A CFD four parameter heat transfer turbulence model for engineering applications in heavy liquid metals

被引:73
作者
Manservisi, S. [1 ]
Menghini, F. [1 ]
机构
[1] Univ Bologna, DIN Lab Montecuccolino, I-40136 Bologna, Italy
关键词
Heat transfer turbulence model; Heavy liquid metal; Heat transfer correlations; DIRECT NUMERICAL-SIMULATION; PRANDTL NUMBER; THERMAL FIELD; CHANNEL FLOW; SHEAR FLOWS; WALL; REYNOLDS; DNS; TEMPERATURE;
D O I
10.1016/j.ijheatmasstransfer.2013.10.017
中图分类号
O414.1 [热力学];
学科分类号
摘要
In ordinary fluids, such as water or air, similarity between thermal and dynamical fields holds and it is commonly accepted that implementing a Computational Fluid Dynamics (CFD) code for a two-equation turbulence model with the hypothesis of a constant turbulent Prandtl number in the range 0.85-0.9 is sufficient to obtain reliable results both for velocity and temperature fields. In heavy liquid metals such as sodium, lead and Lead-Bismuth Eutectic (LBE) with low Prandtl number (Pr approximate to 0.025) the time scales of temperature and velocity fields are rather different, because heat transfer is due mainly to molecular diffusion. In these fluids a standard constant turbulent Prandtl number model fails to reproduce correlations build from experimental data and predicts a too high heat transfer. Heavy liquid metals are promising coolant fluids for achieving the necessary requirements of fast nuclear reactors and many European projects have been started with the purpose of developing CFD codes able to correctly predict turbulent heat transfer for these fluids. The present work addresses an effort to improve the prediction of turbulent heat transfer for liquid metal flows in plane and cylindrical geometries assessing a kappa-epsilon-kappa(theta)-epsilon(theta) four parameter turbulence model. In particular the simulations aim to reproduce fully developed thermal and velocity profiles by using a standard finite element implementation of the Navier-Stokes equations coupled with the energy and momentum turbulence models. A modified kappa-epsilon system with low-Reynolds model functions is used for the turbulent velocity field while a kappa(theta)-epsilon(theta) system is employed to compute the turbulent temperature field. The results of the simulations are compared with Direct Numerical Simulations (DNS) data and with heat transfer experimental correlations in order to validate the four parameter turbulence model. Different uniform heat flux boundary conditions with zero and constant temperature fluctuations at the wall are presented. (C) 2013 Elsevier Ltd. All rights reserved.
引用
收藏
页码:312 / 326
页数:15
相关论文
共 38 条
[1]   Surface heat-flux fluctuations in a turbulent channel flow up to Reτ=1020 with Pr=0.025 and 0.71 [J].
Abe, H ;
Kawamura, H ;
Matsuo, Y .
INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2004, 25 (03) :404-419
[2]   A NEW TURBULENCE MODEL FOR PREDICTING FLUID-FLOW AND HEAT-TRANSFER IN SEPARATING AND REATTACHING FLOWS .2. THERMAL FIELD CALCULATIONS [J].
ABE, K ;
KONDOH, T ;
NAGANO, Y .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 1995, 38 (08) :1467-1481
[3]   Towards the development of a Reynolds-averaged algebraic turbulent scalar-flux model [J].
Abe, K ;
Suga, K .
INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2001, 22 (01) :19-29
[4]   A two equation heat transfer model reflecting second-moment closures for wall and free turbulent flows [J].
Abe, K ;
Kondoh, T ;
Nagano, Y .
INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 1996, 17 (03) :228-237
[5]  
[Anonymous], ENG TURBULENCE MODEL
[6]   STREAMLINE UPWIND PETROV-GALERKIN FORMULATIONS FOR CONVECTION DOMINATED FLOWS WITH PARTICULAR EMPHASIS ON THE INCOMPRESSIBLE NAVIER-STOKES EQUATIONS [J].
BROOKS, AN ;
HUGHES, TJR .
COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, 1982, 32 (1-3) :199-259
[7]   CFD analysis of thermal-hydraulic behavior of heavy liquid metals in sub-channels [J].
Cheng, X. ;
Tak, N. I. .
NUCLEAR ENGINEERING AND DESIGN, 2006, 236 (18) :1874-1885
[8]   Investigation on turbulent heat transfer to lead-bismuth eutectic flows in circular tubes for nuclear applications [J].
Cheng, X ;
Tak, N .
NUCLEAR ENGINEERING AND DESIGN, 2006, 236 (04) :385-393
[9]   A near-wall two-equation heat transfer model for wall turbulent flows [J].
Deng, BQ ;
Wu, WQ ;
Xi, ST .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2001, 44 (04) :691-698
[10]  
DWYER OE, 1966, ATOM ENERGY REV, V4, P3