Reduced kinetic mechanism of -heptane oxidation in modeling polycyclic aromatic hydrocarbon formation in opposed-flow diffusion flames

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Frontiers in Energy ›› 2008, Vol. 2 ›› Issue (3) : 326-332. DOI: 10.1007/s11708-008-0047-9

Reduced kinetic mechanism of -heptane oxidation in modeling polycyclic aromatic hydrocarbon formation in opposed-flow diffusion flames

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Reduced kinetic mechanism of -heptane oxidation in modeling polycyclic aromatic hydrocarbon formation in opposed-flow diffusion flames

  • ZHONG Beijing, XI Jun
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Abstract

A reduced mechanism, which could couple with the multidimensional computational fluid dynamics code for quantitative description of a reacting flow, was developed for chemical kinetic modeling of polycyclic aromatic hydrocarbon formation in an opposed-flow diffusion flame. The complete kinetic mechanism, which comprises 572 reactions and 108 species, was reduced to a simplified mechanism that includes only 83 reactions and 56 species through sensitivity analysis. The results computed via this reduced mechanism are nearly indistinguishable from those via the detailed mechanism, which demonstrate that the model based on this reduced mechanism can properly describe n-heptane oxidation chemistry and quantitatively predict polycyclic aromatic hydrocarbon (such as benzene, naphthalene, phenanthrene and pyrene) formation in opposed-flow diffusion flames.

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. Reduced kinetic mechanism of -heptane oxidation in modeling polycyclic aromatic hydrocarbon formation in opposed-flow diffusion flames. Frontiers in Energy. 2008, 2(3): 326-332 https://doi.org/10.1007/s11708-008-0047-9

参考文献

1. Griffiths J F . Reduced kinetic models and their application to practical combustionsystems. Progress in Energy and CombustionScience, 1995, 21(1): 25–107. doi:10.1016/0360‐1285(94)00022‐V
2. Lams H . UsingCSP to understand complex chemical kinetic. Combustion Science and Technology, 1993, 89(6): 375–404
3. Massias A, Goussis D A . CSP-STEP Version 3.0: A FortranProgram for Automatically Producing Global Reduced Chemical KineticMechanism of Prescribed Size. Universityof Patas, Greece, 1999
4. Turányi T . Applicationsof sensitivity analysis to combustion chemistry. Reliability Engineering and System Safety, 1997, 57(1): 41–48. doi:10.1016/S0951‐8320(97)00016‐1
5. Tao F, Golovitchev V I, Chomiak J . Application of complex chemistry to investigate the combustionzone structure of DI diesel sprays under engine-like conditions. Proceedings of Comodia, Nagoya, Japan, 2001, 92–100
6. Wang H, Frenklach M . A detailed kinetic modelingstudy of aromatics formation in laminar premixed acetylene and ethyleneflames. Combustion and Flame, 1997, 110(1–2): 173–221. doi:10.1016/S0010‐2180(97)00068‐0
7. Frenklach M, Wang H . Detailed mechanism and modelingof soot particle formation. In: BockhornH. ed. Soot formation in combustion. Berlin: Springer-Verlag, 1994, 165–192
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