Diffusive effects of hydrogen on pressurized lean turbulent hydrogen-air premixed flames

被引:17
|
作者
Song, Wonsik [1 ]
Hernandez-Perez, Francisco E. [1 ]
Im, Hong G. [1 ]
机构
[1] King Abdullah Univ Sci & Technol KAUST, Clean Combust Res Ctr CCRC, Thuwal 239556900, Saudi Arabia
关键词
Direct numerical simulation; Hydrogen; Turbulent flame speed; Elevated pressure; Turbulent and Soret diffusion; CHARACTERISTIC BOUNDARY-CONDITIONS; DIRECT NUMERICAL SIMULATIONS; SORET DIFFUSION; H-2/AIR FLAMES; TECHNOLOGY; CAPTURE; AMMONIA; FLOWS;
D O I
10.1016/j.combustflame.2022.112423
中图分类号
O414.1 [热力学];
学科分类号
摘要
To understand the turbulence-chemistry interaction of lean hydrogen-air premixed flames at elevated pressures, we conduct a series of high-fidelity direct numerical simulations with detailed chemistry and transport by increasing pressure from 1 up to 7 atm. For a fixed ratio of the root-mean-square turbu-lent velocity fluctuation to the laminar flame speed, two sets of simulations were conducted: one for a fixed ratio of integral length scale to the laminar flame thickness and the other one for a fixed in-tegral length scale. We observe that the turbulent flame speed and volume-integrated heat release rate (HRR) increase with pressure due to the promoted chemical effects. To elucidate the enhanced chemical effects, we conduct a budget analysis of diffusive transport and reaction rate of hydrogen and examine the conditionally-averaged flame structure. As opposed to the laminar flames, the diffusive effects of hy-drogen for turbulent flames are found to increase with pressure in a more non-linear way, which signifi-cantly enhances the radical pool generation, leading to abundant H radical that is required for the rate of the pressure-sensitive reaction H + O2(+M) = HO2(+M) to be accelerated at higher pressures. Due to the strong diffusive transport of hydrogen for pressurized turbulence, not only does another small HRR peak emerge upstream, but also the location of the main HRR peak is moved towards the upstream region. Furthermore, the probability density function (PDF) of the flame curvature, computed for the isosurface associated with maximal diffusive transport of hydrogen, shows a clear trend of the PDF peak shifting to larger positive values as pressure increases. Simulations with the inclusion of thermal diffusion are also carried out at atmospheric and elevated pressure conditions to quantify the Soret effect. It is found that the magnitude of the hydrogen diffusion rate is augmented by thermal diffusion, affecting its mass fraction distribution. The mean turbulent flame speed is enhanced by approximately 8% and 7% for the 1 and 7 atm conditions, respectively.(c) 2022 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
引用
收藏
页数:11
相关论文
共 50 条
  • [31] Effect of Impurities on Lean Laminar Hydrogen-Air Flames
    Tereza, A. M.
    Agafonov, G. L.
    Anderzhanov, E. K.
    Betev, A. S.
    Medvedev, S. P.
    Mikhalkin, V. N.
    Khomik, S. V.
    Cherepanova, T. T.
    [J]. RUSSIAN JOURNAL OF PHYSICAL CHEMISTRY B, 2023, 17 (06) : 1294 - 1299
  • [32] Combustion dynamics of lean fully-premixed hydrogen-air flames in a mesoscale multinozzle array
    Lee, Taesong
    Kim, Kyu Tae
    [J]. COMBUSTION AND FLAME, 2020, 218 : 234 - 246
  • [33] Flamelet generated manifolds for lean premixed turbulent hydrogen flames
    Bahoque, Gabriela Sanchez
    van Oijen, Jeroen
    [J]. PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2024, 40 (1-4)
  • [34] Stretch effects on the burning velocity of turbulent premixed hydrogen/air flames
    Chen, JH
    Im, HG
    [J]. PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2000, 28 (01) : 211 - 218
  • [35] Properties of turbulent hydrogen-air flames at elevated pressures
    Kitagawa, Toshiaki
    Nakahara, Takashi
    [J]. Nihon Kikai Gakkai Ronbunshu, B Hen/Transactions of the Japan Society of Mechanical Engineers, Part B, 2009, 75 (751): : 502 - 503
  • [36] INFLUENCE OF BUOYANCY ON TURBULENT HYDROGEN-AIR DIFFUSION FLAMES
    PERGAMENT, HS
    FISHBURNE, ES
    [J]. COMBUSTION SCIENCE AND TECHNOLOGY, 1978, 18 (3-4) : 127 - 137
  • [37] Measurements of the laminar burning velocity of hydrogen-air premixed flames
    Science and Technology of Gases and Rational Use of Energy Group, Faculty of Engineering, University of Antioquia, Calle 67 N 53, 108, 447 Medellín, Colombia
    不详
    [J]. Int J Hydrogen Energy, 4 (1812-1818):
  • [38] Measurements of the laminar burning velocity of hydrogen-air premixed flames
    Pareja, Jhon
    Burbano, Hugo J.
    Ogami, Yasuhiro
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2010, 35 (04) : 1812 - 1818
  • [39] The mechanism of unsteady downstream interactions of premixed hydrogen-air flames
    Kolera-Gokula, Hemanth
    Echekki, Tarek
    [J]. COMBUSTION SCIENCE AND TECHNOLOGY, 2007, 179 (11) : 2309 - 2334
  • [40] Surface Density Function statistics in hydrogen-air flames for different turbulent premixed combustion regimes
    Chakraborty, Nilanjan
    Klein, Markus
    Alwazzan, Dana
    Im, Hong G.
    [J]. COMBUSTION SCIENCE AND TECHNOLOGY, 2018, 190 (11) : 1988 - 2002