4.7 Article

Numerical study on cooling heat transfer of turbulent supercritical CO2 in large horizontal tubes

期刊

INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER
卷 126, 期 -, 页码 1002-1019

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijheatmasstransfer.2018.06.070

关键词

sCO(2); Large horizontal tube; Cooling heat transfer; Turbulence model; Tube diameter; Buoyancy

资金

  1. Australia Government, through the Australia Renewable Energy Agency (ARENA)
  2. China Scholarship Council (CSC)

向作者/读者索取更多资源

This paper presents the results of computational investigations on cooling heat transfer of turbulent sCO(2) in three horizontal tubes with diameter of 15.75 mm, 20.00 mm and 24.36 mm using RANS turbulence models at a pressure of P = 8.0 MPa. Four models with good prediction performance demonstrated in literature (RNG k - epsilon model and three other low-Reynolds number models of k - epsilon, YS and AKN) have been validated against experimental measurements and to observe that results from the AKN model are closer to experimental data. Details of heat transfer behaviour of sCO(2) cooled in horizontal tubes within this diameter range are revealed and the influence of heat flux, tube diameter and buoyancy on heat transfer performance-have been discussed; Results-demonstrate that at T-b > T-pc (pseudocritical temperature), sCO(2) heat transfer performance is enhanced as the heat flux and tube diameter increase; whereas at T-b < T-pc the heat flux and tube diameter almost do not affect the heat transfer performance. The buoyancy effect only generates slight enhancement for turbulent heat transfer from sCO(2) flowing in horizontal tubes with large diameters. However, as the values of Richardson number Ri that quantifies the buoyancy effects continue increasing within Ri > 0.1, the buoyant force is enhanced, which in turn impairs the heat transfer near T-pc. This is a result contrary to past reports confined to small diameter tubes, which is mainly attributed to the accumulation of denser cold fluids at the bottom of the pipe when buoyancy effects are strong. (C) 2018 Elsevier Ltd. All rights reserved.

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