Evolution of averaged local premixed flame thickness in a turbulent flow

被引:22
|
作者
Yu, Rixin [1 ]
Nillson, Thommie [1 ]
Bai, Xue-Song [1 ]
Lipatnikov, Andrei N. [2 ]
机构
[1] Lund Univ, Dept Energy Sci, Div Fluid Mech, S-22100 Lund, Sweden
[2] Chalmers Univ Technol, Dept Mech & Maritime Sci, S-41296 Gothenburg, Sweden
基金
瑞典研究理事会;
关键词
Turbulent reacting flow; Turbulent combustion; Flame thickness; DNS; Conditioned statistics; DIRECT NUMERICAL-SIMULATION; THIN REACTION ZONES; SURFACE-DENSITY FUNCTION; FRONT STRUCTURE; COMBUSTION; PROPAGATION; SPEED; IMPLEMENTATION; CH4/AIR; STRETCH;
D O I
10.1016/j.combustflame.2019.05.045
中图分类号
O414.1 [热力学];
学科分类号
摘要
In the combustion literature, contradictory results on the influence of turbulence on the local thickness of a premixed flame can be found and the present paper aims at contributing to reconcile this issue. First, different measures of local flame thickness in a turbulent flow, e.g. area-weighted and unweighted surface-averaged values of (i) vertical bar del c vertical bar, i.e., the absolute value of 3D gradient of the combustion progress variable c, or (ii) 1/vertical bar del c vertical bar, are studied and analytical relationships/inequalities between them are obtained. Second, the evolution of the different flame thickness measures is explored by numerically evaluating them, as well as various terms in relevant evolution equations derived analytically. To do so, various measures and terms are extracted from DNS data obtained from (i) a highly turbulent, constant-density, dynamically passive, single-reaction wave, (ii) moderately and highly turbulent, single-step-chemistry flames, and (iii) moderately and highly turbulent, complex-chemistry lean methane-air flames. In all those cases, all studied flame thickness measures are reduced during an early stage of premixed turbulent flame development, followed by local flame re-broadening at later stages. Analysis of various terms in the aforementioned evolution equations shows that the initial local flame thinning is controlled by turbulent strain rates. The subsequent local flame re-broadening is controlled by (i) curvature contribution to the stretch rate, which counter-balances the strain rate, (ii) spatial non-uniformities of the normal diffusion contribution to the local displacement-speed vector S(d)n, and (iii) dilatation, which plays an important role in moderately turbulent flames, but a minor role in highly turbulent flames. Moreover, the present study shows that differently defined measures of a local flame thickness can be substantially different. This difference should also be borne in mind when comparing data that indicate local flame thinning with data that indicate local flame broadening. (C) 2019 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
引用
收藏
页码:232 / 249
页数:18
相关论文
共 50 条
  • [41] FLAME BROADENING EFFECTS ON PREMIXED TURBULENT FLAME SPEED
    RONNEY, PD
    YAKHOT, V
    COMBUSTION SCIENCE AND TECHNOLOGY, 1992, 86 (1-6) : 31 - 43
  • [42] Numerical Study on Dynamics of Local Flame Elements in Turbulent Jet Premixed Flames
    Yamayaki, K.
    Shim, Y-S
    Fukushima, N.
    Shimura, M.
    Tanahashi, M.
    Miyauchi, T.
    9TH WORLD CONGRESS ON COMPUTATIONAL MECHANICS AND 4TH ASIAN PACIFIC CONGRESS ON COMPUTATIONAL MECHANICS, 2010, 10
  • [43] Turbulent consumption speed via local dilatation rate measurements in a premixed bunsen jet
    Troiani, Guido
    Battista, Francesco
    Picano, Francesco
    COMBUSTION AND FLAME, 2013, 160 (10) : 2029 - 2037
  • [44] Flamelet characteristics at the leading edge and through the flame brush of statistically steady incompressible turbulent premixed flames
    Kwon, Jaesung
    Park, Yeongdo
    Huh, Kang Y.
    COMBUSTION AND FLAME, 2016, 164 : 85 - 98
  • [45] Ensemble-averaged dynamics of harmonically forced, turbulent premixed flames
    Somappa, Sukruth
    Emerson, Benjamin
    Lieuwen, Tim
    JOURNAL OF FLUID MECHANICS, 2025, 1008
  • [46] Towards the Development of an Evolution Equation for Flame Turbulence Interaction in Premixed Turbulent Combustion
    Ahmed, Umair
    Prosser, Robert
    Revell, Alistair J.
    FLOW TURBULENCE AND COMBUSTION, 2014, 93 (04) : 637 - 663
  • [47] Network topology of turbulent premixed Bunsen flame at elevated pressure and turbulence intensity
    Wang, Jinhua
    Nie, Yaohui
    Zhang, Weijie
    Guo, Shilong
    Zhang, Meng
    Huang, Zuohua
    AEROSPACE SCIENCE AND TECHNOLOGY, 2019, 94
  • [48] Evolution of Flame Curvature in Turbulent Premixed Bunsen Flames at Different Pressure Levels
    Alqallaf, Ahmad
    Klein, Markus
    Dopazo, Cesar
    Chakraborty, Nilanjan
    FLOW TURBULENCE AND COMBUSTION, 2019, 103 (02) : 439 - 463
  • [49] Effect of Pressure on Local Flame Propagation Characteristics of Hydrogen-Rich Syngas Turbulent Premixed Flame
    Zhang, Guo-Peng
    Li, Guo-Xiu
    Li, Hong-Meng
    Cao, Jian-Bin
    JOURNAL OF ENERGY ENGINEERING, 2023, 149 (05)
  • [50] A DNS assessment of linear relations between filtered reaction rate, flame surface density, and scalar dissipation rate in a weakly turbulent premixed flame
    Lipatnikov, Andrei N.
    Nishiki, Shinnosuke
    Hasegawa, Tatsuya
    COMBUSTION THEORY AND MODELLING, 2019, 23 (02) : 245 - 260