RADIATION AFFECTED LIQUID FUEL BURNING ON WATER

被引:13
作者
ALRAMADHAN, MA
ARPACI, VS
SELAMET, A
机构
[1] Department of Mechanical Engineering, University of Michigan, Ann Arbor
关键词
D O I
10.1080/00102209008951649
中图分类号
O414.1 [热力学];
学科分类号
摘要
A model for the radiation affected liquid fuel burning on water is developed which improves substantially on an existing model by including the turbulent fire plume and the explicit effects (hotness and optical thickness) of fire radiation. In achieving these objectives, the experimental literature on flame height and velocity is utilized. The fire plume above the slick is divided into three regions: The continuous flame; the intermittent flame; and the thermal plume. To describe the fire plume, Taylor's entrainment model is used which assumes top-hat profiles for the radial velocity and temperature and relates the entrainment and vertical velocities at a given height. The contributions from gaseous combustion products, mainly CO2 and H2O, as well as from particulate matter to radiative heat transfer are also accounted for. Both linear and nonlinear solutions are obtained and compared to examine the accuracy of the usual approach of linearization in the radiative transport equations. The effect of radiation on fuel burning is demonstrated as a function of the flame hotness and optical thickness. Radiation is shown to lower the temperatures in the high temperature region of the flame and raise the temperatures in the low temperature region near the fuel surface. It is further shown that fuel burning increases monotonically with increase in radiation effects. It is concluded that the contribution of fire radiation to fuel burning is substantial and may exceed that of conduction heat transfer by an order of magnitude. The model is also compared with available data for crude oil burning on water, yielding reasonable trends within the uncertainty of the experimental literature. © 1990, Taylor & Francis Group, LLC. All rights reserved.
引用
收藏
页码:233 / 253
页数:21
相关论文
共 66 条
[21]  
BLOCK JA, 1970, THESIS HARVARD U
[22]  
BRZUSTOWSKI TA, 1982, 19 S INT COMB COMB I, P847
[23]  
Carslaw H. S., 1986, CONDUCTION HEAT SOLI
[24]   SOME SOURCE-DEPENDENT EFFECTS OF UNBOUNDED FIRES [J].
COX, G ;
CHITTY, R .
COMBUSTION AND FLAME, 1985, 60 (03) :219-232
[25]   A STUDY OF THE DETERMINISTIC PROPERTIES OF UNBOUNDED FIRE PLUMES [J].
COX, G ;
CHITTY, R .
COMBUSTION AND FLAME, 1980, 39 (02) :191-209
[26]  
D'Souza MV., 1977, FIRE TECHNOL, V13, P85, DOI 10.1007/BF02303053
[27]   AIR ENTRAINMENT INTO BUOYANT JET FLAMES AND POOL FIRES [J].
DELICHATSIOS, MA .
COMBUSTION AND FLAME, 1987, 70 (01) :33-46
[28]   DIMENSIONLESS CORRELATION OF POOL BURNING DATA [J].
DERIS, J ;
ORLOFF, L .
COMBUSTION AND FLAME, 1972, 18 (03) :381-&
[29]  
DeRis J., 1979, 17 S INT COMB COMB I, P1003
[30]   CALCULATION OF EMISSIVITY OF LUMINOUS FLAMES [J].
FELSKE, JD ;
TIEN, CL .
COMBUSTION SCIENCE AND TECHNOLOGY, 1973, 7 (01) :25-31