Skeletal Chemical Mechanisms for a Diesel Fuel Surrogate by the Directed Relation Graph(DRG)

직접 관계 그래프(DRG)를 이용한 디젤 연료의 상세 화학 반응 기구 축소화

  • 이영재 (포항공과대학교 기계공학과) ;
  • 허강열 (포항공과대학교 기계공학과)
  • Received : 2011.03.09
  • Accepted : 2011.06.04
  • Published : 2011.06.30

Abstract

It is a challenging task to apply large detailed chemical mechanisms of fuel oxidation in simulation of complex combustion phenomena. There exist a few systematic methodologies to reduce detailed chemical mechanisms to smaller sizes involving less computational load. This research work concerns generation of a skeletal chemical mechanism by a directed relation graph with specified accuracy requirement. Two sequential stages for mechanism reduction are followed in a perfectly stirred reactor(PSR) for high temperature chemistry and to consider the autoignition delay time for low and high temperature chemistry. Reduction was performed for the detailed chemical mechanism of n-heptane consisting of 561 species and 2539 elementary reaction steps. Validation results show acceptable agreement for the autoignition delay time and the PSR calculation in wide parametric ranges of pressure, temperature and equivalence ratio.

Keywords

References

  1. T. Turanyi, "Reduction of large reaction mechanisms", New J. Chem., Vol. 14, 1990, pp. 795-803
  2. A.S. Tomlin, M.J. Pilling, T. Turanyi, J.H. Merkin and J. Brindley, "Mecahanism reduction for the oscillatory oxidation of hydrogen: Sensitivity and quasi-steady-sate analyses", Combust. Flame, Vol. 91, 1992, pp. 107-130 https://doi.org/10.1016/0010-2180(92)90094-6
  3. H. Wang and M. Frenklach, "Detailed reduction of reaction mechanisms for flame modeling", Com bust. Flame, Vol. 87, 1991, pp. 365-370 https://doi.org/10.1016/0010-2180(91)90120-Z
  4. T.F. Lu, Y. Ju and C.K. Law, "A directed relation graph method for mechanism reduction", Proc. Combust. Inst., Vol. 2005, 30, pp. 1333-1341 https://doi.org/10.1016/j.proci.2004.08.145
  5. T.F. Lu, Y. Ju and C.K. Law, "Linear time reduction of large kinetic mechanism with directed realtion graph: n-Heptane and iso-octane", Combust. Flame, Vol. 144, 2006, pp. 24-36 https://doi.org/10.1016/j.combustflame.2005.02.015
  6. T.F. Lu, Y. Ju and C.K. Law, "Strategies for mechanism reduction for large hydrocarbons: n-heptane", Combust. Flame, Vol. 154, 2008, pp. 153-163 https://doi.org/10.1016/j.combustflame.2007.11.013
  7. N. Peters, "Numerical Simulation of Combustion Phenomena", Lecture Notes in Physics. Springer, Berlin, Vol. 241, 1985, pp. 90-109
  8. N. Peters and R.J. Kee, "The computation of stretched laminar methane-air diffusion flames using a reduced four-step mechanism", Combust. Flame, Vol. 68, 1987, pp. 17-29 https://doi.org/10.1016/0010-2180(87)90062-9
  9. J.Y. Chen, "A general procedure for constructing reduced reaction mechanisms with given independent relations", Combust. Sci. Technol., Vol. 57, 1988, pp. 89-94 https://doi.org/10.1080/00102208808923945
  10. M.D. Smooke, "Reduced kinetic mechanisms and asymptotic approximations for methan-air flames", Lecture Notes in Physics, Springer-Verlag, Berlin, Vol. 384, 1991, pp. 1-28
  11. Y. Ju and T. Niioka, "Reduced kinetic mechanism of ignition for nonpremixed hydrogen/air in a supersonic mixing layer", Combust. Flame, Vol. 99, 1994, pp. 240-246 https://doi.org/10.1016/0010-2180(94)90127-9
  12. C.J. Sung, C.K. Law and J.Y. Chen, "An augmented reduced mechanism for methane oxidation with comprehensive global parametric validation", Proc. Combust. Inst., Vol. 27, 1998, pp. 295-304 https://doi.org/10.1016/S0082-0784(98)80416-5
  13. A. Massias, D. Diamantis, E. Mastorakos and D. A. Goussis, "An algorithm for the construction of global reduced mechanisms with CSP data", Combust. Flame, Vol. 117, 1999, pp. 685-708 https://doi.org/10.1016/S0010-2180(98)00132-1
  14. A. Massias, D. Diamantis, E. Mastorakos and D. A. Goussis, "Global reduced mechanisms for methane and hydrogen combustion with nitric oxide formation constructed with CSP data", Combust. Theory Modelling, Vol. 3, 1999, pp. 233-257 https://doi.org/10.1088/1364-7830/3/2/002
  15. T.F. Lu, Y. Ju and C.K. Law, "Complex CSP for chemistry reduction and analysis", Combust. Flame, Vol. 126, 2001, pp. 1445-1455 https://doi.org/10.1016/S0010-2180(01)00252-8
  16. U. Maas and S.B. Pope, "Simplifying chemical kinetics: Intrinsic low-dimensional manifolds in composition space", Combust. Flame, Vol. 88, 1992, pp. 239-264 https://doi.org/10.1016/0010-2180(92)90034-M
  17. https://www-pls.llnl.gov/?url=science_and_technology- chemistry-combustion
  18. K. E. Niemeyer, "Skeletal mechanism generation for surrogate fuels", Master Thesis, Case western Reserve University, 2010
  19. R. J. Kee, F. M. Rupley and J. A. Miller, "Chemkin- II: A FORTRAN chemical Kinetics Package for the Analysis of Gas-Phase Chemical Kinetics", SAND89-8009, 1989