Transient natural convection in a cylindrical enclosure at high Rayleigh numbers

被引:81
作者
Papanicolaou, E [1 ]
Belessiotis, V [1 ]
机构
[1] Natl Ctr Sci Res Demokritos, Solar & Other Energy Syst Lab, GR-15310 Athens, Greece
关键词
D O I
10.1016/S0017-9310(01)00258-7
中图分类号
O414.1 [热力学];
学科分类号
摘要
The transient state of natural convection in a vertical cylindrical enclosure is studied numerically for water at high Rayleigh numbers, extending into values characteristic of the turbulent flow regime. Several two-equation turbulence models are used for this purpose. Heating is provided along the cylindrical surface at a constant heat flux, with the horizontal bounding surfaces being adiabatic and the development of stratification is studied. Such a configuration is very relevant to thermal storage tanks or solar thermal system vessels and the study aims at providing insight into the behavior of the system at the boundary between laminar and turbulent flow so that the appropriate numerical treatment may be adopted in future studies. The main aspect ratio considered is L/D = 1 and the Rayleigh number (based on the length L) varies in the range 10(10) greater than or equal to Ra greater than or equal to 10(13) for laminar flow and 5 x 10(13) greater than or equal to Ra greater than or equal to 10(15) for turbulent flow, values for which previous data in the literature are all but non-existent. The attainment of a quasi-steady state is achieved after the fluid undergoes an oscillating pattern where secondary flows alternately appear and vanish. These patterns affect the development of stratification in the vessel, Low-Reynolds k-epsilon models predict eventually a relaminarization at large times, but models employing the high-Re form of the k-epsilon model obtain sustained or very slowly decaying turbulence instead. Comparisons are made with experimental results where applicable. (C) 2002 Published by Elsevier Science Ltd.
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页码:1425 / 1444
页数:20
相关论文
共 35 条
[1]   A NEW TURBULENCE MODEL FOR PREDICTING FLUID-FLOW AND HEAT-TRANSFER IN SEPARATING AND REATTACHING FLOWS .1. FLOW-FIELD CALCULATIONS [J].
ABE, K ;
KONDOH, T ;
NAGANO, Y .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 1994, 37 (01) :139-151
[2]  
[Anonymous], ADV HEAT TRANSFER
[3]   TESTING SOLAR WATER HEATING-SYSTEMS IN ATHENS, GREECE [J].
BELESSIOTIS, V ;
HARALAMBOPOULOS, D .
SOLAR ENERGY, 1993, 50 (02) :167-177
[4]   Numerical study of transient mixed convection in a cylindrical cavity [J].
Bouhdjar, A ;
Benkhelifa, A ;
Harhad, A .
NUMERICAL HEAT TRANSFER PART A-APPLICATIONS, 1997, 31 (03) :305-324
[5]  
CHEESEWRIGHT R, 1986, SIGNIFICANT QUESTION, P75
[7]   TURBULENT NATURAL-CONVECTION OF LIQUID DEUTERIUM, HYDROGEN AND NITROGEN WITHIN ENCLOSED VESSELS [J].
DANEY, DE .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 1976, 19 (04) :431-441
[8]   CALCULATION OF THE TURBULENT BUOYANCY-DRIVEN FLOW IN A RECTANGULAR CAVITY USING AN EFFICIENT SOLVER AND 2 DIFFERENT LOW REYNOLDS-NUMBER K-EPSILON TURBULENCE MODELS [J].
DAVIDSON, L .
NUMERICAL HEAT TRANSFER PART A-APPLICATIONS, 1990, 18 (02) :129-147
[9]   NATURAL-CONVECTION IN A SQUARE CAVITY - A COMPARISON EXERCISE [J].
DAVIS, GD ;
JONES, IP .
INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN FLUIDS, 1983, 3 (03) :227-248
[10]   TRANSIENT NATURAL CONVECTION IN A VERTICAL CYLINDER [J].
EVANS, LB ;
REID, RC ;
DRAKE, EM .
AICHE JOURNAL, 1968, 14 (02) :251-&