Large-eddy simulation of a supersonic lifted jet flame: Analysis of the turbulent flame base

被引:51
|
作者
Bouheraoua, Lisa [1 ]
Domingo, Pascale [1 ]
Ribert, Guillaume [1 ]
机构
[1] Normandie Univ, INSA Rouen, CNRS, UNIROUEN,CORIA, F-76000 Rouen, France
关键词
Large-eddy simulations; Supersonic combustion; Lifted jet flame; Shock wave; DIRECT NUMERICAL-SIMULATION; FINITE-RATE CHEMISTRY; HYDROGEN-AIR; TEMPERATURE-MEASUREMENTS; PREMIXED COMBUSTION; SPRAY FLAMES; SCALAR; FLOWS; MODEL; MECHANISMS;
D O I
10.1016/j.combustflame.2017.01.020
中图分类号
O414.1 [热力学];
学科分类号
摘要
Large-eddy simulation of a supersonic hydrogen-air non-premixed lifted jet flame is reported in the configuration studied by Cheng et al. (1994). The emphasis of the study is on the mechanism driving flame stabilization. The resolution issue is first addressed by considering three meshes of, respectively, 4, 32 and 268 millions of cells. The highest resolution of 60 mu m allows for resolving the flame with a reduced chemical kinetics. LES results are found in good agreement with experimental data and previous simulations of the literature. It is observed in the simulations that the highly unstable flame base exhibits a cyclic period of around 0.25 ms, with the transient occurence of shock diamonds. These shocks may enhance the mixing of the reactants and control the autoignition processes occurring in the vicinity of the burner exit. The flame also exhibits a transient bow shock shape structure. The dynamics of the turbulent flame base, and the fluctuations of its streamwise position, thus appears to be controlled by the intricate coupling between autoignition and the upstream propagation of strong pressure waves sustained by combustion, pertaining to an intermittent detonation-like mechanism. From these highly resolved unsteady simulations, a scenario is drawn to explain the cyclic time evolution of the structure of the unsteady turbulent flame base, in direct relation with its fluctuating streamwise position. (C) 2017 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
引用
收藏
页码:199 / 218
页数:20
相关论文
共 50 条
  • [1] Large-Eddy Simulation and analysis of a sooting lifted turbulent jet flame
    Grader, Martin
    Eberle, Christian
    Gerlinger, Peter
    [J]. COMBUSTION AND FLAME, 2020, 215 : 458 - 470
  • [2] Large eddy simulation of a lifted turbulent jet flame
    Ferraris, S. A.
    Wen, J. X.
    [J]. COMBUSTION AND FLAME, 2007, 150 (04) : 320 - 339
  • [3] Large-eddy simulation of a lifted methane jet flame in a vitiated coflow
    Domingo, P.
    Vervisch, L.
    Veynante, D.
    [J]. COMBUSTION AND FLAME, 2008, 152 (03) : 415 - 432
  • [4] Large eddy simulation of a supersonic lifted jet flame in the high-enthalpy coflows
    Liu, Chaoyang
    Wang, Ning
    Yang, Kai
    Jia, Dongpeng
    Pan, Yu
    [J]. ACTA ASTRONAUTICA, 2021, 183 : 233 - 243
  • [5] Large-eddy simulation of turbulent autoigniting hydrogen lifted jet flame with a multi-regime flamelet approach
    Hu, Yong
    Kurose, Ryoichi
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2019, 44 (12) : 6313 - 6324
  • [6] Large-eddy simulation of a turbulent hydrogen diffusion flame
    Forkel, H
    Janicka, J
    [J]. FLOW TURBULENCE AND COMBUSTION, 2000, 65 (02) : 163 - 175
  • [7] Large-Eddy Simulation of a Turbulent Hydrogen Diffusion Flame
    Hendrik Forkel
    Johannes Janicka
    [J]. Flow, Turbulence and Combustion, 2000, 65 : 163 - 175
  • [8] Large-Eddy Simulation of a Lifted High-Pressure Jet-Flame with Direct Chemistry
    Gruhlke, P.
    Janbazi, H.
    Wollny, P.
    Wlokas, I.
    Beck, C.
    Janus, B.
    Kempf, A. M.
    [J]. COMBUSTION SCIENCE AND TECHNOLOGY, 2022, 194 (14) : 2978 - 3002
  • [9] Flame behaviour and flame location in large-eddy simulation of the turbulent premixed combustion
    Alhumairi, Mohammed K. H. Abbas
    Almahdawi, Yasseen A.
    Nawi, Sami A.
    [J]. ENERGY, 2021, 232
  • [10] Large eddy simulation of a supersonic lifted hydrogen flame: Impacts of Lewis, turbulent Schmidt and Prandtl numbers
    Zhu, Ruixuan
    Huang, Zhiwei
    Xu, Chao
    Fang, Xiaohang
    Zhang, Huangwei
    Davy, Martin
    [J]. PHYSICS OF FLUIDS, 2024, 36 (07)