References:
Basbous T, Younes R, Ilinca A, Perron J (2012). Pneumatic hybridization of a diesel engine using compressed air storage for wind-diesel energy generation. Energy, 38(1), 264-275. DOI:10.1016/j.energy.2011.12.003
Chase MW, Jr. Davies CA, Downey JR, Jr. Frurip DJ, McDonald RA, Syverud AN (1985). JANAF Thermochemical Tables, 3rd ed. J. Phys. Chem. Ref. Data, 14(1), 1499.
Chun SM (2003). Network analysis of an engine lubrication system. Tribology International, 36(1), 609-617.
DOI:10.1016/S0301-679X(02)00266-9
De Persis C, Kalles?e CS (2008). Proportional and proportional-integral controllers for a nonlinear hydraulic network. Proceedings of the 17th World Congress of the International Federation of Automatic Control, Seoul, Korea, 319-324.
DOI: 10.3182/20080706-5-KR-1001.00054
De Persis C, Kalles?e CS (2009a). Pressure regulation in nonlinear hydraulic networks by positive controls. Proceedings of the 10th European Control Conference, Budapest, Hungary, 1371-1383.
DOI: 10.1109/TCST.2010.2094619
De Persis C, Kalles?e CS (2009b). Quantized controllers distributed over a network: An industrial case study. Proceedings of the 17th Mediterranean Conference on Control and Automation, Thessaloniki, Greece, 616-621.
DOI: 10.1109/MED.2009.5164611
Ferguson CR, Kirkpatrick AT (2001). Internal combustion engines: Applied thermosciences. 2nd edition. John Wiley & Sons, Inc., New York, 287-292.
Fossen TI (2002). Marine control systems: Guidance, navigation and control of ships, rigs and underwater vehicles. Marine Cybernetics, Trondheim, Norway, 471-473.
DOI: 10.2514/1.17190
Guibert P (2005). Modélisation du cycle moteur—Approche zérodimensionnelle. Tech. Ing. Génie Mécanique.
Gupta VK, Zhang Z, Sun Z (2011). Modeling and control of a novel pressure regulation mechanism for common rail fuel injection systems. Applied Mathematical Modelling, 35(7), 3473-3483.
DOI:10.1016/j.apm.2011.01.008
Haas A, Esch T, Fahl E, Kreuter P, Pischinger F (1991). Optimized design of the lubrication system of modern combustion engines. International Fuels & Lubricants Meeting & Exposition, Toronto, Canada, SAE Technical Paper 912407.
DOI: 10.4271/912407
Hardenberg HO, Hase FW (1979). An empirical formula for computing the pressure rise delay of a fuel from its cetane number and from the relevant parameters of direct-injection diesel engines. International Fuels & Lubricants Meeting & Exposition, SAE Technical Paper 790493.
DOI: 10.4271/790493
Heywood JB (1988). Internal combustion engine fundamentals. Mcgraw-Hill, New York.
Hiroyasu H, Kadota T, Arai M (1983). Development and use of a spray combustion modeling to predict diesel engine efficiency and pollutant emissions: Part 1 combustion modeling. Bulletin of JSME, 26(214), 569-575.
DOI: 10.1299/jsme1958.26.569
Karlsson M, Ekholm K, Strandh F, Tunestal P, Johansson R (2010). Dynamic mapping of diesel engine through system identification. American Control Conference (ACC), Baltimore, USA, 3015-3020.
DOI: 10.1109/ACC.2010.5531242
Lakshminarayanan PA, Nayak N, Dingare SV, Dani AD (2002). Predicting hydrocarbon emissions from direct injection diesel engines. Journal of Engineering for Gas Turbines Power, 124(3), 708-716.
DOI:10.1115/1.1456091
Lino P, Maione B, Rizzo A (2007). Nonlinear modelling and control of a common rail injection system for diesel engines. Applied Mathematical Modelling, 31(9), 1770-1784.
DOI: 10.1016/j.apm.2006.06.001.
Lipkea WH, DeJoode AD (1994). Direct injection diesel engine soot modeling: Formulation and results. International Fuels & Lubricants Meeting & Exposition, Detroit, USA, SAE Technical Paper 940670.
DOI:10.4271/940670
Mansouri SH, Bakhshan Y (2001). Studies of NO-x, CO, soot formation and oxidation from a direct injection stratified-charge engine using the k-epsilon turbulence model. Proc. Inst. Mech. Eng. Part J—Automob. Eng., 215, 95-104.
DOI:10.1243/0954407011525485
Nohra C, Noura H, Younes R (2009). A linear approach with μ-analysis control adaptation for a complete-model diesel-engine diagnosis. Chinese Control and Decision Conference, Guilin, China, 5415-5420.
DOI: 10.1109/CCDC.2009.5195158
Omran R, Younes R, Champoussin JC (2008). Neural networks for real-time nonlinear control of a variable geometry turbocharged diesel engine. International Journal of Robust Nonlinear Control, 18(2), 1209-1229.
DOI: 10.1002/rnc.1264
Omran R, Younes R, Champoussin JC (2009). Optimal control of a variable geometry turbocharged diesel engine using neural networks: Applications on the ETC test cycle. IEEE Transactions on Control Systems Technology, 17(2), 380-393.
DOI: 10.1109/TCST.2008.2001049
Paradis I, Wagner JR, Marotta EE (2002). Thermal periodic contact of exhaust valves. Journal of Thermophysics and Heat Transfer, 16(3), 356-365.
DOI: 10.2514/2.6712
Roth P, Von Gersum S, Takeno T (1993). High temperature oxidation of soot particles by O, OH, and NO. In: Takeno T (ed). Turbulence and Molecular Processes in Combustion. Elsevier, Amsterdam, 149.
DOI:10.1016/B978-0-444-89757-2.50016-9
Sakhrieh A, Abu-Nada E, Al-Hinti I, Al-Ghandoor A, Akash B (2010). Computational thermodynamic analysis of compression ignition engine. International Communications in Heat and Mass Transfer, 37(3), 299-303.
DOI: 10.1016/j.icheatmasstransfer.2009.11.002
Salah MH, Mitchell TH, Wagner JR, Dawson DM (2010). A smart multiple-loop automotive cooling system—Model, control, and experimental study. IEEE/ASME Transactions on Mechatronics, 15(1), 117-124.
DOI: 10.1109/TMECH.2009.2019723
Stone R (1999). Introduction to internal combustion engines. 3rd ed. MacMillian, New York,
Stumpp G, Ricco M (1996). Common rail—An attractive fuel injection system for passenger car DI diesel engines. International Fuels & Lubricants Meeting & Exposition, Detroit, USA, SAE Technical Paper 960870.
DOI: 10.4271/960870
Tan PQ, Hu ZY, Deng KY, Lu JX, Lou DM, Wan G (2007). Particulate matter emission modelling based on soot and SOF from direct injection diesel engines. Energy Conversion and Management, 48(2), 510-518.
DOI: 10.1016/j.enconman.2006.06.012
Wiebe I (1956). Halbempirische formel fur die verbrennungs-geschwindigkeit. Verlag der Akademie der Wissenschaften der UdsSR, Moscow.
Woschni G (1967). A universally applicable equation for the instantaneous heat transfer coefficient in the internal combustion engine. International Fuels & Lubricants Meeting & Exposition, SAE Technical Paper 670931.
DOI: 10.4271/670931
Yoo IK, Simpson K, Bell M, Majkowski S (2000). An engine coolant temperature model and application for cooling system diagnosis. International Fuels & Lubricants Meeting & Exposition, Detroit, USA, SAE Technical Paper 2000-01-0939.
DOI: 10.4271/2000-01-0939
Younes R (1993). Elaboration d’un modèle de connaissance du moteur diésel avec turbocompresseur à géométrie variable en vue de l’optimisation de ses emissions. Ingénieur en Mécanique Générale de l’Ecole Polytechnique d’Alger.
Zito G, Landau ID (2005). Narmax model identification of a variable geometry turbocharged diesel engine. Proceedings of the 2005 American Control Conference, Portland, USA, 1021-1026.
DOI: 10.1109/ACC.2005.1470094