DRYOUT STABILITY AND INCEPTION AT LOW FLOW-RATES

被引:11
作者
DUFFEY, RB
HUGHES, ED
机构
[1] Energy and Systems technology, EG and G Idaho, Inc., Idaho Falls, ID 80415-2403
关键词
D O I
10.1016/0017-9310(91)90266-H
中图分类号
O414.1 [热力学];
学科分类号
摘要
A theoretical model for the heat flux required to maintain a stable hot patch on a heated surface cooled by a falling liquid film is developed. The theoretical model is based on an existing analytical solution of the two-dimensional heat equation with boundary conditions supplied by heat transfer coefficient correlations appropriate to the fluid conditions at the hot dry patch and at the wet region from the patch. Using physically reasonable correlation forms for the dry patch and wet region heat transfer coefficients, the heat flux is expressed as a function of the liquid film Reynolds number. Existing experimental data were compiled, collected, and used to obtain the correlating lines. The data cover the one-dimensional (low Biot number) region, and indicate that laminar and turbulent liquid film conditions occur. Corresponding correlating equations are obtained from the analytical results. For laminar flow, the dryout heat flux is q(D) = 0.27Re0.5, and for turbulent flow q(D) = 0.017Re0.9, with an uncertainty of the order of +/- 50%.
引用
收藏
页码:473 / 481
页数:9
相关论文
共 19 条
[1]  
BERTA VT, 1989, DOE ESHSRP389 REP
[2]  
CHUN KR, 1971, T ASME, P391
[3]   PHYSICS OF REWETTING IN WATER REACTOR EMERGENCY CORE COOLING [J].
DUFFEY, RB ;
PORTHOUSE, DT .
NUCLEAR ENGINEERING AND DESIGN, 1973, 25 (03) :379-394
[4]   HEAT-TRANSFER TO FALLING LIQUID-FILMS AND FILM BREAKDOWN .1. SUBCOOLED LIQUID-FILMS [J].
FUJITA, T ;
UEDA, T .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 1978, 21 (02) :97-108
[5]  
Gogonin I. I., 1979, Fluid Mechanics - Soviet Research, V8, P103
[7]  
KOVALEV SA, 1964, TEPLOFIZ VYS TEMP, V2, P1219
[8]  
LUSSIE WG, 1989, DOE EGGESH8433 REP
[9]   EFFECT OF CHANNEL GEOMETRY ON CRITICAL HEAT-FLUX FOR LOW-PRESSURE WATER [J].
MISHIMA, K ;
NISHIHARA, H .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 1987, 30 (06) :1169-1182
[10]   THE EFFECT OF FLOW DIRECTION AND MAGNITUDE ON CHF FOR LOW-PRESSURE WATER IN THIN RECTANGULAR CHANNELS [J].
MISHIMA, K ;
NISHIHARA, H .
NUCLEAR ENGINEERING AND DESIGN, 1985, 86 (02) :165-181