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首页> 外文期刊>International Journal of Heat and Mass Transfer >Vapour-liquid jointed solution for the evaporation-condensation problem
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Vapour-liquid jointed solution for the evaporation-condensation problem

机译:蒸发-冷凝问题的气液联合解决方案

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In this paper, an approach for jointly solving liquid and vapour kinetic equations is presented. The particle-interface interaction characteristics are studied. Particle behaviour on the condensed-phase surface are analysed to determine the distribution functions for the evaporating molecules. Different nonsteady evaporation-condensation problems are solved. At this, temperatures of the condensed phase layers begin to change, as do conditions at the interface; therefore, the intensity of the evaporation changes. The processes in the liquid phase influenced the vapour density profiles. Finally, the distributions of macroparameters at different time points are obtained. The proposed approach in this paper can be used in different applications, where evaporation and condensation processes take places, and can be applied in situations far from equilibrium conditions. Also this method can be used as a single algorithm for liquid and vapor description without special attention to liquid-vapor interface (in contrast of a molecular-kinetic approach). Evaporation and condensation phenomena at high enough intensities are important for modern microsystems cooling technologies including liquid films. Liquid droplets evaporation gives another example of such realization. It should be noted that these processes can be observed in wide practical applications under different conditions. (C) 2019 Elsevier Ltd. All rights reserved.
机译:本文提出了一种共同求解液体和蒸气动力学方程的方法。研究了粒子界面相互作用的特性。分析凝聚相表面上的粒子行为,以确定蒸发分子的分布函数。解决了不同的非稳态蒸发-冷凝问题。此时,凝结相层的温度开始改变,界面条件也开始改变。因此,蒸发强度改变。液相过程影响了蒸气密度分布。最后,获得了宏参数在不同时间点的分布。本文提出的方法可用于发生蒸发和冷凝过程的不同应用中,并可用于远离平衡条件的情况。同样,该方法可以用作描述液体和蒸气的单一算法,而无需特别注意液体-蒸气的界面(与分子动力学方法相反)。在足够高的强度下的蒸发和冷凝现象对于包括液体膜在内的现代微系统冷却技术很重要。液滴蒸发给出了这种实现的另一个例子。应当指出,这些过程可以在不同条件下的广泛实际应用中观察到。 (C)2019 Elsevier Ltd.保留所有权利。

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