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Investigation of hydrodynamic and heat transfer characteristics of gas-liquid Taylor flow in vertical capillaries

机译:垂直毛细管中气液泰勒流动的流体动力和传热特性研究

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摘要

Heat transfer and flow characteristics of Taylor flow in vertical capillaries with diameters of 0.5,1, and 2 mm have been investigated numerically with the volume of fluid method. 30 different cases have been conducted with inlet Reynolds number ranging from 100 to 500 and initial void fraction ranging from 0.2 to 0.4. Simulation results of the normalized bubble rising velocity, frictional pressure drops, and average Nusselt number fit well with the experimental data and empirical correlations. The results indicate that the normalized bubble rising velocity is related to the capillary number. The flow-pattern dependent and modified Lockhart-Martinelli correlations can predict the numerical frictional pressure drops well. A low temperature region is formed in the liquid slug, where a recirculation zone is formed. The average Nusselt number increases with increasing Re, tube diameters, and with decreasing ξ_G, and is about 1.2-3 times of that of a fully developed laminar single phase flow in circular tubes with constant wall heat flux boundary conditions.
机译:用流体体积法对直径为0.5、1和2 mm的垂直毛细管中泰勒流的传热和流动特性进行了数值研究。进行了30种不同的情况,入口雷诺数范围为100至500,初始空隙率范围为0.2至0.4。归一化气泡上升速度,摩擦压降和平均Nusselt数的仿真结果与实验数据和经验相关性非常吻合。结果表明,归一化的气泡上升速度与毛细管数有关。依赖于流型的模型和改进的Lockhart-Martinelli相关性可以很好地预测摩擦压力的数值下降。在液塞中形成低温区域,在该区域形成回流区。平均努塞尔数随Re,管径的增加和ξ_G的减小而增加,约为壁厚恒定的圆管条件下圆形管中完全发展的层状单相流的平均Nusselt数的1.2-3倍。

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