Extension of the eddy dissipation concept and smoke point soot model to the LES frame for fire simulations

被引:38
作者
Chen, Zhibin [1 ]
Wen, Jennifer [2 ]
Xu, Baopeng [1 ]
Dembele, Siaka [1 ]
机构
[1] Univ Kingston, Sch Mech & Automot Engn, Ctr Fire & Explos Studies, London SW15 3DW, England
[2] Univ Warwick, Sch Engn, Coventry CV4 7AL, W Midlands, England
基金
英国工程与自然科学研究理事会;
关键词
Eddy dissipation concept; Smoke point soot model; Large eddy simulation; FireFOAM; Pool fire; COMPUTATIONAL FLUID-DYNAMICS; PHENOMENOLOGICAL MODEL; DIFFUSION; PREDICTIONS; RADIATION; FLAMES;
D O I
10.1016/j.firesaf.2014.01.001
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
The eddy dissipation concept (EDC) is extended to the large eddy simulation (LES) framework following the same logic of the turbulent energy cascade as originally proposed by Magnussen but taking into account the distinctive roles of the sub-grid scale turbulence. A series of structure levels are assumed to exist under the filter width "Delta" in the turbulent energy cascade which spans from the Kolmogorov to the integral scale. The total kinetic energy and its dissipation rate are expressed using the sub-grid scale (SGS) quantities. Assuming infinitely fast chemistry, the filtered reaction rate in the EDC is controlled by the turbulent mixing rate between the fine structures at Kolmogorov scales and the surrounding fluids. In order to extend the laminar smoke point soot model (SPSM) to LES, the partially stirred reactor (PaSR) concept is used to relate the filtered soot formation rate to the soot chemical time scale, which is assumed to be proportional to the laminar smoke point height (SPH) of the fuel. The turbulent mixing time scale for soot is computed as a geometric mean of the Kolmogorov and integral time scale. A new soot oxidation model is also developed by imitating the gas phase combustion within EDC. The newly extended EDC and SPSM are implemented in the open source FireFOAM solver and tested with two medium scale heptane and toluene pool fires with promising results. (C) 2014 Elsevier Ltd. All rights reserved.
引用
收藏
页码:12 / 26
页数:15
相关论文
共 53 条
  • [1] NUMERICAL PREDICTIONS FOR A SIMULATED METHANE FIRE
    ADIGA, KC
    RAMAKER, DE
    TATEM, PA
    WILLIAMS, FW
    [J]. FIRE SAFETY JOURNAL, 1990, 16 (06) : 443 - 458
  • [2] [Anonymous], THESIS WORCESTER POL
  • [3] [Anonymous], 2010, ANSYS FLUENT US GUID
  • [4] HIGH-ORDER VELOCITY STRUCTURE FUNCTIONS IN TURBULENT SHEAR FLOWS
    ANSELMET, F
    GAGNE, Y
    HOPFINGER, EJ
    ANTONIA, RA
    [J]. JOURNAL OF FLUID MECHANICS, 1984, 140 (MAR) : 63 - 89
  • [5] Scalar profiles and NO formation in laminar opposed-flow partially premixed methane/air flames
    Barlow, RS
    Karpetis, AN
    Frank, JH
    Chen, JY
    [J]. COMBUSTION AND FLAME, 2001, 127 (03) : 2102 - 2118
  • [6] Baum H.R., 1997, Fire Safety Science-Proceedings of the Fifth International Symposium, P511, DOI DOI 10.3801/IAFSS.FSS.5-511
  • [7] Determination of soot formation rate from laminar smoke point measurements
    Beji, T.
    Zhang, J. P.
    Delichatsios, M.
    [J]. COMBUSTION SCIENCE AND TECHNOLOGY, 2008, 180 (05) : 927 - 940
  • [8] A novel soot model for fires: Validation in a laminar non-premixed flame
    Beji, T.
    Zhang, J. P.
    Yao, W.
    Delichatsios, M.
    [J]. COMBUSTION AND FLAME, 2011, 158 (02) : 281 - 290
  • [9] Beji T., 2009, THESIS U ULSTER
  • [10] BILGER RW, 1989, ANNU REV FLUID MECH, V21, P101