Modeling of aromatic and polycyclic aromatic hydrocarbon formation in premixed methane and ethane flames

被引:374
作者
Marinov, NM [1 ]
Pitz, WJ [1 ]
Westbrook, CK [1 ]
Castaldi, MJ [1 ]
Senkan, SM [1 ]
机构
[1] UNIV CALIF LOS ANGELES,DEPT CHEM ENGN,LOS ANGELES,CA 90024
关键词
air toxics; aromatic; polycyclic aromatic hydrocarbon; premixed flames;
D O I
10.1080/00102209608935550
中图分类号
O414.1 [热力学];
学科分类号
摘要
Detailed chemical kinetic modeling has been performed to investigate aromatic and polyaromatic hydrocarbon formation pathways in rich, sooting, methane and ethane premixed flames. An atmospheric pressure, laminar flat flame operated at an equivalence ratio of 2.5 was used to acquire experimental data for model validation. Gas composition analysis was conducted by an on-line gas chromatograph / mass spectrometer technique. Measurements were made in the flame and post-flame zone for a number of low molecular weight species, aliphatics, aromatics, and polycyclic aromatic hydrocarbons (PAHs) ranging from two to five-aromatic fused rings. The modeling results show the key reaction sequences leading to aromatic and polycyclic aromatic hydrocarbon formation primarily involve the combination of resonantly stabilized radicals. In particular, propargyl and 1-methylallenyl combination reactions lead to benzene and methyl substituted benzene formation, while polycyclic aromatics are formed from cyclopentadienyl and fused rings that have a shared C-5 side structure. Naphthalene production through the reaction step of cyclopentadienyl self-combination, and phenanthrene formation from indenyl and cyclopentadienyl combination were shown to be important in the flame modeling study. The removal of phenyl O-2 leading to cyclopentadienyl formation is expected to play a pivotal role in the PAH or soot precursor growth process under fuel-rich oxidation conditions.
引用
收藏
页码:211 / 287
页数:77
相关论文
共 143 条
[51]   WEAK COLLISION EFFECTS IN THE REACTION C2H5-REVERSIBLE-ARROW-C2H4+H [J].
FENG, Y ;
NIIRANEN, JT ;
BENCSURA, A ;
KNYAZEV, VD ;
GUTMAN, D ;
TSANG, W .
JOURNAL OF PHYSICAL CHEMISTRY, 1993, 97 (04) :871-880
[52]   CALCULATION OF RELATIVE ELECTRON-IMPACT TOTAL IONIZATION CROSS-SECTIONS FOR ORGANIC-MOLECULES [J].
FITCH, WL ;
SAUTER, AD .
ANALYTICAL CHEMISTRY, 1983, 55 (06) :832-835
[53]   HIGH-TEMPERATURE REACTIONS OF TRIPLET METHYLENE AND KETENE WITH RADICALS [J].
FRANK, P ;
BHASKARAN, KA ;
JUST, T .
JOURNAL OF PHYSICAL CHEMISTRY, 1986, 90 (10) :2226-2231
[54]  
FRANK P, 1994, 25 S INT COMB COMB I, P833
[55]   DETAILED MODELING OF PAH PROFILES IN A SOOTING LOW-PRESSURE ACETYLENE FLAME [J].
FRENKLACH, M ;
WARNATZ, J .
COMBUSTION SCIENCE AND TECHNOLOGY, 1987, 51 (4-6) :265-283
[56]  
FRENKLACH M, 1985, 20TH S INT COMB PITT, P887
[57]   COMPARISON OF THE REACTIONS OF MONOCYCLIC AND POLYCYCLIC AROMATIC-HYDROCARBONS WITH OXYGEN-ATOMS [J].
FRERICHS, H ;
TAPPE, M ;
WAGNER, HG .
BERICHTE DER BUNSEN-GESELLSCHAFT-PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 1990, 94 (11) :1404-1407
[58]  
GLASSMAN I, 1986, COMBUSTION, P362
[59]   MOLLER-PLESSET STUDY OF THE H4CO POTENTIAL-ENERGY SURFACE [J].
HARDING, LB ;
SCHLEGEL, HB ;
KRISHNAN, R ;
POPLE, JA .
JOURNAL OF PHYSICAL CHEMISTRY, 1980, 84 (25) :3394-3401
[60]   FORMATION OF SMALL AROMATIC-MOLECULES IN A SOOTING ETHYLENE FLAME [J].
HARRIS, SJ ;
WEINER, AM ;
BLINT, RJ .
COMBUSTION AND FLAME, 1988, 72 (01) :91-109