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Numerical Analysis of Laminar Convective Condensation with the Presence of Noncondensable Gas Flowing Downward in a Vertical Channel

机译:在垂直通道中向下流动下流动的不可调味气体的层状对流凝结的数值分析

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The purpose of this paper is to study and perform a numerical analysis of the simultaneous processes of mass and heat transfer during the condensation process of a steam in the existence of noncondensable gas (NCG) inside a descending vertical channel. In this study, the flow of the vapor-air mixture is laminar and the saturation conditions are prevailing at the inlet of the channel. The coupled control equations for liquid film, interfacial conditions, and mixture flow are solved together using the approach of finite volume. Detailed and valuable results are presented both in the liquid condensate film and in the mixing regions. These detailed results contain the dimensionless velocity and dimensionless temperature profiles in both phases, the dimensionless mass fraction of vapor, the axial variation of the dimensionless thickness of the film liquid δ?, and the accumulated condensate rate Mr as well the local Nusselt number Nuy. The relative humidity at the inlet varies from 60% to 100% and the inlet temperature from 40°C to 80°C. The results confirm that a decrease in the mass concentration of NCG by the increasing the inlet relative humidity has a direct influence on the liquid film layer, the local number of Nusselt, and the variation of condensation rate accumulated through the channel. The results also designate that an increase of the inlet relative humidity and the inlet temperature ameliorates the condensation process. The comparison made for the coefficient of heat transfer due to condensation process and the condensate liquid film thickness with the literature results is in good concordance which gives more credibility to our calculation model.
机译:本文的目的是研究和执行在下降垂直通道内的不可调味气体(NCG)的蒸汽的冷凝过程中的同时和传热的同时处理的数值分析。在该研究中,蒸汽混合物的流动是层状的,并且在通道的入口处持续饱和条件。用于液体膜,界面条件和混合流程的耦合控制方程使用有限体积的方法求解在一起。详细和有价值的结果在液体冷凝膜和混合区域中呈现。这些详细结果包含两相的无量纲速度和无量纲温度曲线,蒸气的无量纲质量分数,膜液δ的无量纲厚度的轴向变化和累积的冷凝水率MR以及当地的营养率Nuy。入口处的相对湿度从40℃至80℃的60%至100%变化。结果证实,通过增加入口相对湿度的NCG质量浓度的降低对液体膜层,局部数量的氮气数和通过通道累积的冷凝率的变化具有直接影响。结果还指示入口相对湿度的增加和入口温度改善了冷凝过程。对具有缩合工艺和凝结液膜厚度引起的传热系数的比较具有良好的一致性,这给出了我们计算模型的更可信度。

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