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CFD simulation of water vapour condensation in the presence of non-condensable gas in vertical cylindrical condensers

机译:立式圆柱形冷凝器中存在不凝性气体时水蒸气冷凝的CFD模拟

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摘要

This paper presents the simulation of the condensation of water vapour in the presence of non-condensable gas using computational fluid dynamics (CFD) for turbulent flows in a vertical cylindrical condenser tube. The simulation accounts for the turbulent flow of the gas mixture, the condenser wall and the turbulent flow of the coolant in the annular channel with no assumptions of constant wall temperature or heat flux. The condensate film is assumed to occupy a negligible volume and its effect on the condensation of the water vapour has been taken into account by imposing a set of boundary conditions. A new strategy is used to overcome the limitation of the currently available commercial CFD package to solve the simultaneous simulation of flows involving multispecies and fluids of gas and liquid in separate channels. The results from the CFD simulations are compared with the experimental results from the literature for the condensation of water vapour with air as the non-condensable gas and for inlet mass fraction of the water vapour from 0.66 to 0.98. The CFD simulation results in general agree well with the directly measured quantities and it is found that the variation of heat flux in the condenser tube is more complex than a simple polynomial curve fit. The CFD results also show that, at least for flows involving high water vapour content, the axial velocity of the gas mixture at the interface between the gas mixture and the condensate film is in general not small and cannot be neglected.
机译:本文利用计算流体力学(CFD)对垂直圆柱形冷凝器管中的湍流进行了模拟,模拟了在不凝性气体存在下水蒸气的凝结。该模拟考虑了在不假设壁温或热通量恒定的情况下,气体混合物,冷凝器壁和冷却剂在环形通道中的湍流的湍流。假定冷凝膜的体积可忽略不计,并且已通过施加一组边界条件考虑了其对水蒸气冷凝的影响。一种新的策略用于克服当前可用的商用CFD软件包的局限性,以解决同时模拟涉及多种物种以及在单独通道中的气体和液体的流动的问题。 CFD模拟的结果与文献中的水蒸气与空气作为不可凝性气体的冷凝以及水蒸气的入口质量分数为0.66至0.98的实验结果进行了比较。 CFD模拟结果通常与直接测量的量非常吻合,并且发现冷凝器管中的热通量变化比简单的多项式曲线拟合更复杂。 CFD结果还表明,至少对于涉及高水蒸气含量的流,在气体混合物和冷凝物膜之间的界面处的气体混合物的轴向速度通常不小并且不能忽略。

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