A LIQUID-POOL SIMULATION OF DROPLET COMBUSTION IN A SWIRL FLOW

被引:8
作者
HOU, SS
LIN, TH
机构
[1] Department of Mechanical Engineering, National Cheng Kung University, Tainan
来源
JOURNAL OF ENERGY RESOURCES TECHNOLOGY-TRANSACTIONS OF THE ASME | 1993年 / 115卷 / 03期
关键词
D O I
10.1115/1.2905990
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The influence of flow rotation on droplet combustion and evaporation are experimentally studied by using a burning liquid-pool system, and numerically investigated by considering a nonreactive, rotating, stagnation-point flow, respectively. The experiment involves measurements of flame temperature, flame position and evaporation rate of the liquid pool, observations of the recirculation zone and the soot layer, and identification of flame extinction. A finite-volume method is employed to numerically solve the corresponding transport equations. Calculated results show that in the vicinity of the liquid surface, both convection and diffusion transports are weakened by the flow rotation, resulting in the suppression of the evaporation strength of liquid, the recirculation zone can be identified and compared with experimental observation. For the steady burning of an ethanol pool in a swirling air jet, it is found that as the angular velocity increases, the diffusion flame shifts closer to the upper burner, has a larger flame thickness, experiences a smaller flame stretch, but suffers from the reduction of mass diffusion of ethanol vapor to the flame. However, the evaporation rate of ethanol is usually decreased with increasing angular velocity. In the flame extinction experiment, the critical volumetric oxygen concentration at extinction first decreases to a minimum value and then increases with angular velocity. It is generally concluded that flow rotation reduces the rates of both droplet combustion and evaporation.
引用
收藏
页码:175 / 182
页数:8
相关论文
共 29 条
[1]  
Chen Z.H., Liu G.E., Sohrab S.H., Premixed Flames in Counterflows Jets under Rigid-Body Rotation, Combustion Science and Technology, 51, pp. 39-50, (1987)
[2]  
Churng F.J., Chang C.K., Lin T.H., Diffusion Flames in Corotating and Counterrotating Counterflows, International Journal of Japanese Mechanical Engineering, 35, 1, pp. 95-102, (1992)
[3]  
Faeth G.M., Current Status of Droplet and Liquid Combustion, Progress in Energy and Combustion Science, 3, pp. 191-224, (1977)
[4]  
Femandez-Pello A.C., An Analysis of the Forced Convective Burning of a Combustible Particle, Combustion Science and Technology, 28, pp. 305-313, (1982)
[5]  
Fernandez-Pello A.C., Law C.K., A Theory for the Free-Convective Burning of a Condensed Fuel Particle, Combustion and Flame, 44, pp. 97-112, (1982)
[6]  
Fernandez-Pello A.C., Law C.K., On the Mixed-Convective Flame Structure in the Stagnation Point of a Fuel Particle, Proceedings, 19Th Symposium (International) on Combustion, pp. 1037-1044, (1982)
[7]  
Frossling N., Gerlands Beitr, Geophys., 52, (1938)
[8]  
Hamins A., Seshadri K., Prediction of Overall Chemical Kinetic Rate Parameters near Extinction for Diffusion Flames Burning Multicomponent Fuels, Combustion Science and Technology, 38, pp. 89-103, (1984)
[9]  
Hamins A., Seshadri K., The Influence of Alcohols on the Combustion of Hydrocarbon Fuels in Diffusion Flames, Combustion and Flame, 64, pp. 43-54, (1986)
[10]  
Hou S.S., Chang K.C., Lin T.H., Analysis of Finite Laminar Opposed-Jets with and without Rigid-Body Rotation, International Journal of Heat and Mass Transfer, 35, 4, pp. 945-956, (1992)