Effects of propane pyrolysis on basic flame structures of non-premixed jet flame

被引:0
|
作者
Min-Kyu Jeon
Moon Soo Cho
Min Jung Lee
Nam Il Kim
Hong Sun Ryou
机构
[1] Department of Mechanical Engineering,School of Mechanical Engineering
[2] Chung-Ang University,undefined
关键词
Fuel pyrolysis; Fuel pyrolysis; Non-premixed flame; Flame structure; Soot formation;
D O I
暂无
中图分类号
学科分类号
摘要
Recently, high temperature combustion techniques have been extensively adopted to improve thermal efficiency of combustion devices. When the temperature is sufficiently high, fuel pyrolysis may occur and then the flame structure can be affected. Thus, the understanding flame structure at high temperature coupled with fuel pyrolysis is essential to design burners operated in high temperature environments. In this study, propane was heated up to 1100 K using an electric heater, and the characteristics of fuel pyrolysis and its effects on non-premixed jet flames were experimentally investigated at room temperature. Normalized volume flow rates and components were measured regarding the fuel pyrolysis. The normalized volume flow rates of the propane were increased significantly through the pyrolysis process, and they agreed with numerical results based on an ordinary chemical mechanism. Variations of flame height and soot region were compared for the pyrolysis temperature. Conclusively, in spite of the significant growth in the volume flow rate by the propane pyrolysis, flame height was not significantly affected. On the contrary, the soot region was slightly extended by the fuel pyrolysis. This study will help to extend understanding on jet flame characteristics especially at high temperature conditions.
引用
收藏
页码:4053 / 4059
页数:6
相关论文
共 50 条
  • [21] Measurements of fuel mixture fraction oscillations of a turbulent jet non-premixed flame
    Kang, D. M.
    Fernandez, V.
    Ratner, A.
    Culick, F. E. C.
    [J]. COMBUSTION AND FLAME, 2009, 156 (01) : 214 - 220
  • [22] Steady flame streets in a non-premixed microburner
    Mackay, Kyle K.
    Johnson, Harley T.
    Freund, Jonathan B.
    [J]. COMBUSTION AND FLAME, 2019, 206 : 349 - 362
  • [23] Experimental and computational study of a lifted, non-premixed turbulent free jet flame
    Mahmud, T.
    Sangha, S. K.
    Costa, M.
    Santos, A.
    [J]. FUEL, 2007, 86 (5-6) : 793 - 806
  • [24] Large eddy simulation of soot formation in a turbulent non-premixed jet flame
    El-Asrag, Hossam
    Menon, Suresh
    [J]. COMBUSTION AND FLAME, 2009, 156 (02) : 385 - 395
  • [25] Stabilization mechanisms of an ammonia/methane non-premixed jet flame up to liftoff
    Colson, Sophie
    Kuhni, Manuel
    Hayakawa, Akihiro
    Kobayashi, Hideaki
    Galizzi, Cedric
    Escudie, Dany
    [J]. COMBUSTION AND FLAME, 2021, 234
  • [26] Flame Structure of a Liftoff Non-Premixed Turbulent Hydrogen Jet with Coaxial Air
    Oh, Jeongseog
    Yoon, Youngbin
    [J]. TRANSACTIONS OF THE KOREAN SOCIETY OF MECHANICAL ENGINEERS B, 2009, 33 (09) : 699 - 708
  • [27] Cover illustration: Non-premixed hydrocarbon flame
    Dimotakis, PE
    [J]. NONLINEARITY, 1997, 10 (01) : 1 - 2
  • [28] ON THE STABILITY OF A TURBULENT NON-PREMIXED METHANE FLAME
    Iyogun, C. O.
    Birouk, M.
    [J]. COMBUSTION SCIENCE AND TECHNOLOGY, 2009, 181 (12) : 1443 - 1463
  • [29] Suppression of a non-premixed flame behind a step
    Grosshandler, W
    Hamins, A
    McGrattan, K
    Charagundla, SR
    Presser, C
    [J]. PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2000, 28 : 2957 - 2964
  • [30] Analysis of the filtered non-premixed turbulent flame
    Wang, Lipo
    [J]. COMBUSTION AND FLAME, 2017, 175 : 259 - 269