Comparison of Two Methods to Predict Boundary Layer Flashback Limits of Turbulent Hydrogen-Air Jet Flames

被引:0
|
作者
Vera Hoferichter
Christoph Hirsch
Thomas Sattelmayer
Alireza Kalantari
Elliot Sullivan-Lewis
Vincent McDonell
机构
[1] Technische Universität München,Lehrstuhl für Thermodynamik
[2] University of California,UCI Combustion Laboratory
来源
关键词
Premixed combustion; Hydrogen; Boundary layer flashback; Prediction; Flashback limits; Turbulent flames;
D O I
暂无
中图分类号
学科分类号
摘要
Flame flashback into the premixer is a serious issue in gas turbine combustion, especially for high hydrogen content fuels. Of particular interest is the risk of upstream flame propagation inside the wall boundary layer. Consequently, methods to predict the minimum flow velocities to prevent boundary layer flashback are sought by designers. In the first part of this paper two methods to predict boundary layer flashback limits are summarized and compared. The first method is a Damköhler correlation based on non-dimensional parameters developed at University of California Irvine (UCI). The correlation was developed based on the gathered experimental data at elevated pressures and temperatures (i.e. p = 3–7 bar, Tu = 300–500 K, ϕ = 0.3–0.6) and successfully applied to a commercial gas turbine combustor. Due to its simplicity the Damköhler correlation is attractive for the design of gas turbine burners. But its applicability is limited to the turbulent combustion regime for which it was originally designed. The second method is called the “flame angle theory”. It was developed at Technische Universität München (TUM) and is based on a description of the physical process of boundary layer flashback. This method has been validated with experimental data at atmospheric pressure and a wide range of preheating temperatures and equivalence ratios (Tu = 293–673 K, ϕ = 0.35–1.0). Since it describes the physical process of boundary layer flashback based on a set of sub-models it should be generally applicable to all operating conditions if the sub-models are appropriate. To verify this, the flame angle theory is applied to high pressure conditions in the second part of this paper. A comparison with results from the Damköhler correlation shows that the predicted flashback limits are in a reasonable range. However, the degree of agreement between Damköhler correlation and flame angle theory strongly depends on equivalence ratio because the Damköhler correlation does not account for the changing susceptibility of different hydrogen-air mixtures to flame stretch. For that reason, a modified Damköhler correlation has been derived at TUM from the flame angle theory and is presented in the third part of this paper. This correlation combines the advantages of the other two methods as it features high usability and is generally applicable to all operating conditions.
引用
收藏
页码:849 / 873
页数:24
相关论文
共 50 条
  • [41] CHEMICAL NONEQUILIBRIUM EFFECTS IN HYDROGEN-AIR LAMINAR JET DIFFUSION FLAMES
    MILLER, JA
    KEE, RJ
    JOURNAL OF PHYSICAL CHEMISTRY, 1977, 81 (25): : 2534 - 2542
  • [42] ANALYSIS OF TURBULENT FREE-JET HYDROGEN-AIR DIFFUSION FLAMES WITH FINITE CHEMICAL-REACTION RATES
    SISLIAN, JP
    EVANS, JS
    GLASS, II
    CANADIAN AERONAUTICS AND SPACE JOURNAL, 1979, 25 (01): : 61 - 75
  • [43] Experimental Study on the Suppression and Prediction of Wall Boundary Layer Flashback in Hydrogen Flames
    Lee G.
    Lee K.
    Transactions of the Korean Society of Mechanical Engineers, B, 2024, 48 (05) : 283 - 294
  • [44] Investigation of boundary layer flashback for non-swirling premixed hydrogen/ammonia/nitrogen/oxygen/air flames
    Goldmann, Andreas
    Dinkelacker, Friedrich
    Combustion and Flame, 2022, 238
  • [45] Experimental investigation and modeling of boundary layer flashback for non-swirling premixed hydrogen/ammonia/air flames
    Goldmann, Andreas
    Dinkelacker, Friedrich
    COMBUSTION AND FLAME, 2021, 226 (226) : 362 - 379
  • [46] Investigation of boundary layer flashback for non-swirling premixed hydrogen/ammonia/nitrogen/oxygen/air flames
    Goldmann, Andreas
    Dinkelacker, Friedrich
    COMBUSTION AND FLAME, 2022, 238
  • [47] Turbulent burning velocity of hydrogen-air premixed propagating flames at elevated pressures
    Kitagawa, Toshiaki
    Nakahara, Takashi
    Maruyama, Kosuke
    Kado, Kunihiro
    Hayakawa, Akihiro
    Kobayashi, Shoichi
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2008, 33 (20) : 5842 - 5849
  • [48] 5. Direct numerical simulation of hydrogen-air turbulent premixed flames
    M. Tanahashi
    M. Fujimura
    T. Miyauchi
    Journal of Visualization, 1999, 2 (2) : 117 - 117
  • [49] Flame and eddy structures in hydrogen-air turbulent jet premixed flame
    Shimura, M.
    Yamawaki, K.
    Fukushima, N.
    Shim, Y. S.
    Nada, Y.
    Tanahashi, M.
    Miyauchi, T.
    JOURNAL OF TURBULENCE, 2012, 13 (42): : 1 - 17
  • [50] Stochastic modeling of finite-rate chemistry effects in hydrogen-air turbulent jet diffusion flames with helium dilution
    Zhang, Sha
    Echekki, Tarek
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2008, 33 (23) : 7295 - 7306