Effect of turbulence models on predicting convective heat transfer to hydrocarbon fuel at supercritical pressure

湍流 超临界流体 浮力 传热 热力学 对流换热 机械 热流密度 对流 材料科学 热导率 物理
作者
Zhi Tao,Zeyuan Cheng,Jianqin Zhu,Haiwang Li
出处
期刊:Chinese Journal of Aeronautics [Elsevier BV]
卷期号:29 (5): 1247-1261 被引量:59
标识
DOI:10.1016/j.cja.2016.08.007
摘要

A variety of turbulence models were used to perform numerical simulations of heat transfer for hydrocarbon fuel flowing upward and downward through uniformly heated vertical pipes at supercritical pressure. Inlet temperatures varied from 373 K to 663 K, with heat flux ranging from 300 kW/m2 to 550 kW/m2. Comparative analyses between predicted and experimental results were used to evaluate the ability of turbulence models to respond to variable thermophysical properties of hydrocarbon fuel at supercritical pressure. It was found that the prediction performance of turbulence models is mainly determined by the damping function, which enables them to respond differently to local flow conditions. Although prediction accuracy for experimental results varied from condition to condition, the shear stress transport (SST) and launder and sharma models performed better than all other models used in the study. For very small buoyancy-influenced runs, the thermal-induced acceleration due to variations in density lead to the impairment of heat transfer occurring in the vicinity of pseudo-critical points, and heat transfer was enhanced at higher temperatures through the combined action of four thermophysical properties: density, viscosity, thermal conductivity and specific heat. For very large buoyancy-influenced runs, the thermal-induced acceleration effect was over predicted by the LS and AB models.

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