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Original Articles

Turbulence-chemistry interactions in CFD modelling of diesel engines

, &
Pages 305-325 | Received 23 Jan 2007, Accepted 23 Jul 2007, Published online: 20 Mar 2008

References

  • Hibbs , C. 2004 . Diesel auto sales trending to exceed gasoline in Europe in 2006 14 – 18 . http://www.greencarcongress.com/2006/01/dieselautosale.html PriceWaterhouseCoopers Report. Aavailable at
  • Correa , C. , Niemann , H. , Schramm , B. and Warnatz , J. 2002 . Use of ILDM reduced chemistry in direct injection Diesel engines . Thermo- and Fluid-Dynamic Processes in Diesel Engines, Selected Papers from the THIESEL 2000 Conference . September 13–15 2002 , Valencia, Spain. pp. 353 – 362 .
  • Correa , C. 2000 . Combustion simulations in Diesel engine with reduced reaction mechanisms , Ph.D. thesis IWR, Universität Heidelberg .
  • Han , Z. and Reitz , R. D. 1995 . Turbulence modeling of internal combustion engines using RNG k-ε models . Combust. Sci. and Tech. , 106 : 267 – 295 .
  • Han , Z. and Reitz , R. D. 1997 . A temperature wall function formulation for variable density turbulent flows with application to engine convective heat transfer modeling . Int. J. Heat Mass Transfer , 40 : 613 – 625 .
  • Schramm , B. S. 2003 . Automatische Reduktion chemischer Reaktionsmechanismen am Beispiel der Oxidation von höheren Kohlenwasserstoffen und deren verwendung in reaktiven strömungen , Ph.D. thesis IWR, Universität Heidelberg .
  • Amsden , A. A. , O'Rourke , P. J. and Butler , T. D. 1989 . KIVA-II: A computer program for chemically reactive flows with sprays Los Alamos National Laboratory, LA-11560-MS
  • Xin , J. , Ricart , L. and Reitz , R. D. 1998 . Computer modeling of Diesel spray atomization and combustion . Combust. Sci. Tech. , 137 : 171 – 194 .
  • Agafonov , G. L. , Naydenov , I. , Vlasov , P. and Warnatz , J. 2006 . Detailed kinetic modeling of soot formation in shock tube pyrolysis and oxidation of toluene and n-heptane . Proceedings of the Combustion Institute , 31 paper 3E06
  • Warnatz , J. , Maas , U. and Dibble , R. W. 1999 . Combustion, , 2nd edition , Berlin : Springer-Verlag .
  • Maas , U. and Pope , S. B. 1992 . Simplifying chemical kinetics: intrinsic low-dimensional manifolds in composition space . Comb. Flame , 88 : 239 – 264 .
  • Elsden , M. R. , Gutheil , E. , Nehse , M. and Warnatz , J. 1997 . Diesel engine ignition modeling . VDI-Berichte , 1313 : 473 – 478 .
  • Nehse , M. , Warnatz , J. and Chevalier , C. 1996 . Kinetic modeling of the oxidation of large aliphatic hydrocarbons . Proc. Combust. Inst. , 26 : 773 – 780 .
  • Correa , C. , Niemann , H. , Schramm , B. and Warnatz , J. 2000 . Reaction mechanism reduction for higher hydrocarbons by the ILDM method . Proc. Combust. Inst. , 28 : 1607 – 1614 .
  • Girimaji , S. S. 1991 . Assumed β-PDF model for turbulent mixing: Validation and extension to multiple scalar mixing . Combust. Sci. Technol. , 78 : 177 – 196 .
  • Reitz , R. D. 1991 . Assessment of wall heat transfer models for premixed-charge engine combustion computations SAE Papers 910267
  • Borman , G. L. . In-cylinder heat transfer research at the U. W. Engine Research Center . International Symposium on Diagnostics and Modeling of Combustion in Internal Combustion Engines, (COMODIA) 90 . Kyoto, Japan.
  • Kays , W. M. 1994 . Turbulent Prandtl number —Where are we? . ASME J. Heat Transfer, , 116 : 284 – 295 .
  • Aglave , R. 2007 . CFD simulation of combustion using automatically reduced reaction mechanisms: A case for Diesel engines , Ph.D. thesis IWR, Universität Heidelberg .
  • Barlow , R. S. and Frank , J. H. 1998 . Effects of turbulence on species mass fractions in methane/air jet flames . Proc. Combust. Inst. , 27 : 1087 – 1095 .
  • Pope , S. B. 2000 . Turbulent Flows , Cambridge : Cambridge University Press .
  • Pope , S. B. 1981 . Monte Carlo calculations of premixed turbulent flames . Proc. Combust. Inst. , 18 : 1001 – 1010 .
  • Pope , S. B. 1985 . PDF methods for turbulent reactive flows . Prog. Energy Combust. Sci. , 11 : 119 – 192 .
  • Lockwood , F. C. and Naguib , A. S. 1976 . Aspects of combustion modeling in engineering turbulent diffusion flames . J. Inst. Fuel , 49 : 218 – 223 .
  • Janicka , J. and Kollmann , W. 1981 . A two-variable formalism for the treatment of chemical reactions in turbulent hydrogen–air diffusion flames . Proc. Combust. Inst. , 17 : 421 – 430 .
  • Khalil , E. E. , Spalding , D. B. and Whitelaw , J. H. 1975 . Calculation of local flow properties in two-dimensional furnaces . Int. J. Heat Mass Transfer , 18 : 775 – 791 .
  • Maas , U. 1993 . Automatische Reduktion von Reaktionsmechanismen zur Simulation Reaktiver Strömungen , Habilitationsschrift, Universität Stuttgart .
  • Maas , U. and Pope , S. B. 1993 . Implementation of simplified chemical kinetics based on intrinsic low-dimensional manifolds . Proc. Combust. Inst. , 24 : 113 – 120 .
  • Adelson-Velskii , G. and Landis , E. M. 1962 . An algorithm for the organization of information . Soviet Math. Doklady , 3 : 1259 – 1263 .
  • Aglave , R. and Warnatz , J. . CFD simulation of Diesel engines with reduced reaction mechanism . Proceedings of the European Conference on Computational Fluid Dynamics – ECCOMAS CFD . Eggmond-an-Zee, Netherlands. Edited by: Wesseling , P. , Nate , E. O. and Périaux , J.
  • Zeldovich , Ya. B. 1946 . Oxidation of nitrogen in combustion and explosion . Doklady Akademii Nauk SSSR, Seriya A , 51 : 217 – 220 .
  • Fenimore , C. P. 1972 . Formation of nitric oxide from fuel nitrogen in ethylene flame . Combust. Flame , 19 : 289 – 296 .
  • Just , T. and Kelm , S. 1986 . Mechanisms of NO x formation and abatement in technical combustion . Industriefeuerung , 38 : 96 – 102 .
  • Samaniego , J. M. , Egolfopoulos , F. N. and Bowman , C. T. . Effect of chemistry and turbulence on NO formation in oxygen/natural gas flames . Proceedings of the Summer Program . pp. 187 – 206 . Stanford, CA : Center for Turbulence Research, Stanford university .
  • Smyth , K. C. 1996 . NO production and destruction in a methane/air diffusion flame . Combust. Sci. Tech. , 115 : 151 – 176 .
  • Pitsch , H. , Cha , C. M. and Fedotov , S. 2001 . Interacting flamelet model for non-premixed turbulent combustion with local extinction and re-ignition , 65 – 77 . Annual Research Briefs, Center for Turbulence Research, Stanford University .
  • Peters , N. 1984 . Laminar diffusion flamelet models in non-premixed turbulent combustion . Prog. Energy Combust. Sci. , 10 : 319 – 339 .
  • Anon . 2004 . Creation of the whorléd , 14 – 18 . National Energy Research Scientific Computing Center . http://www.nersc.gov/news/annual_reports/annrep04/annrep04.pdf Annual Report. Available at
  • Reitz , R. D. 1999 . Personal communications of Chrys Correa , Engine Research Center, University of Wisconsin .
  • 2007 . Engine Combustion Network, Combustion Research Facility , Berkeley, CA, , USA : Sandia National Laboratories . http://www.ca.sandia.gov/ecn/cvdata/dsearch.php Available at
  • Liu , S. , Hewson , J. C. , Chen , J. H. and Pitsch , H. 2004 . Effect of strain rate on high-pressure non-premixed n-heptane autoignition in counterflow . Combust. Flame , 137 : 320 – 339 .
  • Peters , N. , Packzo , G. , Sieser , R. and Sheshadri , K. 2002 . Temperature crossover and non-thermal runaway at two stage ignition of heptane . Combust. Flame , 101 : 38 – 59 .
  • Warnatz , J. 2000 . Gas Phase Combustion Chemistry , Edited by: Gardiner , W. C. 356 – 375 . Heidelberg : Springer-Verlag .
  • Ishiyama , T. , Miwa , K. and Horikoshi , O. . A study on ignition process of Diesel engines . International Symposium on Diagnostics and Modeling of Combustion in Internal Combustion Engines, (COMODIA) 94 . Tokyo, Japan. pp. 337 – 342 .
  • Chandrashekhar , S. 1960 . Radiative Transfer , New York : Dover .
  • Fiveland , W. A. 1987 . Discrete ordinate methods for radiative heat transfer in isotropically and anisotropically scattering media . J. Heat Transfer , 109 : 809 – 812 .

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