Extinction limit extension of unsteady counterflow diffusion flames affected by velocity change

被引:8
作者
Lee, UD
Shin, HD
Oh, KC
Lee, KH
Lee, EJ
机构
[1] Korea Adv Inst Sci & Technol, Dept Mech Engn, Taejon 305701, South Korea
[2] Korea Automot Technol Inst, Environm Parts R&D Ctr, Cheonan 330912, Chungnam, South Korea
[3] Hyundai Motor Co, Div Res & Dev, Whasung, Gyunggi Do, South Korea
[4] Korea Inst Construct Technol, Dept Fire & Engn Serv Res, Goyang, Gyeonggi, South Korea
关键词
opposed-jet flame; unsteady extinction process; extinction limit extension; time-dependent flame temperature; OH LIF;
D O I
10.1016/j.combustflame.2005.09.013
中图分类号
O414.1 [热力学];
学科分类号
摘要
The unsteady extinction limit of (CH4 + N-2)/air diffusion flames was investigated in terms of the time history of the strain rate and initial strain rates. A spatially locked flame in an opposed-jet counterflow burner was perturbed using linear velocity variation, and time-dependent flame luminosity and unsteady extinction limits were measured with a high-speed intensified CCD (ICCD) camera. In addition, the transient maximum flame temperature and hydroxyl (OH) radical were measured as a function of time using Rayleigh scattering and OH laser-induced fluorescence, respectively. In this experiment, unsteady flames survive at strain rates that are much higher than the extinction limit of steady flames and unsteady extinction limits increase as the slope of the strain rate increases or as the initial strain rate decreases. We found that the equivalent strain rate represents well the unsteady behavior in the outer convective-diffusive layer of the flame. By using the equivalent strain rate, we were able to accurately estimate the contribution of the unsteady effect in the Outer convective-diffusive layer to the extinction limit extension, and we also identified the unsteady effect in the inner diffusive-reactive layer of the flame. Consequently, the extension of unsteady extinction limits results from the unsteady effects of both the convective-diffusive layer and the diffusive-reactive layer. The former effect is dominant at the beginning of the velocity change, and the latter effect is dominant near the extinction limit. (c) 2005 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
引用
收藏
页码:792 / 808
页数:17
相关论文
共 38 条
[1]   TURBULENT COMBUSTION MODELING [J].
BORGHI, R .
PROGRESS IN ENERGY AND COMBUSTION SCIENCE, 1988, 14 (04) :245-292
[2]  
Brown TM, 1998, TWENTY-SEVENTH SYMPOSIUM (INTERNATIONAL) ON COMBUSTION, VOLS 1 AND 2, P703
[3]  
Chelliah H.K., 1990, 23 S INT COMBUSTION, P503, DOI DOI 10.1016/S0082-0784(06)80297-3
[4]   An unsteady laminar flamelet model for non-premixed combustion [J].
Cuenot, B ;
Egolfopoulos, FN ;
Poinsot, T .
COMBUSTION THEORY AND MODELLING, 2000, 4 (01) :77-97
[5]   TRANSIENT-BEHAVIOR OF LAMINAR COUNTERFLOW HYDROGEN AIR DIFFUSION FLAMES WITH COMPLEX CHEMISTRY [J].
DARABIHA, N .
COMBUSTION SCIENCE AND TECHNOLOGY, 1992, 86 (1-6) :163-181
[6]  
Dixon-Lewis G, 1990, Proc Combust Inst, V23, P305
[7]  
Egolfopoulos FN, 2000, INT J ENERG RES, V24, P989, DOI 10.1002/1099-114X(200009)24:11<989::AID-ER645>3.0.CO
[8]  
2-L
[9]   Unsteady counterflowing strained diffusion flames: Diffusion-limited frequency response [J].
Egolfopoulos, FN ;
Campbell, CS .
JOURNAL OF FLUID MECHANICS, 1996, 318 :1-29
[10]  
HAWORTH DC, 1988, P COMBUST INST, V22, P589