Large-eddy simulation of premixed turbulent combustion using a level-set approach

被引:219
作者
Pitsch, H [1 ]
De Legeneste, LD [1 ]
机构
[1] Stanford Univ, Ctr Turbulence Res, Stanford, CA 94305 USA
关键词
D O I
10.1016/S1540-7489(02)80244-9
中图分类号
O414.1 [热力学];
学科分类号
摘要
In the present study, we have formulated the G equation concept for large-eddy simulation (LES) of premixed turbulent combustion. The developed model for the subgrid burning velocity is shown to correctly reflect Damkohler's limits for large- and small-scale turbulence. From the discussion of the regime diagram for turbulent premixed combustion, it is shown that given a particular configuration of flow parameters, changes in the LES filter width result in changes along constant Karlovitz number fines. The Karlovitz number is chosen as the horizontal axis to construct a new regime diagram for LES of premixed turbulent combustion, where changes in the filter width are represented by vertical lines. In addition, some new regimes appear in the new diagram, which are related to the numerical treatment. An important conclusion is that changes in the filter width cannot result in changes of the combustion regime among the corrugated flamelets, thin reaction zones, and broken reaction zones regimes. This is a consistency requirement for the model, since the choice of the filter width cannot change the fundamental combustion mode. With decreasing filter width, changes from corrugated to wrinkled flamelets, or in general to a laminar regime, are possible. In applying the model in a numerical simulation of a turbulent Bunsen burner experiment, it is shown that the results predict the mean flame front location, and thereby the turbulent burning velocity and the influence of the heat release on the flow field in good agreement with experimental data.
引用
收藏
页码:2001 / 2008
页数:8
相关论文
共 24 条
[1]   Large-eddy simulation of turbulent confined coannular jets [J].
Akselvoll, K ;
Moin, P .
JOURNAL OF FLUID MECHANICS, 1996, 315 :387-411
[2]   LES of chemical and acoustic forcing of a premixed dump combustor [J].
Angelberger, C ;
Veynante, D ;
Egolfopoulos, F .
FLOW TURBULENCE AND COMBUSTION, 2000, 65 (02) :205-222
[3]   A numerical investigation on the effect of the inflow conditions on the self-similar region of a round jet [J].
Boersma, BJ ;
Brethouwer, G ;
Nieuwstadt, FTM .
PHYSICS OF FLUIDS, 1998, 10 (04) :899-909
[4]  
Borghi R., 1985, RECENT ADV AEROSPACE, P117, DOI DOI 10.1007/978-1-4684-4298-4_7
[5]  
BOWMAN CT, 1995, GRIMECH 2 11
[6]   Large-Eddy Simulation of turbulent premixed flames in the flamelet regime [J].
Chakravarthy, VK ;
Menon, S .
COMBUSTION SCIENCE AND TECHNOLOGY, 2001, 162 (1-6) :175-+
[7]   The detailed flame structure of highly stretched turbulent premixed methane-air flames [J].
Chen, YC ;
Peters, N ;
Schneemann, GA ;
Wruck, N ;
Renz, U ;
Mansour, MS .
COMBUSTION AND FLAME, 1996, 107 (03) :223-244
[8]   A thickened flame model for large eddy simulations of turbulent premixed combustion [J].
Colin, O ;
Ducros, F ;
Veynante, D ;
Poinsot, T .
PHYSICS OF FLUIDS, 2000, 12 (07) :1843-1863
[9]  
DAMKOHLER G, 1940, Z ELEKTROCHEM, V46, P601, DOI DOI 10.1002/BBPC.19400461102
[10]   A flame surface density approach to large-eddy simulation of premixed turbulent combustion [J].
Hawkes, ER ;
Cant, RS .
PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2000, 28 :51-58