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Film Control to Study Contributions of Waves to Droplet Impact Dynamics on Thin Flowing Liquid Films

机译:薄膜控制研究波浪对薄流动液膜上的液滴冲击动力学的贡献

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摘要

Droplet impact is a very common phenomenon in nature and attracts attention due to its aesthetic fascination and wide-ranging applications. Previous studies on flowing liquid films have neglected the contributions of spatial structures of waves to the impact outcome, while this has recently been shown to have a significant influence on the drop impact dynamics. In this report, we outline a step-by-step procedure to investigate the effect of periodic inlet forcing of a flowing liquid film leading to the production of spatiotemporally regular wave structures on drop impact dynamics. A function generator in connection with a solenoid valve is used to excite these spatiotemporally regular wave structures on the film surface while the impact dynamics of uniform-sized droplets are captured using a high-speed camera. Three distinct regions are then studied; viz. the capillary wave region preceding the large wave peak, the flat film region, and the wave hump region. The effects of important dimensionless quantities such as film Reynolds, drop Weber and Ohnesorge numbers parameterized by the film flow rate, drop speed, and drop size are also examined. Our results show interesting, hitherto undiscovered dynamics brought about by this application of film inlet forcing of the flowing film for both low and high inertia drops.
机译:液滴撞击在自然界中是一种非常普遍的现象,由于其美学魅力和广泛的应用而引起人们的注意。先前对流动的液膜的研究已经忽略了波的空间结构对撞击结果的贡献,而最近已证明这对液滴撞击动力学有重大影响。在此报告中,我们概述了分步进行的过程,以研究流动的液膜的周期性入口强迫对液滴冲击动力学产生时空规则波结构的影响。与电磁阀连接的函数发生器用于激发胶片表面上的这些时空规则的波结构,同时使用高速相机捕获均匀大小的液滴的冲击动力学。然后研究了三个不同的区域。即大波峰之前的毛细管波区域,平坦膜区域和波峰区域。还检查了重要的无量纲量的影响,例如薄膜雷诺数,通过薄膜流速,液滴速度和液滴大小参数化的液滴韦伯和欧姆尼斯堡数。我们的结果表明,对于低惯性液滴和高惯性液滴,这种流动薄膜的薄膜入口强制应用带来了有趣的,迄今尚未发现的动力学。

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