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首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Regimes of Head-On Collisions of Equal-Sized Binary Droplets
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Regimes of Head-On Collisions of Equal-Sized Binary Droplets

机译:正面二元液滴的正面碰撞制度

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摘要

Through molecular dynamics simulations, head-on collision processes of two identical droplets with a diameter of 10.9 nm are elaborately scrutinized over a wide range of impact Weber numbers (from 6.7 to 1307) both in vacuum and in an ambient of nitrogen gas. As the impact Weber number exceeds a certain critical value, a hole or multiple holes in apparently random locations are observed in the disklike structure formed by two colliding droplets. We name this a new "hole regime" of droplet collisions, which has not yet been reported in previous studies. As the impact Weber number increases, the number of holes increases. The hole or holes may disappear unless a second critical impact Weber number is exceeded, when the merged droplet is likely to experience dramatic shattering. It is also found that the existence of ambient gas provides a "cushion effect" which resists droplet deformation, thus delaying or even preventing the appearance of hole formation and shattering regimes. Moreover, increasing ambient pressure suppresses hole formation. A model based on energy balance is proposed to predict droplet behaviors, which provides a more accurate estimate of the maximum spreading factor compared to previous models. Finally, we further extend the current nanoscale droplet collision regime map and analyze the similarities and dissimilarities between nano- and macroscale droplet collision. Our study extends the current understanding on nanodroplet collisions.
机译:通过分子动力学模拟,在真空和氮气的环境中,在各种影响的两种直径为10.9nm的两种相同液滴的头部碰撞过程在很大程度上均匀地仔细审查(从6.7至1307)。由于冲击韦伯号超过某个临界值,因此在由两个碰撞液滴形成的盘状结构中观察到明显随机位置的孔或多孔。我们称之为液滴冲突的新“孔制度”,尚未在以前的研究中报告。随着影响的韦伯数量增加,孔的数量增加。孔或孔可能会消失,除非超过了第二次临界影响韦伯号码,当合并的液滴可能经历戏剧性的破碎时。还发现环境气体的存在提供了抵抗液滴变形的“缓冲效果”,从而延迟或甚至防止孔形成和破碎的状态的外观。此外,增加环境压力抑制孔形成。提出了一种基于能量平衡的模型来预测液滴行为,其与先前模型相比,为最大扩频因子提供更准确的估计。最后,我们进一步扩展了当前的纳米级液滴碰撞制度图,分析了纳米和宏观液滴碰撞之间的相似性和异化。我们的研究延长了目前对纳米进碰撞的了解。

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