Micro-structures of premixed hydrocarbon flames: Methane

被引:66
|
作者
Castaldi, MJ [1 ]
Vincitore, AM [1 ]
Senkan, SM [1 ]
机构
[1] UNIV CALIF LOS ANGELES,DEPT CHEM ENGN,LOS ANGELES,CA 90024
基金
美国国家科学基金会;
关键词
methane flames; PAHs; pollutants;
D O I
10.1080/00102209508907792
中图分类号
O414.1 [热力学];
学科分类号
摘要
The micro-structure of a premixed, atmospheric-pressure, Fuel-rich (equivalence ratio 2.6), flat flame of methane has been determined experimentally using a heated micro-probe coupled to on-line gas chromatography/mass spectrometry (GC/MS). The identities and absolute concentrations of over 40 major and minor species have been established, including a large number of aromatics, substituted aromatics and polycyclic aromatic hydrocarbons (PAH) by the direct analysis of samples withdrawn from the flame without pre-concentration. Mole fractions of the species quantified were in the range 0.45-2.0 x 10(-9). The largest PAHs detected were the family of C(20)H(12)s (molecular weight 252), that include benzo(a)pyrene, perylene and benz(e)-acephenanthrylene, with peak concentrations reaching 1 ppmv. The results show the preferential formation of fused PAHs with even number of aromatic rings over PAHs with odd number of rings. The PAHs detected also suggest that they can be formed by at least 3 parallel routes; synthesis via the sequential addition of small building blocks, such as C2H2, by the recombination of smaller PAHs, or via isomerization. The measurements provide information on the identities and levels of hazardous air pollutants formed in combustion processes and represent useful new data for the development and validation of detailed reaction mechanisms describing their origin and fate.
引用
收藏
页码:1 / 19
页数:19
相关论文
共 50 条
  • [31] CHEMICAL AND OPTICAL PROBING OF PREMIXED METHANE OXYGEN FLAMES
    RAMER, ER
    MERKLIN, JF
    SORENSEN, CM
    TAYLOR, TW
    COMBUSTION SCIENCE AND TECHNOLOGY, 1986, 48 (5-6) : 241 - 255
  • [32] Manipulation of DNA molecules in micro-structures
    Washizu, M
    Suzuki, S
    Kurosawa, O
    Shimamoto, N
    MICROSYSTEM TECHNOLOGY FOR CHEMICAL AND BIOLOGICAL MICROREACTORS, 1996, 132 : 177 - 194
  • [33] INTERPRETATION OF MICRO-STRUCTURES IN CARBONACEOUS METEORITES
    MUELLER, G
    CLAUS, G
    SUBAC, EA
    NATURE, 1965, 205 (4977) : 1200 - &
  • [34] COMBUSTION REACTIONS IN METHANE-AIR PREMIXED FLAMES
    FUKUTANI, S
    SAKAGUCHI, K
    KUNIOSHI, N
    JINNO, H
    BULLETIN OF THE CHEMICAL SOCIETY OF JAPAN, 1991, 64 (05) : 1623 - 1631
  • [35] Flow time effects on hydrocarbon growth and soot formation in coflowing methane/air non-premixed flames
    McEnally, CS
    Pfefferle, LD
    TWENTY-SEVENTH SYMPOSIUM (INTERNATIONAL) ON COMBUSTION, VOLS 1 AND 2, 1998, : 1539 - 1547
  • [36] Inhibition of premixed methane/air flames by water mist
    Fuss, S. Paul
    Chen, Ezra F.
    Yang, Wenhua
    Kee, Robert J.
    Williams, Bradley A.
    Fleming, James W.
    Proceedings of the Combustion Institute, 2002, 29 (01) : 361 - 368
  • [37] Inhibition of premixed methane-air flames by fluoromethanes
    Linteris, GT
    Truett, L
    COMBUSTION AND FLAME, 1996, 105 (1-2) : 15 - 27
  • [38] The effect of temperature on soot properties in premixed methane flames
    Alfe, M.
    Apicella, B.
    Rouzaud, J. -N.
    Tregrossi, A.
    Ciajolo, A.
    COMBUSTION AND FLAME, 2010, 157 (10) : 1959 - 1965
  • [39] Effect of Gravity on Premixed Methane-Air Flames
    Krikunova, A. I.
    Son, E. E.
    HIGH TEMPERATURE, 2018, 56 (01) : 84 - 91
  • [40] A flamelet model for premixed methane-air flames
    Abou-Ellail, MMM
    Beshay, KR
    Mansour, MS
    COMBUSTION SCIENCE AND TECHNOLOGY, 2000, 153 : 223 - 245