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Dynamic behaviors of droplets impacting on ultrasonically vibrating surfaces

机译:液滴冲击对超声振动表面的动态行为

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摘要

Ultrasonic vibration has a wide application prospect in the fields of droplet atomization and aircraft anti/deicing. The present work experimentally investigates the dynamic behaviors and anti-icing characteristics of droplets, with a wide range of velocities, impacting on ultrasonically vibrating surfaces. Two kinds of splash, mode are observed, including edge splash and surface splash, and a novel rebound mode, named sub-droplet rebound, is found in our experiments. The surface splash is mainly induced by the Faraday instability of surface capillary waves, and the appearance of a large number of bubbles proves that cavitation is also one of the influence factors. By analyzing the interaction of aerodynamic force and surface tension, the critical curve of the edge splash is obtained. The convergence of capillary waves at the apex contributes to the sub-droplet rebound. In addition, the influences of impact velocities and ultrasonic vibration amplitudes on the droplet spreading and the size distribution of secondary droplets are elucidated and discussed. A higher excitation amplitude results in a wider secondary droplet size distribution and a larger average size. We also investigate the dynamic process of supercooled water droplets impacting on ultrasonically vibrating surfaces with and without preformed frozen ice, respectively. The ultrasonic vibration could effectively promote the droplet splash and prevent the ice accumulation even in the state that the surface has been frozen. The anti-icing efficiency of the ultrasonic vibration increases with the increase of the ultrasonic vibration amplitude. The results of this work could provide insights for controlling droplet spreading, atomization, and anti-icing by using ultrasonic vibration.
机译:超声波振动在液滴雾化和飞机抗/制剂领域具有广泛的应用前景。目前的工作实验研究了液滴的动态行为和防冰特性,速度宽范围,影响超声振动表面。观察到两种飞溅,模式,包括边缘飞溅和表面溅,在我们的实验中发现了一个名为Sub-Droplet反弹的新型反弹模式。表面溅射主要由表面毛动波的法拉第稳定性引起,并且大量气泡的外观证明了空化也是影响因素之一。通过分析空气动力力和表面张力的相互作用,获得边缘飞溅的临界曲线。顶点的毛细波的收敛有助于子液滴反弹。此外,阐明并讨论了冲击速度和超声振动幅度对液滴扩散的影响和尺寸分布。更高的激发幅度导致更宽的次级液滴尺寸分布和更大的平均尺寸。我们还研究了影响超声波振动表面的过冷水滴的动态过程,分别分别使用较高的冷冻冰。超声波振动可以有效地促进液滴飞溅,即使在表面被冷冻的状态下也可以防止冰积累。超声波振动的抗结冰效率随着超声波振动幅度的增加而增加。该工作的结果可以通过使用超声波振动来提供控制液滴扩散,雾化和防冰的见解。

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