Artificial neural network techniques for the determination of condensation heat transfer characteristics during downward annular flow of R134a inside a vertical smooth tube

被引:53
作者
Balcilar, M. [2 ]
Dalkilic, A. S. [1 ]
Wongwises, S. [3 ]
机构
[1] Yildiz Tech Univ, Heat & Thermodynam Div, Dept Mech Engn, TR-34349 Istanbul, Turkey
[2] Yildiz Tech Univ, Dept Comp Engn, TR-34349 Istanbul, Turkey
[3] King Mongkuts Univ Technol Thonburi, Fluid Mech Thermal Engn & Multiphase Flow Res Lab, Dept Mech Engn, Bangkok 10140, Thailand
关键词
Condensation; Heat transfer coefficient; Pressure drop; Modeling; Neural network; VOID FRACTION MODELS; FRICTIONAL PRESSURE-DROP; HIGH-MASS FLUX; TRANSFER COEFFICIENT; SURFACE CONDENSATION; PATTERN TRANSITION; FILM CONDENSATION; THICKNESS;
D O I
10.1016/j.icheatmasstransfer.2010.10.009
中图分类号
O414.1 [热力学];
学科分类号
摘要
In this study, the best artificial intelligence method is investigated to estimate the measured convective heat transfer coefficient and pressure drop of R134a flowing downward inside a vertical smooth copper tube having an inner diameter of 8.1 mm and a length of 500 mm during annular flow numerically. R134a and water are used as working fluids in the tube side and annular side of a double tube heat exchanger, respectively. The ANN training sets have the experimental data of in-tube condensation tests including six different mass fluxes of R134a such as 260, 300, 340, 400, 456 and 515 kg m(-2) s(-1), two different saturation temperatures of R134a such as 40 and 50 degrees C and heat fluxes ranging from 10.16 to 66.61 kW m(-2). The quality of the refrigerant in the test section is calculated considering the temperature and pressure obtained from the experiment. The pressure drop across the test section is directly measured by a differential pressure transducer. Input of the ANNs are the measured values of test section such as mass flux, heat flux, the temperature difference between the tube wall and saturation temperature, average vapor quality, while the outputs of the ANNs are the experimental condensation heat transfer coefficient and measured pressure drop in the analysis. Condensation heat transfer characteristics of R134a are modeled to decide the best approach using several artificial neural network (ANN) methods such as multilayer perceptron (MLP), radial basis networks (RBFN), generalized regression neural network (GRNN) and adaptive neuro-fuzzy inference system (ANFIS). Elimination process of the ANN methods is performed by means of 183 data points, divided into two sets randomly, obtained in the experiments. Sets of test and training/validation include 33 and 120/30 data points respectively for the elimination process. Validation process, in terms of various experimental conditions, is done by means of 368 experimental data points having 68 data points for test set and 300 data points for training set. In training phase, 5-fold cross validation is used to determine the best value of ANNs control parameters. The ANNs performances were measured by means of relative error criteria with the usage of unknown test sets. The performance of the method of multi layer perceptron (MLP) with 5-13-1 architecture and radial basis function networks (RBFN) were found to be in good agreement, predicting the experimental condensation heat transfer coefficient and pressure drop with their deviations being within the range of +/- 5% for all tested conditions. Dependency of outputs of the ANNs from input values is also investigated in the paper. (C) 2010 Elsevier Ltd. All rights reserved.
引用
收藏
页码:75 / 84
页数:10
相关论文
共 39 条
[1]  
Akers W.W., 1959, Chemical Engineering Progress Symposium Series, V55, P171
[2]  
[Anonymous], 2010, MATLAB R2010A
[3]   FLOW PATTERN TRANSITION FOR VERTICAL DOWNWARD 2 PHASE FLOW [J].
BARNEA, D ;
SHOHAM, O ;
TAITEL, Y .
CHEMICAL ENGINEERING SCIENCE, 1982, 37 (05) :741-744
[4]   HEAT-TRANSFER AND FILM THICKNESS DURING CONDENSATION OF STEAM FLOWING AT HIGH-VELOCITY IN A VERTICAL PIPE [J].
BELLINGHAUSEN, R ;
RENZ, U .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 1992, 35 (03) :683-689
[5]  
Bergelin O. P., 1946, M BERK CAL US JUN AS, P19
[6]  
Carey VP, 2020, Liquid-vapor Phase-change Phenomena: An Introduction to the Thermophysics of Vaporization and Condensation Processes in Heat Transfer Equipment. Series in chemical and mechanical engineering
[7]  
Cavallini A., 1974, P 6 INT HEAT TRANSFE, V3, P309, DOI DOI 10.1615/IHTC5.1220
[8]  
Chen SL, 1987, EXP HEAT TRANSFER, V1, P93
[9]   Two-phase friction factor in vertical downward flow in high mass flux region of refrigerant HFC-134a during condensation [J].
Dalkilic, A. S. ;
Laohalertdecha, S. ;
Wongwises, S. .
INTERNATIONAL COMMUNICATIONS IN HEAT AND MASS TRANSFER, 2008, 35 (09) :1147-1152
[10]   Effect of void fraction models on the two-phase friction factor of R134a during condensation in vertical downward flow in a smooth tube [J].
Dalkilic, A. S. ;
Laohalertdecha, S. ;
Wongwises, S. .
INTERNATIONAL COMMUNICATIONS IN HEAT AND MASS TRANSFER, 2008, 35 (08) :921-927