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Hydrodynamics and thermal performance of turbulent falling films through horizontal tube bundles.

Authors :
Zhao, Chuang-Yao
Yao, Zhuo-Liang
Qi, Di
Ji, Wen-Tao
Tao, Wen-Quan
Source :
International Journal of Multiphase Flow. Jan2023, Vol. 158, pN.PAG-N.PAG. 1p.
Publication Year :
2023

Abstract

• Studied numerically the falling film flow and heat transfer under turbulent regime. • Clarified the dominant factors tube bundle effect in the turbulent condition. • Compared fluid flow and heat transfer results between laminar and turbulent regimes. • Recommended the key parameters and factors for a higher heat transfer performance. Turbulent falling films are commonly encountered in the practical operations of most falling film applications, but the relevant numerical study is very scarce. The hydrodynamics and thermal performance of falling films in horizontal tube bundles under the turbulent regime were numerically investigated in this study. The calculation ranges are: film Reynolds number from 3505 to 8034, heat flux of 47.3 kWm−2, inlet liquid temperature of 46 °C, tube diameter of 19.0 mm and liquid distributor height of 6.4 mm. Based on the results of the present numerical model, the Standard k - ω model is more suitable in reproducing the falling film heat transfer profile, as the present numerical model accurately predicted the turbulent falling film heat transfer characteristics. There are various hydrodynamics depending on the bundle arrangement and flow regime, including splashing, bridging, gas entrainment, Coanda effect, and liquid film thickness. The triangular bundle provides the highest heat transfer coefficient, but the square bundle provides the poorest one, and the square and rotated-triangular tube bundles behave the largest and smallest bundle effect, respectively. The bundle effect is generally independent of film Reynolds number, liquid feeder height and tube spacing. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
03019322
Volume :
158
Database :
Academic Search Index
Journal :
International Journal of Multiphase Flow
Publication Type :
Academic Journal
Accession number :
160290075
Full Text :
https://doi.org/10.1016/j.ijmultiphaseflow.2022.104299