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Faraday instability in floating drops out of equilibrium: Motion and self-propulsion from wave radiation stress

机译:漂浮中的法拉第不稳定性下降至不平衡状态:波辐射应力引起的运动和自推进

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摘要

Instabilities in fluids are usually studied in domains with fixed boundaries or free to grow in space. In the Faraday instability, a liquid undergoing vertical oscillation is unstable to surface waves. Recently, a novel situation has been explored in which Faraday waves are triggered in floating drops that behave as deformable domains. A mutual adaptation between wave pattern and drop shape occurs, that leads either to equilibrium or out-of-equilibrium behaviors depending on the magnitude of wave radiation pressure over capillary pressure at the drop boundary. Here we investigate experimentally the out-of-equilibrium system, in which the radiation pressure exceeds the capillary response. The drop is abruptly deformed by the waves and possibly splits in fragments that have complex dynamics. These dynamics are explained by the radiation stress exerted by Faraday waves at boundaries. In particular, a simple model is able to predict the limit speed of self-propulsion of croissant-shaped drops. (C) 2015 Elsevier Ltd. All rights reserved.
机译:流体的不稳定性通常是在具有固定边界或在空间中自由增长的域中研究的。在法拉第不稳定性中,经历垂直振荡的液体对表面波不稳定。最近,探索了一种新颖的情况,其中法拉第波在表现为可变形区域的浮动液滴中触发。在波型和液滴形状之间会发生相互适应,这取决于波辐射压力相对于液滴边界处毛细管压力的大小而导致平衡或不平衡行为。在这里,我们通过实验研究不平衡系统,其中辐射压力超过毛细管响应。波浪使水滴突然变形,并可能分裂成具有复杂动力学的碎片。这些动力学可以通过法拉第波在边界处施加的辐射应力来解释。特别地,简单的模型能够预测羊角面包形液滴的自推进极限速度。 (C)2015 Elsevier Ltd.保留所有权利。

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