Effects of recessed air jet on turbulent compressed natural gas inverse diffusion flame shape and luminosity

被引:0
|
作者
S. Mahesh
D. P. Mishra
机构
[1] Indian Institute of Technology,Combustion Laboratory, Department of Aerospace Engineering
来源
关键词
turbulent inverse diffusion flame; minimum recession; flame luminosity; necking zone;
D O I
暂无
中图分类号
学科分类号
摘要
Effects of the recession of the central air jet on the visible flame height, necking zone, and luminosity of a turbulent compressed natural gas-air inverse diffusion flame in a coaxial burner are investigated in this experimental study. The inner circular tube of the coaxial burner is recessed by 0.25da, 0.5da, and 1.0da, where da is the central tube inner diameter. From the visual observation, the flame height and the necking zone height are observed to decrease exponentially with the air jet Reynolds number with no recession of the central air jet. However, only a marginal reduction in the visible flame height is observed with an increase in the recession height of the air jet as compared to the necking zone height. Interestingly, the necking zone at the flame base disappears beyond the critical recession height of the central jet. Moreover, the recession is found to be effective in eradicating the fuel rich zone and soot ring at the flame base of turbulent compressed natural gas inverse diffusion flame at lower air jet Reynolds numbers.
引用
收藏
页码:683 / 688
页数:5
相关论文
共 50 条
  • [1] Effects of recessed air jet on turbulent compressed natural gas inverse diffusion flame shape and luminosity
    Mahesh, S.
    Mishra, D. P.
    COMBUSTION EXPLOSION AND SHOCK WAVES, 2012, 48 (06) : 683 - 688
  • [2] Study of the turbulent inverse diffusion flame in recessed backstep and coaxial burners
    S. Mahesh
    D. P. Mishra
    Combustion, Explosion, and Shock Waves, 2011, 47 : 274 - 279
  • [3] Study of the turbulent inverse diffusion flame in recessed backstep and coaxial burners
    Mahesh, S.
    Mishra, D. P.
    COMBUSTION EXPLOSION AND SHOCK WAVES, 2011, 47 (03) : 274 - 279
  • [4] Effects of a directed coflow on a turbulent hydrogen/air jet diffusion flame
    Nejmiddin, Boughattas
    2020 11TH INTERNATIONAL RENEWABLE ENERGY CONGRESS (IREC), 2020,
  • [5] Effect of air jet momentum on the topological features of turbulent CNG inverse jet flame
    Mahesh, S.
    Mishra, D. P.
    FUEL, 2019, 241 : 1068 - 1075
  • [6] COMBUSTION OF NATURAL-GAS IN A FREE TURBULENT FLAME JET IN MOVING AIR .1.
    AVERIN, SI
    SEMIKIN, ID
    PEKKER, AN
    ENKOV, EV
    STEEL IN THE USSR, 1972, 2 (05): : 396 - &
  • [7] Study on the flame shape of gas-solid jet diffusion
    Nie X.
    Zhou K.
    Wu Y.
    Huang M.
    Jiang J.
    Huagong Xuebao/CIESC Journal, 2021, 72 (05): : 2878 - 2886
  • [8] Chemical kinetic modeling of turbulent jet diffusion flame for methane/air
    Dong, Gang
    Wang, Hai-Feng
    Chen, Yi-Liang
    2003, Tianjin University (09):
  • [9] AN INTEGRAL ANALYSIS OF THE TURBULENT SWIRLING DIFFUSION FLAME OF A COMBUSTIBLE JET IN FREE AIR
    HUA, SQ
    LEE, SL
    ISRAEL JOURNAL OF TECHNOLOGY, 1983, 21 (04): : 187 - 196
  • [10] Measurements and inverse calculations of spectral radiation intensities of a turbulent ethylene/air jet flame
    Zheng, Y
    Gore, JP
    PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2005, 30 : 727 - 734