of Diesel HCCI Combustion and Its Impact on pollutant Emissions, pp.1319-1348, 1996.

P. B. Mark, K. Musculus, and . Kattke, Entraiement Waves in Diesel Jets. SAE technical paper, 1355.

M. Jia, D. Hou, J. Li, M. Xie, and H. Liu, A Micro-Variable Circular Orifice Fuel Injector for HCCI-Conventional Engine Combustion - Part I Numerical Simulation of Cavitation, SAE Technical Paper Series, 2007.
DOI : 10.4271/2007-01-0249

D. L. Siebers, Scaling Liquid-Phase Fuel Penetration in Diesel Sprays Based on Mixing-Limited Vaporization, SAE Technical Paper Series, 1999.
DOI : 10.4271/1999-01-0528

G. M. Bruneaux-]-l, J. J. Pickett, and . Lopez, Mixing Process in High Pressure Diesel Jets by Normalized Laser Induced Exiplex Fluorescence. Part II: Wall Impinging Versus Free Jet Jet-Wall Interaction Effects on Diesel Combustion and Soot Formation, SAE Technical Paper, vol.82, 2005.

H. Hiroyazu, SPRAY BREAKUP MECHANISM FROM THE HOLE-TYPE NOZZLE AND ITS APPLICATIONS, Atomization and Sprays, vol.10, issue.3-5, pp.511-527, 2000.
DOI : 10.1615/AtomizSpr.v10.i3-5.130

L. M. Pickett, S. Kook, and T. C. Williams, Visualization of Diesel Spray Penetration, Cool-Flame, Ignition, High-Temperature Combustion, and Soot Formation Using High-Speed Imaging, SAE International Journal of Engines, vol.2, issue.1, 2009.
DOI : 10.4271/2009-01-0658

H. Hiroyasu and M. Arai, Structures of Fuel Sprays in Diesel Engines, SAE Technical Paper Series, 1990.
DOI : 10.4271/900475

P. L. Hay, . D. Jones86-]-r, F. B. Reitz, F. Bracco, N. Ruiz et al., Comparaison of the Various Correlations for Spray Penetration On the Dependence of Spray Angle and Other Spray Parameters on Nozzle Design and Operating Conditions Parametric Experiments on Liquid Jet Atomization Spray Angle Basis for the Comparison of Various Experimental Methods for Studying Spray Penetration, SAE International Atomization and Sprays, vol.189, pp.23-45, 1971.

J. M. Arregle, J. V. Pastor, and S. Ruiz, The Influence of Injection Parameters on Diesel Spray Characteristics, SAE Technical Paper Series, 1999.
DOI : 10.4271/1999-01-0200

J. C. Beale and R. D. Reitz, Modeling Spray Atomization with the Kelvin- Helmholtz/Rayleigh-Taylor Hybrid Model, Atomization and Sprays, vol.9, pp.623-650, 1999.

W. Bryzik, A. Altreya, L. L. Santos, and . Moyne, Analysis of Current Spray Penetration Models and Proposal of a Phenomenological Cone Penetration Model, SAE paper 960773 Spray Atomization Models in Engine Applications, from Correlations to Direct Numerical Simulations " Oil & Gas Science and Technology, in press, 2011., [93] Engine Combustion Network and Sandia National Laboratories online database Atomization and Sprays. Combustion: An International Series Series Studies of the Penetration of a Fuel Spray in a Diesel Engine, Bull. J.S.M.E, vol.3, issue.9, pp.123-130, 1960.

S. S. Sazhin, G. Feng, and &. M. Heikal, A model for fuel spray penetration, Fuel, vol.80, issue.15, pp.2171-2180, 1962.
DOI : 10.1016/S0016-2361(01)00098-9

G. E. Cossali, G. Brunello, and A. Coghe, LDV Characterization of Air Entrainment in Transient Diesel Sprays, SAE Technical Paper Series, pp.1991-99, 910178.
DOI : 10.4271/910178

G. E. Cossali, A. Coghe, G. E. Brunello-]-g, A. Cossali, G. Coghe et al., Effect of spray-wall interaction on air entrainment in a transient Diesel spray Effect of gas density and temperature on air entrainment in a transient Diesel spray A phenomenological combustion model for directinjection, compression-ignition engines, SAE Technical Papers Series, (930920), 1988.

]. Y. Wakuri, M. Fujii, T. Amitani, and &. R. Tsuneya, Studies on the Penetration of Fuel Spray in a Diesel Engine, Bulletin of JSME, vol.3, issue.9, pp.123-130, 1960.
DOI : 10.1299/jsme1958.3.123

F. P. Ricou, D. B. Spalding, L. M. Pickett, S. Kook, and T. C. Williams, Measurements of Entrainment by Axisymmetrical Turbulent jets Transient Liquid Penetration of Early-Injection Diesel Sprays, J. Fluid Mech, vol.11105, issue.21, pp.2009-2010, 1961.

J. T. Higelin and P. , Moteur à allumage par compression, Techniques de l'ingénieur : Modélisation du cycle moteur BM 2, p.516

A. Albrecht, G. Corde, V. Knop, H. Boie, M. E. Castagne et al., 1D Simulation of Turbocharged Gasoline Direct Injection Engine for Transient Strategy Optimization, SAE Technical Paper Series, pp.879-886, 1958.
DOI : 10.4271/2005-01-0693

. Sazhin, Modelling of heating, evaporation and ignition of fuel droplets: combined analytical, asymptotic and numerical analysis, Journal of Physics: Conference Series, vol.22, pp.174-193, 2005.
DOI : 10.1088/1742-6596/22/1/012

D. B. Spalding, The combustion of liquid fuels [110] G. Faeth " Current Status of Droplet and Liquid Combustion, Fourth Symposium (International) on Combustion, pp.847-864, 1953.

G. A. Godsave, Studies of the combustion of drops in a fuel spray: the burning of single drops of fuel The role of droplet fragmentation in high-pressure evaporating diesel sprays, Fourth international Symposium on combustion, Williams and Wilkins 1992. [113] S. Tonini, M. Gavaises, A. Theodorakakos, p.818, 1953.

F. V. Tinaut, F. Payri, and J. Benajes, A phenomenological combustion model for directinjection, compression-ignition engines, Appl. Math. Modelling, vol.12, 1988.

S. Sazhin, V. Levashov, A. P. Kryukov, ». Cours, ]. F. Dunod-paris117 et al., Steady-state and Transient Operation Simulation of a Downsized Turbocharged SI Engine SAE Technical Paper 2007-01-0381 3D-1D Analyses of the Turbulent Flow Field, Burning Speed and Knock Occurence in a Turbocharged SI Engine Diesel-Spray Ignition and Premixed-Burn Behavior Combustion dans les moteurs Diesel Potential of Premixed Combustion With Flash Late Injection On a Heavy-Duty Diesel Engine, Mécanique des fluides Effects of Rail Pressure, Pilot Scheduling and EGR Rate on Combustion and Emissions in Conventional and PCCI Diesel Engines " SAE Technical Paper, pp.2541-2549, 1109.

]. K. Nishida, W. Zhang, T. Manabe-]-k, Y. Akihama, M. Takatori et al., Effects of Micro-Hole and Ultra- High Injection Pressure on Mixture Properties of D.I Diesel Spray Mechanism of the smokeless Rich Diesel Combustion by reducing temperature " SAE Technical Paper Non-Sooting, Low Flame Temperature Mixing controlled DI Diesel Combustion Ultra-clean Combustion Technology Combining a Low Temperature and Premixed Combustion Concept for Meeting Future Emission Standards, Pasternak, F. Mauss, and H. Bensler, " A PDF-Based Model for Full Cycle Simulation of Direct Injected Engines " SAE Technical Paper, 1606.

F. Mauss, M. Pasternak, and H. Bensler, Diesel Engine Cycle Simulation with a Reduced Set of Modeling Parameters Based on Detailed Kinetics " SAE Technical Paper, 2009.

J. T. Farrell, N. P. Cernansky, F. L. Dryer, C. K. Law, D. G. Friend et al., Development of an Experimental Database and Kinetic Models for Surrogate Diesel Fuels " . SAE technical paper A predictiveignition delay correlation under steady-state and transient operation of a direct injection diesel engine Proceedings of the 1999 Fall Conference of the ASME Internal Combustion Engine Division Development and Use of a Spray Combustion Modeling to Predict Diesel Engine Efficiency and pollutant Emissions Development of a Zero-dimensional Model for Application to Small Bore Diesl Engines Validation and Sensitivity analysis of two zone Diesel engine model for combustion and emissions prediction, Modélisation Réduite de la Combustion Homogène Diesel: Development d'un modèle Zero Dimensionnel De combustion HCCI sans Cinétique Chimique Thèse de doctorat, pp.1-10, 1983.

H. J. Curran, P. Gaffuri, and C. Westbrook, A Comprehensive Modeling Study of n-Heptane Oxidation, Combustion and Flame, vol.114, issue.1-2, pp.149-177, 1998.
DOI : 10.1016/S0010-2180(97)00282-4

H. J. Curran, C. K. Pitz, C. V. Westbrook, F. L. Callahan, and . Dryer, Oxidation of Automotive Primary Reference Fuels at Elevated Pressures Experimental and detailed kinetic modeling study of the mutual sensitization of the oxidation of nitric oxide, ethane and ethylene, Proceedings of the Combustion Institute, pp.379-387, 1998.

H. J. Curran, P. Gaffuri, W. J. Pitz, and W. C. , A comprehensive modeling study of iso-octane oxidation, Combustion and Flame, vol.129, issue.3, pp.253-280, 2002.
DOI : 10.1016/S0010-2180(01)00373-X

H. Seiser, H. Pitsch, K. Seshadri, W. J. Pitz, and H. J. Curran, Extinction and Autoignition of n-heptane in Conterflow Configuration Effect of Strain Rate on High- Pressure Nonpremixed n-heptane Autoignition in Conterflow, Proceedings of the Combustion Institute, pp.2029-2037, 2000.

U. Maas and S. B. Pope, Simplifying chemical kinetics; intrinsic lowdimensional manifolds in composition space, Combustion and flame, vol.88142, pp.239-264, 1992.

S. B. Pope, adaptive tabulation, Combustion Theory and Modelling, vol.1, issue.1, pp.41-63, 1997.
DOI : 10.1080/713665229

J. Nafe and U. Maas, Hierarchical generation of IDLM of higher hydrocarbons, Combustion and Flame, vol.135144, pp.17-26, 2003.

O. Giquel, N. Darabiha, and D. Thevenin, Laminar premixed hydrogen/air counterflow flame simulation using flame prolongation of IDLM with differential diffusion " In proceeding of the combustion institute, 1901.

P. Da-cruz and A. , THREE-DIMENSIONAL MODELING OF SELF-IGNITION IN HCCI AND CONVENTIONAL DIESEL ENGINES, Combustion Science and Technology, vol.176, issue.5-6, pp.867-887, 2004.
DOI : 10.1016/S0082-0784(00)80554-8

O. Colin, A. Pires-da-cruz, and S. Jay, Detailed chemistry based autoignition model including low temperature phenomena applied to 3D engine calculations, Proceedings of the Combustion Institute, pp.2649-2656, 2005.
DOI : 10.1016/j.proci.2004.08.058

G. Subramanian, A. Pires-da-cruz, O. Colin, and L. Vervisch, Modeling Engine Turbulent Auto-Ignition Using Tabulated Detailed Chemistry, SAE Technical Paper Series, 2007.
DOI : 10.4271/2007-01-0150

R. J. Kee, F. M. Rupley, J. A. Miller, . De, and . Soete, Chemkin-II: A Fortran Chemical Kinetics Package for the Analysis of Gas-phase Chemical Kinetics, 1976.

O. Colin, A. Benkenida, A. Lutz, R. J. Kee, and J. A. Miller, The 3-zones extended coherent flame model (ECFM3Z) for computing premixed/diffusion combustion " , Oil & Gas Science and Technology Senkin: A Fortran Program for Predicting Homogeneous Gas Phase Chemical Kinetics with Sensitivity Analysis, pp.593-609, 1987.

B. Fiorina, O. Gicquel, L. Vervish, S. Carpentier, and . Darabiha, Approximating the chemical structure of partially remixed and diffusion counterflow flames using FPI flamelet tabulation », Combustion and Flame, vol.140154, issue.3, pp.147-160, 2005.

J. Galpin, « Modélisation LES de la combustion avec une prise en compte des effets de cinétique détaillée et en perspective d'application moteur, Thèse de doctorat, 2007.

Z. Han, A. Uludogan, G. J. Hampson, and R. D. Reitz, Mechanism od Soot and Nox Emission Reduction Using Multiple-injection in Diesel Engine, 1996.

M. Chan, S. Das, and R. D. Reitz, Modeling Multiple Injection and EGR Effects on Diesel Engine Emissions, SAE Technical Paper Series, 1997.
DOI : 10.4271/972864

J. K. Yeom, K. Ashida, J. Senda, H. Fujimoto, and D. T. , Analysis of Diesel Spray Structure by Using a Hybrid Model of TAB Breakup Model and Vortex Method, SAE Technical Paper Series
DOI : 10.4271/2001-01-1240

B. Reveille, A. Kleemann, V. Knop, and C. Habchi, Potential of Narrow Angle Direct Injection Diesel Engines for Clean Combustion: 3D CFD Analysis, SAE Technical Paper Series, 1365.
DOI : 10.4271/2006-01-1365

M. E. Mccracken and J. Abraham, Swirl-Spray Interactions in a Diesel Engine, SAE Technical Paper Series, 2001.
DOI : 10.4271/2001-01-0996

P. S. Mehta, T. B. Rakopoulos, C. D. Hountalas, and D. T. , Effect of Swirl and Fuel Injection Characteristics on Premixed Phase of Diesel Combustion Development of a New 3D Multi- Zone Combustion Model for Indirect Injection Diesel Engines with a Swirl Type Prechamber, 1998.

Y. Long, H. G. Sawa, and H. Hiroyasu, The Simulation of the Distribution of Temperature and Mass of Liquid and Vapor Fuels, and the Wall Impiging Spray Pattern in a Diesel Combustion Chamer, SAE Technical Paper, 1887.

J. C. Guibet, Carburant et moteurs

K. Nishida and H. Hiroyasu, Simplified three-dimensional modeling of mixture formation and combustion in a DI Diesel engine, 1989.

Y. Long, H. Sawa, and H. Hiroyasu, The Simulation of the Distribution of Temperature and Mass of Liquid and Vapor Fuels, and the Wall Impinging Spray Pattern in a Diesel Combustion Chamber, SAE Technical Paper Series, 1887.
DOI : 10.4271/2000-01-1887

T. Yoshizaki, K. Yuzaki, H. Hiroyasu, H. Yamashita, and K. Kaneda, Model Verification of the Evaporating Diesel Spray Distribution in the Combustion Chamber of a D.I. Diesel Engine, SAE Technical Paper Series, 1996.
DOI : 10.4271/962054

D. T. Hountalas, V. T. Lamaris, E. G. Pariotis, and H. Ofner, Parametric Study Based on a Phenomenological Model to Investigate the Effect of Post Fuel Injection on HDDI Diesel Engine Performance and Emissions-Model Validation Using Experimental Data " SAE Technical Paper, 2008.

Z. Sahim and O. Durgun, Multi zone combustion modeling for the prediction of Diesel engine cycles and engine performance parameters, Applied Thermal Engineering, vol.28170, pp.2245-2256, 2008.

S. M. Shahed, P. F. Flynn, and W. T. Lyn, A Model for the formation of emissions in a direct-injection diesel engine Combustion Modeling in reciprocating Engines, pp.345-368, 1980.

C. D. Rakopoulos, K. A. Antonopoulos, D. C. Rakopoulos, and D. T. Hountalas, Multi-zone modeling of combustion and emissions formation in DI diesel engine operating on ethanol???diesel fuel blends, Energy Conversion and Management, vol.49, issue.4, pp.625-643, 2008.
DOI : 10.1016/j.enconman.2007.07.035

]. Chou, C. Wang, K. Puduppakkam, and E. Meeks, Accurate Reduction of Combustion Chemistry Mechanisms Using a Multi-zone Model, SAE Technical Paper Series, 2008.
DOI : 10.4271/2008-01-0844

C. Chen, D. R. Amlee, R. J. Johns, and Y. Zeng, Detailed Modeling of Liquid Fuel Sprays in One-Dimensional Gas Flow Simulation, SAE Technical Paper Series, 2004.
DOI : 10.4271/2004-01-3000

P. A. Lakshminarayanan, Y. V. Aghav, A. D. Dani, P. S. Mehta, . Hoffmann et al., Accurate Prediction of the rate of Heat Release in a Modern Direct Injection Diesel Engine Combustion model reduction for diesel engine control design Homogeneous Charge Compression Ignition of Diesel Fuel, Proc. Instn. Mech. Engrs. Vol 216 Part D: J. Automobile Engineering177] A. Gray et T.W. Ryan III. Homogeneous Charge Compression Ignition (HCCI) of Diesel Fuel. SAE technical paper 971676, pp.663-675, 1996.

H. Suzuki, N. Koike, H. Ishii, and M. Odaka, Exhaust Purification of Diesel Engines by Homogeneous Charge with Compression Ignition Part 1: Experimental Investigation of Combustion and Exhaust Emission Behavior Under Pre-Mixed Homogeneous Charge Compression Ignition Method, SAE Technical Paper Series, 1997.
DOI : 10.4271/970313

H. Ishii, N. Koike, H. Suzuki, M. Odaka, H. Suzuki et al., Exhaust Purification of Diesel Engines by Homogeneous Charge with Compression Ignition Part 2 : Analysis of Combustion Phenomena and NOx Formation by Numerical Simulation with Experiment. SAE technical paper 970315 Combustion control method of homogeneous charge diesel engines, 1997.

Y. Takeda, N. Keiichi, N. Keiichi-harada, S. Sasaki, N. Shimazaki et al., Approaches to Solve Problems of the Premixed Lean Diesel Combustion. SAE technical paper 1999-01-0183 Trial of New Concept Diesel Combustion System ? Premixed Compression-Ignited Combustion. SAE technical paper Premixed Compression Ignition (PCI) Combustion for Simultaneous Reduction of NOx and Soot in Diesel Engine. SAE technical paper The Diesel Engine : Today and Tomorrow, Emission Characteristics of Premixed Lean Diesel Combustion with Extremely Early Staged Fuel Injection. SAE technical paper 961163 Miche et B. Gatellier. Improvement of Exhaust and Noise Emissions of the NADITM Concept Using Pre-Mixed Type Combustion with Multiple Stages Injection. SIA International Congress186] B. Gatellier, A. Ranini et M. Castagn´e. New Developments of the NADITM Concept to Improve Operating Range, Exhaust Emissions and Noise. Oil & Gas Science and Technology -Rev. IFP, pp.7-23, 1907.

]. T. Colliou, R. Tilagone, B. L. Martin188-]-w, A. Easley, G. A. Agarwal et al., Adapting the NADI (TM) Concept to Heavy Duty Engines, [191] M. Sj¨oberg, J. E. Dec et N. P. Cernansky. Potential of Thermal Stratification and Combustion Retard for Reducing Pressure-Rise Rates in HCCI Engines, Based on Multi-Zone Modeling and Experiments. SAE technical paper 2005-01-0113, pp.73-84, 1029.
DOI : 10.2516/ogst:2006005x

C. A. Hegart, H. Barths, and R. M. Siewert, Modeling approaches for partially premixed compression ignition combustion, SAE Technical, 0193.

B. Khalighi, S. H. Thary, D. C. Haworth, and M. S. Huebler, Computation and Measurement of Flow and Combustion in a Four-Valve Engine with Intake Variations, SAE Technical Paper Series, 0194.
DOI : 10.4271/950287

J. Ewald, F. Freikamp, G. Paczko, J. Weber, D. C. Haworth et al., GMTEC: GMTEC developer's manual, 2003.

M. Pasternak, F. Mauss, H. Bensler, K. Sanghoom, L. M. Pickett et al., Diesel Engine Cycle Simulation with a Reduced Set of Modeling Parameters Based on detailed Kinetics Influence of Diesel Injection Parameters on End-of-Injection Liquid Length Recession, 2009.

J. V. Pastor, J. J. Lopez, J. M. Garcia, and P. J. , A 1D model for the description of mixing-controlled inert diesel sprays, Fuel, vol.87, issue.13-14, pp.2871-2885, 2008.
DOI : 10.1016/j.fuel.2008.04.017

L. Martinez, A. Benkenida, B. C. Nishimura, A. Assanis, and D. , A model for the injection boundary conditions in the context of 3D simulation of Diesel Spray: Methodology and validation A model for primary diesel fuel atomization basedon cavitation bubble collapse energy in ICLASS2000, pp.219-228, 2000.

K. Huh, A. Gosman, R. P. Benedict, P. O-'rourke, and A. Amsden, A phenomenological model for diesel spray Atomization international conference on multiphase flows'91 Fundamentals of Pipe Flow The tab method for numerical calculation of spray droplet breakup, SAE, vol.201202, issue.872089, 0203.

G. Bruneaux, Liquid and vapour spray structure in high-pressure common rail diesel injection, Atomization Spray, vol.11, pp.533-56, 2001.

B. S. Higgins, C. J. Muller, and D. L. Siebers, Measurements of fuel effects on liquid-phase penetration in DI sprays " SAE Technical Paper, 1999.

J. M. Desantes, J. V. Pastor, R. Payri, and J. M. Pastor, Experimental characterization of internal nozzle flow and diesel spray behaviour Part II: Evaporative conditions " Atomization Spray, pp.521-564, 2005.

T. Kim and J. B. Ghandhi, Characterization of evaporating diesel sprays using exciplex laser-induced fluorescence measurements Atomization Spray, pp.535-544, 2003.

G. J. Smallwood and Ö. L. Gülder, View on the structure of transient diesel sprays " Atomization Spray, pp.355-86, 2007.

G. N. Abramovich, C. L. Yaws, B. H. Magnussen, and . Hjertager, Jet of an Incompressible Fluid in a Coflowing External Stream The Theory of Turbulent Jets Chemical Properties " ? Handbook On mathematical modelling of turbulent combustion with special emphasis on soot formation and combustion, WebBook de Chimie NIST The 16th International Symposium on Combustion, 1963.

I. Dhuchakallaya and A. P. Watkins, Auto-ignition of diesel spray using the PDF-Eddy Break-Up model, Applied Mathematical Modelling, vol.34, issue.7, pp.1732-1745, 2010.
DOI : 10.1016/j.apm.2009.09.019

A. Pires-da-cruz, T. A. Baritaud, and T. J. Poinsot, Self-ignition and combustion modeling of initially nonpremixed turbulent systems, Combustion and Flame, vol.124, issue.1-2, pp.65-81, 2001.
DOI : 10.1016/S0010-2180(00)00183-8

I. Dhuchakallaya and A. P. Watkins, Self-ignition of diesel spray combustion, Heat and Mass Transfer, vol.19, issue.12, pp.1627-1635, 2009.
DOI : 10.1007/s00231-009-0537-2

V. Hamosfakidis and R. D. Reitz, Optimization of a hydrocarbon fuel ignition model for two single component surrogates of diesel fuel, Combustion and Flame, vol.132, issue.3, pp.433-450, 2003.
DOI : 10.1016/S0010-2180(02)00489-3

G. D-'errico, D. Ettorre, and T. Lucchini, Comparison of Combustion and Pollutant Emission Models for DI Diesel Engines, SAE Technical Paper Series No.07NAPLES-90, 0218.

J. M. Desantes, J. V. Pastor, J. M. Garcia-olivier, and J. M. Pastor, A 1D model for the description of mixing-controlled reacting diesel sprays, Combustion and Flame, vol.156, issue.1, pp.234-249, 2009.
DOI : 10.1016/j.combustflame.2008.10.008

S. P. Burke, T. E. Schumann, W. L. Hardy, and R. D. Reitz, Diffusion Flames, Industrial & Engineering Chemistry, vol.20, issue.10, pp.998-1004, 1928.
DOI : 10.1021/ie50226a005

R. M. Siewer, Spray Angle and Rail Pressure Study for low NOx Diesel Combustion SAE Technical Paper 2007-01-0122 Application of Spontaneous Raman Scattering for Studying the Diesel Mixture Formation Process Under Near-Wall Conditions, 2001.

A. Mohammadi, Y. Kidoguchi, and K. Miwa, Effect of Injection Parameters and Wall-Impingement on Atomization and Gas Entrainment Processes in Diesel Spray " SAE Technical Paper Vizualization of Evaporative Diesel Spray Impinging Upon Wall Surface by Exciplex Fluorescence Method, 225] Jiro Senda, 1992.

G. Brunello, E. Gianpietro, A. Cossali, and . Coghe, Effect of Spray- Wall Interaction on Air Entrainment in a Transient Diesel Spray, 1993.

H. Fujimoto, G. Hyun, M. Nogami, K. Hirakawa, T. Asai et al., Characteristics of Free and Impinging Gas Jets by Means of Image Processing, SAE Technical Paper Series, 1997.
DOI : 10.4271/970045

E. Tomita, Y. Hamamoto, H. Tsutsumi, S. Takasaki, T. Watanabe et al., Visualization of Amient Air Motion and Entrainment into a Trnasient Gas Jet Impinging on a Flat Wall, Movement and Structure of Diesel Spray Impinging on an Inclined Wall " SAE Technical Paper 970046, 1995.

R. Miguel, . Panão, L. N. António, . Moreira-]-l, S. Andreassi et al., Visualization and Analysis of Spray Impingement Under Cross-Flow Conditions " SAE Technical Paper Experimental and numerical analysis of high pressure diesel spray?wall interaction Advances and challenges in explaining fuel spray impingement: Ho much of single droplet impact research is useful, Progress in Energy and Combustion Science, pp.742-765, 2002.

C. Mundo, M. Sommerfeld, and C. Tropea, Droplet-wall collisions: Experimental studies of the deformation and breakup process, International Journal of Multiphase Flow, vol.21, issue.2, pp.151-173, 1995.
DOI : 10.1016/0301-9322(94)00069-V

J. D. Naber and R. D. Reitz, Modeling Engine Spray/Wall Impingement, SAE Technical Paper Series, 1988.
DOI : 10.4271/880107

J. D. Naber, B. Enright, P. Shim, G. Choi, and D. Kim, Fuel Impingement in a Direct Injection Diesel Engine Numerical and experimental study on effect of wall geometry on wall impingement process of hollow-cone fuel spray under various ambient conditions Development of methodology for spray impingement simulation, International Journal of Multiphase Flow SAE Paper International Journal of Multiphase Flow, vol.237239, issue.26, pp.885-895, 1988.

H. Fujimoto, S. Iwashita, . Jiro, M. Senda, and . Kobayashi, Modeling of Diesel Spray Impingement on a Flat Wall, 1994.

C. Bai and A. D. Gosman, Development of Methodology for Spray Impingement Simulation, SAE Technical Paper Series, 1995.
DOI : 10.4271/950283

K. Park, A. P. Watkins, M. Gavaises, A. Theodorakakos, and G. Bergeles, Comparison of wall spray impaction models with experimental data on drop velocities and sizes Modeling wall impaction of diesel sprays, International Journal Heat and Fluid Flow International Journal Heat and Fluid Flow, vol.1717244, pp.424-438130, 1996.

R. D. Reitz, Z. Liu, and T. Obokata, Modeling Drop Drag Effects on Fuel Spray Impingement in Direct Injection Diesel Engines, 1997.

D. R. Chen, R. J. Amlee, Y. Johns, ]. H. Zeng, M. Hiroyasu et al., Detailed Modeling of Liquid Fuel Sprays in One-Dimensional Gas Flow Simulation SAE Technical Paper Empirical Equations for the Sauter Mean Diameter of a Diesel Spray Wall Film Dynamics Modeling For Impinging Sprays in Engines Investigating the Effect of Sray Targeting and Impingement on Diesel Engine Cold Start On the Fixation of Water in Diverse Fire Simulations of spray autoignition and flame establishment with two-dimensional CMC, SAE paper SAE Technical Paper Internal Journal of Heat and Mass transfer Combustion and Flame, vol.2479, issue.143, pp.1153-1166402, 1966.