Large-eddy simulation of a counterflow configuration with and without combustion

被引:38
作者
Kempf, A
Forkel, H
Chen, JY
Sadiki, A
Janicka, J
机构
[1] Tech Univ Darmstadt, Fachgebiet Energie & Kraftwerkstech, D-64287 Darmstadt, Germany
[2] Univ Calif Berkeley, Dept Mech Engn, Berkeley, CA 94720 USA
来源
PROCEEDINGS OF THE COMBUSTION INSTITUTE | 2000年 / 28卷 / 28期
关键词
D O I
10.1016/S0082-0784(00)80192-7
中图分类号
O414.1 [热力学];
学科分类号
摘要
A large-eddy simulation in three dimensions was used to study the flow, mixing fields, aid combustion in a counterflow burner. A non-reactive case (air/air jets) and a reactive case (methane/air jets) were investigated. Such a configuration is well suited to study and calibrate models for non-premixed flames because of its simplicity and versatility. In the numerical method, fluctuations of density in space and time were considered to depend only on chemistry, not on pressure. The effect of heat release was included by means of the mixture-fraction formulation. To represent the subgrid scale stresses and scalar flux, a Smagorinsky model was used, in which the Smagorinsky coefficient was determined by the dynamic Germane procedure. An equilibrium chemistry model was used to relate the mixture fraction to density temperature, and species concentrations. The subgrid distribution of the mixture-fraction fluctuation was presumed to have the shape of a beta -function. The computed results were found to be in overall agreement with experimental data for the non-reactive case. For the reactive case, in which a simple combustion model was used, a satisfactory agreement with measured data was achieved. A strong influence of combustion on turbulence mechanisms is apparent.
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页码:35 / 40
页数:6
相关论文
共 15 条
[1]   PREMIXED FLAMES IN STAGNATING TURBULENCE .1. THE GENERAL FORMULATION FOR COUNTERFLOWING STREAMS AND GRADIENT MODELS FOR TURBULENT TRANSPORT [J].
BRAY, KNC ;
CHAMPION, M ;
LIBBY, PA .
COMBUSTION AND FLAME, 1991, 84 (3-4) :391-410
[2]   A SUBGRID MODEL FOR EQUILIBRIUM CHEMISTRY IN TURBULENT FLOWS [J].
COOK, AW ;
RILEY, JJ .
PHYSICS OF FLUIDS, 1994, 6 (08) :2868-2870
[3]   Subgrid-scale modeling for turbulent reacting flows [J].
Cook, AW ;
Riley, JJ .
COMBUSTION AND FLAME, 1998, 112 (04) :593-606
[4]  
FORKEL H, 1999, THESIS TU DARMSTADT
[5]  
FORKEL H, 1999, TURBULENCE SHEAR FLO, V1, P65
[6]   A DYNAMIC SUBGRID-SCALE EDDY VISCOSITY MODEL [J].
GERMANO, M ;
PIOMELLI, U ;
MOIN, P ;
CABOT, WH .
PHYSICS OF FLUIDS A-FLUID DYNAMICS, 1991, 3 (07) :1760-1765
[7]  
Jones W., 1994, TURBULENT REACTING F, P309
[8]  
JONES WP, 1996, P COMBUST INST, V26, P275
[9]   SCALAR DISSIPATION RATE AT THE EXTINCTION OF TURBULENT COUNTERFLOW NONPREMIXED FLAMES [J].
MASTORAKOS, E ;
TAYLOR, AMKP ;
WHITELAW, JH .
COMBUSTION AND FLAME, 1992, 91 (01) :55-64
[10]  
MASTORAKOS E, 1999, TURBULENT SHEAR FLOW, V9