Soot surface growth and oxidation in laminar diffusion flames at pressures of 0.1–1.0 atm
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Chul Han Kim | Gerard M. Faeth | A. M. El-Leathy | G. Faeth | C. Kim | F. Xu | A. El-Leathy | F. Xu
[1] P. A. Tesner. Formation of dispersed carbon by thermal decomposition of hydrocarbons , 1958 .
[2] J. Howard. Carbon addition and oxidation reactions in heterogeneous combustion and soot formation , 1991 .
[3] P. Libby,et al. Theoretical study of burning carbon particles , 1979 .
[4] B. Wicke,et al. Nitric oxide inhibition of soot oxidation by oxygen atoms at 298K , 1987 .
[5] A. Coppalle,et al. OH and soot concentration measurements in a high-temperature laminar diffusion flame , 1997 .
[6] Koon Gee Neoh,et al. Soot burnout in flames , 1980 .
[7] H. B. Palmer,et al. The pyrolysis of acetylene initiated by acetone , 1989 .
[8] T. W. Taylor,et al. Chemical and Optical Probing of Premixed Methane/Oxygen Flames , 1986 .
[9] C. P. Fenimore,et al. Oxidation of soot by hydroxyl radicals , 1967 .
[10] G. Faeth,et al. Soot formation in hydrocarbon/air laminar jet diffusion flames☆ , 1996 .
[11] G. M. Faeth,et al. Soot Formation in Laminar Acetylene/Air Diffusion Flames at Atmospheric Pressure. Appendix H , 2001 .
[12] J. P. Appleton,et al. Shock-tube measurements of soot oxidation rates☆ , 1973 .
[13] Sanford Gordon,et al. CET93 and CETPC: An interim updated version of the NASA Lewis computer program for calculating complex chemical equilibria with applications , 1994 .
[14] F. Xu,et al. Soot surface oxidation in hydrocarbon/air diffusion flames at atmospheric pressure , 2003 .
[15] M. Frenklach,et al. Detailed modeling of soot formation in laminar premixed ethylene flames at a pressure of 10 bar , 1995 .
[16] F. Wright,et al. The oxidation of soot by O atoms , 1975 .
[17] C. McEnally,et al. Computational and experimental study of soot formation in a coflow, laminar ethylene diffusion flame , 1998 .
[18] A. Hamins,et al. Acetone impurity in acetylene from tanks , 1986 .
[19] Ian M. Kennedy,et al. Models of soot formation and oxidation , 1997 .
[20] D. Urban,et al. Soot Formation in Laminar Premixed Ethylene/Air Flames at Atmospheric Pressure. Appendix G , 1997 .
[21] A. F. Sarofim,et al. Optical Constants of Soot and Their Application to Heat-Flux Calculations , 1969 .
[22] Stephen J. Harris,et al. Surface Growth of Soot Particles in Premixed Ethylene/Air Flames , 1983 .
[23] D. L. Urban,et al. Extinction and Scattering Properties of Soot Emitted from Buoyant Turbulent Diffusion Flames. Appendix D , 2001 .
[24] B. C. Young,et al. The reaction of hydroxyl radicals with carbon at 298 K , 1975 .
[25] D. Urban,et al. Structure of the Soot Growth Region of Laminar Premixed Methane/Oxygen Flames. Appendix I , 2000 .
[26] Fang Xu. Soot growth in laminar premixed flames , 1999 .
[27] J. P. Appleton,et al. Soot oxidation rates in gas turbine engines , 1971 .
[28] Ümit Özgür Köylü,et al. Soot formation in weakly buoyant acetylene-fueled laminar jet diffusion flames burning in air☆☆☆ , 1995 .
[29] Constantine M. Megaridis,et al. Morphology of flame-generated soot as determined by thermophoretic sampling , 1987 .
[30] D. E. Rosner,et al. Comparative studies of the attack of pyrolytic and isotropic graphite by atomic and molecular oxygen at high temperatures. , 1968 .
[31] H. B. Palmer,et al. On impurity effects in acetylene pyrolysis , 1991 .
[32] Mitchell D. Smooke,et al. Computational and experimental study of soot formation in a coflow, laminar diffusion flame , 1999 .
[33] G. Faeth,et al. Optical Properties in the Visible of Overfire Soot in Large Buoyant Turbulent Diffusion Flames , 2000 .
[34] P. Libby,et al. Burning carbon particles in the presence of water vapor , 1981 .
[35] H. F. Johnstone,et al. Kinetics of the Steam-Carbon Reaction in Porous Graphite Tubes , 1952 .
[36] Jack B. Howard,et al. Formation of polycyclic aromatic hydrocarbons and their growth to soot—a review of chemical reaction pathways , 2000 .
[37] Ümit Özgür Köylü,et al. Structure of Overfire Soot in Buoyant Turbulent Diffusion Flames at Long Residence Times , 1992 .
[38] D. Urban,et al. Soot Surface Growth in Laminar Hydrocarbon/Air Diffusion Flames. Appendix B , 2001 .
[39] J. Nagle,et al. OXIDATION OF CARBON BETWEEN 1000–2000°C , 1962 .
[40] Henning Bockhorn,et al. Soot Formation in Combustion , 1994 .
[41] D. Urban,et al. Soot Formation in Laminar Premixed Methane/Oxygen Flames at Atmospheric Pressure. Appendix H , 1998 .
[42] C. Wong,et al. Room temperature oxidation of soot by oxygen atoms , 1986 .
[43] Reginald E. Mitchell,et al. Experimental and numerical investigation of confined laminar diffusion flames , 1980 .
[44] Adel F. Sarofim,et al. Effect of oxidation on the physical structure of soot , 1985 .
[45] M. Frenklach,et al. Detailed modeling of soot particle nucleation and growth , 1991 .
[46] J. Lahaye,et al. Mechanisms of formation and destruction of soot particles in a laminar methane-air diffusion flame , 1988 .
[47] Kuang C. Lin,et al. Soot nucleation and growth in acetylene air laminar coflowing jet diffusion flames , 1996 .
[48] J. Lahaye,et al. Chemical aspects of soot particles oxidation in a laminar methane-air diffusion flame☆ , 1990 .
[49] Derek Bradley,et al. The oxidation of graphite powder in flame reaction zones , 1985 .