A novel regenerative multiple zones model for modelling the premixed charge stirred chemical reactor based combustion engines

Journal of the Energy Institute - Tập 90 - Trang 680-695 - 2017
Khizer Saeed1
1Low Carbon Energy Research Group, School of Computing, Engineering and Mathematics, University of Brighton, Lewes Road, Brighton BN2 4GJ, United Kingdom

Tài liệu tham khảo

Kim, 2014, Investigation on the flame characteristics in a PCCI engine using endoscope system with micro-cassegrain, Int. J. Automot. Technol., 15, 1063, 10.1007/s12239-014-0110-y Kanda, 2005 Hardy, 2006 Dubreuil, 2007, HCCI combustion: effect of NO in EGR, Proc. Combust. Inst., 31, 2879, 10.1016/j.proci.2006.07.168 Lu, 2005 Bhave, 2005 Risberg, 2006 Moreac, 2006, Nitric oxide interactions with hydrocarbon oxidation in a jet-stirred reactor at 10 atm, Combust. Flame, 145, 512, 10.1016/j.combustflame.2006.01.002 Leermakers, 2011 Ming, 2011, The effect of injection timing and intake valve close timing on performance and emissions of diesel PCCI engine with a full engine cycle CFD simulation, Appl. Energy, 88, 2967, 10.1016/j.apenergy.2011.03.024 Eguz, 2011, Multi-zone modelling of PCCI combustion, J. Int. J. Veh. Des., 55, 76, 10.1504/IJVD.2011.038047 Cao, 2009, Influence of injection timing and piston bowl geometry on PCCI combustion and emissions, SAE Int. J. Engines, 2, 1019, 10.4271/2009-01-1102 Cao, 2008 B. Kerschgens, C. Felsch, A. Vanegas, and N. Peters, Applying an interactively coupled CFD-multi-zone approach to study the effects of piston bowl geometry variations on PCCI combustion. SAE Int. J. Engines. Kuleshov, 2009, Multi-zone DI diesel spray combustion model for thermodynamic simulation of engine with PCCI and high EGR level, SAE Int. J. Engines, 2, 1811, 10.4271/2009-01-1956 Kerschgens, 2011 Hoffmann, 2009, A cycle-based multi-zone simulation approach including cycle-to-cycle dynamics for the development of a controller for PCCI combustion, SAE Int. J. Engines, 2, 511, 10.4271/2009-01-0671 Babajimopoulos, 2005, A fully coupled computational fluid dynamics and multi-zone model with detailed chemical kinetics for the simulation of premixed charge compression ignition engines, Int. J. Engine Res., 6, 497, 10.1243/146808705X30503 Aceves, 2000 Aceves, 2001 Aceves, 2001 Babajimopoulos, 2003 Hamosfakidis, 2009, A regenerative multiple zone model for HCCI combustion, Combust. Flame, 156, 928, 10.1016/j.combustflame.2008.12.008 Najt, 1983 Saeed, 2009, Estimation of the oxides of nitrogen formation inside HCCI engine cylinder using a novel multizones model Raine, 1995, Modeling of nitric oxide formation in spark ignition engines with a multizone burned gas, Combust. Flame, 102, 241, 10.1016/0010-2180(94)00268-W Saeed, 2004, The modelling of premixed laminar combustion in a closed vessel, Combust. Theory Model., 8, 721, 10.1088/1364-7830/8/4/004 J. Chang, O. Guralp, Z. Filipi, D. Assanis, T. Kuo, P. Najt, and R. Rask, New Heat Transfer Correlations for an HCCI Engine Derived from Measurements of Instantaneous Surface Heat Flux, SAE paper No. 2004-01-2996. Erlandsson, 2002 IVODE, 1987 R.J. Osborne, G. Li, S.M. Sapsford, J. Stokes, T.M. Lake, M.R. Heikal, Evaluation of HCCI for Future Gasoline Powertrains, SAE Paper No 2003-01-0750. G.M. Rassweiler and L. Withrow, Motion Pictures of Engine Flames Correlated with Pressure Cards, SAE Paper No. 800131 (originally presented in January 1938). Eichelberg, 1939, Some new investigations an old combustion-engine problems, Engineering, 148, 463 G. Woschni, A Universally Applicable Equation for the Instantaneous Heat Transfer Coefficient in the Internal Combustion Engine, SAE Paper No. 670931. K. Huber, G. Woschni and K. Zeilinger, Investigations on Heat Transfer in Internal Combustion Engines under Low Load and Motoring Conditions, SAE Paper No. 905018. Annand, 1971, Instantaneous heat transfer rates to the cylinder head surface of a small compression–ignition engine, Proc. Inst. Mech. Eng., 185, 976, 10.1243/PIME_PROC_1970_185_110_02 G.F. Hohenberg, Advanced Approaches for Heat Transfer Calculations, SAE Paper No. 790825. S.B. Han, Y.G. Chung, Y.J. Kwon and S. Lee, Empirical Formula for Instantaneous Heat Transfer Coefficient in Spark-Ignition Engine, SAE Paper No. 972995. Soyhan, 2009, Evaluation of heat transfer correlations for HCCI engine modelling, Appl. Therm. Eng., 29, 541, 10.1016/j.applthermaleng.2008.03.014 M. Sjöberg and J.E. Dec, An Investigation of the Relationship Between Measured Intake Temperature, BDC Temperature, and Combustion Phasing for Premixed and DI HCCI Engines, SAE Paper No. 2004-01-1900. D. Yap, M.L. Wyszynski, A. Megaritis and H. Xu, Applying Boosting to Gasoline HCCI Operation with Residual Gas Trapping, SAE Paper No. 2005-01-2121. Araki, 2005 Laguitton, 2007, The effect of compression ratio on exhaust emissions from a PCCI diesel engine, Energy Convers. Manag., 48, 2918, 10.1016/j.enconman.2007.07.016 Jiaa, 2011, The effect of injection timing and intake valve close timing on performance and emissions of diesel PCCI engine with a full engine cycle CFD simulation, Appl. Energy, 88, 2967, 10.1016/j.apenergy.2011.03.024