Capturing differential diffusion effects in large eddy simulation of turbulent premixed flames

被引:1
|
作者
Yao, Matthew X. [1 ]
Blanquart, Guillaume [1 ]
机构
[1] CALTECH, Dept Mech & Civil Engn, Pasadena, CA 91125 USA
基金
美国国家科学基金会;
关键词
Hydrogen; Large Eddy simulation; Differential diffusion; Tabulated chemistry; Lewis number; DIRECT NUMERICAL SIMULATIONS; MODEL; COMBUSTION; CHEMISTRY; LES; VALIDATION; INCLUSION; MANIFOLDS;
D O I
10.1016/j.proci.2024.105500
中图分类号
O414.1 [热力学];
学科分类号
摘要
The combustion of hydrogen in low-swirl burners (LSB) is considered as an alternative means of generating power because it is characterized by low emissions and high efficiency. However, lean hydrogen premixed flames are subject to thermodiffusive instabilities induced by the large diffusivity, and hence small Lewis number, of hydrogen. The numerical modelling of these flows remains challenging because the transition of small scale instabilities into large scale turbulent structures cannot be modelled by conventional strategies. Recently, Schlup and Blanquart (2019) developed a two-equation model which captures successfully the phenomena arising from differential diffusion and curvature effects. The chemistry tabulation framework is based on the classical progress variable approach and introduces an additional transport equation to account for fluctuations in the local equivalence ratio due to these effects. In the current work, this model is extended to large eddy simulation (LES) of an LSB. The LES model is applied first to a CH 4 /air flame (cent cent = 0.59) . 59 ) to validate the overall simulation framework and then to a H 2 /air flame (cent cent = 0 . 4 ). The results obtained with this new formulation show significant improvement over the traditional one-equation formulation. The unique flow field exhibited by lean hydrogen is reproduced successfully using the two-equation model.
引用
收藏
页数:7
相关论文
共 50 条
  • [31] COUNTERGRADIENT DIFFUSION IN PREMIXED TURBULENT FLAMES
    LIBBY, PA
    BRAY, KNC
    AIAA JOURNAL, 1981, 19 (02) : 205 - 213
  • [32] The large eddy simulation of a turbulent diffusion flame
    Snegirev, A. Yu.
    Frolov, A. S.
    HIGH TEMPERATURE, 2011, 49 (05) : 690 - 703
  • [33] Accuracy of Large-Eddy Simulation of Premixed Turbulent Combustion
    Vreman, A. W.
    Bastiaans, R. J. M.
    Geurts, B. J.
    QUALITY AND RELIABILITY OF LARGE-EDDY SIMULATIONS, 2008, 12 : 307 - +
  • [34] Review on Large Eddy Simulation of Turbulent Premixed Combustion in Tubes
    LUO Gang
    DAI Haidong
    DAI Lingpeng
    QIAN Yunlou
    SHA Ce
    ZHANG Yuxiang
    WU Bingxin
    Journal of Thermal Science, 2020, 29 (04) : 853 - 867
  • [35] Review on Large Eddy Simulation of Turbulent Premixed Combustion in Tubes
    Luo, Gang
    Dai, Haidong
    Dai, Lingpeng
    Qian, Yunlou
    Sha, Ce
    Zhang, Yuxiang
    Wu, Bingxin
    JOURNAL OF THERMAL SCIENCE, 2020, 29 (04) : 853 - 867
  • [36] Large eddy simulation of turbulent lean premixed jet flame
    Zhang, Hong-Da
    Ye, Tao-Hong
    Chen, Jing
    Zhao, Ma-Jie
    Tuijin Jishu/Journal of Propulsion Technology, 2015, 36 (07): : 1027 - 1035
  • [37] The large eddy simulation of a turbulent diffusion flame
    A. Yu. Snegirev
    A. S. Frolov
    High Temperature, 2011, 49 : 690 - 703
  • [38] Large eddy simulation of turbulent strongly swirling premixed flame
    Yang, Fan
    Lin, Bo-Ying
    Sui, Chun-Jie
    Kong, Wen-Jun
    Kung Cheng Je Wu Li Hsueh Pao/Journal of Engineering Thermophysics, 2015, 36 (04): : 895 - 900
  • [39] Large Eddy Simulation of a turbulent non-premixed flame
    Branley, N
    Jones, WP
    COMBUSTION AND FLAME, 2001, 127 (1-2) : 1914 - 1934
  • [40] Review on Large Eddy Simulation of Turbulent Premixed Combustion in Tubes
    Gang Luo
    Haidong Dai
    Lingpeng Dai
    Yunlou Qian
    Ce Sha
    Yuxiang Zhang
    Bingxin Wu
    Journal of Thermal Science, 2020, 29 : 853 - 867