超临界流体
传热
材料科学
努塞尔数
热力学
对流换热
甲烷
机械
热流密度
湍流
超临界流
传热系数
推进剂
化学
物理
雷诺数
有机化学
作者
Yazhou Wang,Yi-Xin Hua,Hua Meng
出处
期刊:Journal of Thermophysics and Heat Transfer
[American Institute of Aeronautics and Astronautics]
日期:2010-07-01
卷期号:24 (3): 490-500
被引量:127
摘要
DOI: 10.2514/1.46769 In this paper, comprehensive numerical studies of the turbulent convective heat transfer of the cryogenicpropellant methane flowing inside a horizontal minitube under supercritical pressures have been conducted, based on a complete set of conservation equations and accurate evaluations of the thermophysical properties. The present numerical investigations focus on fundamental understanding of the effects of many key parameters, including the inlet pressure, wall heat flux, inlet velocity, and inlet temperature, on the supercritical heat transfer phenomena and the variations of the Nusselt number. Results indicate that drastic property variations at the pseudocritical temperature under a supercritical pressure would cause local heat transfer deterioration. Increasing the inlet methane pressure would result in improved heat transfer at supercritical pressures, particularly under a high wall heat flux,i.e.,7 MW=m 2 .Theconventionalempiricalexpressions,i.e.,theGnielinskiequation,cannotbeusedforthe supercritical heat transfer predictions of the cryogenic-propellant methane at supercritical pressures. A modified heattransferexpression,whichisapplicabletothesupercriticalcryogenicmethane,hasbeensuccessfullyestablished in this paper.
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