Liquid-gas coupling cell model based on a single moving superheated droplet and its application to flashing sprays

Yucheng Zhu, Xueliang Zhu, Xuhai Pan, Juncheng Jiang

科研成果: 期刊稿件文章同行评审

摘要

This study develops a liquid-gas coupling cell model to examine droplet cooling evaporation and motion in flashing sprays, incorporating droplet-droplet interactions and bidirectional liquid-gas coupling through single moving superheated droplet analysis. Experimental validation confirms good consistency, with an error of 17%. The effect of characteristic parameters, such as droplet temperature (Td0), radius (rd0), injection velocity (ud0), ambient pressure (pa), ambient temperature (Ta), and injection direction, were evaluated. Results show that droplet-droplet interactions significantly inhibit evaporation when the droplet-droplet distance is less than 100rd0. As evaporation proceeds, the in-droplet heat conduction increases when ε (the thickness of the in-droplet thermal boundary layer) <rd and decreases once ε=rd. Latent heat transfer is significant and dominates evaporation. Because of the increased thermal nonequilibrium level, the increasing Td0 and decreasing pa enhance evaporation. A 10 K increase in Td0 increases the evaporation rate by a factor of approximately 1.5 to 3. The decreasing Ta improves evaporation by the increased temperature difference. The enhanced evaporation by larger Td0 increases the drag force and slows the motion more rapidly. The enhanced evaporation by decreasing pa results in a smaller drag force. Decreasing rd0 increases evaporation due to the larger specific surface area and lower thermal conductivity resistance while leading to a smaller drag force. The increasing ud0 enhances evaporation via enhanced interfacial heat transfer. The injection direction has little influence on evaporation. The droplet travelling upward has a larger deceleration rate and a shorter distance.

源语言英语
文章编号126569
期刊Applied Thermal Engineering
274
DOI
出版状态已出版 - 1 9月 2025

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