Morphology and structure of hydrogen-air turbulent premixed flames

被引:17
|
作者
Minamoto, Yuki [1 ]
Yenerdag, Basmil [1 ]
Tanahashi, Mamoru [1 ]
机构
[1] Tokyo Inst Technol, Dept Mech Engn, Meguro Ku, Tokyo 1528550, Japan
关键词
Direct numerical simulation (DNS); Flame morphology; Turbulent premixed combustion; Turbulent burning velocity; DIRECT NUMERICAL-SIMULATION; FINE-SCALE EDDIES; LARGE-EDDY SIMULATION; FRACTAL CHARACTERISTICS; REACTION ZONES; COMBUSTION; TRANSPORT; GEOMETRY;
D O I
10.1016/j.combustflame.2018.02.019
中图分类号
O414.1 [热力学];
学科分类号
摘要
Direct numerical simulations of turbulent premixed planar flames in the corrugated flamelets and thin reaction zones regimes are analysed to investigate the effect of turbulence on the flame structure and morphology. A tool based on topological invariants called shapefinders, consisting of the planarity and filamentarity, is applied to assess the flame morphology. Several statistics show that the filamentarity, which represents lumped effects of the turbulence on the flame morphology, is closely correlated with the Damkohler number, but not with the Karlovitz number. To investigate which scale of turbulent fluctuations is responsible for the flame morphology evolution, the conditional averages of the Kolmogorov length scale and the Taylor microscale are studied. The conditional averages show strong correlation between the Taylor microscale and the filamentarity, while similar strong correlation is not observed for the Kolmogorov length scale. These results suggest that the turbulence-flame interaction relevant to the flame morphology occurs at the length scale greater than the Taylor microscale for relatively large Damkohler number conditions. The fractal dimension is computed for the DNS and filtered reaction progress variable fields with different filter sizes. The computed fractal dimensions between the resolved and the Taylor-microscale filtered fields are almost identical. Also, it was shown that 93-97% of flame surface area is recovered when the filter size of the Taylor microscale is used. However, this fraction rapidly decreases when the integral length scale is used for the filter size. A similar trend was observed for the flame wrinkling factor. (C) 2018 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
引用
收藏
页码:369 / 383
页数:15
相关论文
共 50 条
  • [1] Morphology and structure of spherically propagating premixed turbulent hydrogen-air flames
    Shehab, Hazim
    Watanabe, Hiroaki
    Minamoto, Yuki
    Kurose, Ryoichi
    Kitagawa, Toshiaki
    COMBUSTION AND FLAME, 2022, 238
  • [2] Structure of turbulent rich hydrogen-air premixed flames
    Sun, Zuo-Yu
    INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2018, 42 (08) : 2845 - 2858
  • [3] Local flame structure in hydrogen-air turbulent premixed flames
    Tanahashi, M
    Ito, Y
    Fujimura, M
    Miyauchi, T
    IUTAM SYMPOSIUM ON TURBULENT MIXING AND COMBUSTION, 2002, 70 : 269 - 277
  • [4] Diffusive effects of hydrogen on pressurized lean turbulent hydrogen-air premixed flames
    Song, Wonsik
    Hernandez-Perez, Francisco E.
    Im, Hong G.
    COMBUSTION AND FLAME, 2022, 246
  • [5] Structure of lean premixed hydrogen-air flames in an annular microcombustor
    Jejurkar, S. Y.
    Mishra, D. P.
    COMBUSTION EXPLOSION AND SHOCK WAVES, 2012, 48 (05) : 497 - 507
  • [7] Structure of lean premixed hydrogen-air flames in an annular microcombustor
    S. Y. Jejurkar
    D. P. Mishra
    Combustion, Explosion, and Shock Waves, 2012, 48 : 497 - 507
  • [8] 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
  • [9] 5. Direct numerical simulation of hydrogen-air turbulent premixed flames
    M. Tanahashi
    M. Fujimura
    T. Miyauchi
    Journal of Visualization, 1999, 2 (2) : 117 - 117
  • [10] DNS of swirling hydrogen-air premixed flames
    Minamoto, Yuki
    Aoki, Kozo
    Tanahashi, Mamoru
    Swaminathan, Nedunchezhian
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2015, 40 (39) : 13604 - 13620