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Contact line instability of gravity driven thin films flowing down an inclined plane with wall slippage

机译:重力的接触线不稳定性驱动薄膜流下倾斜的平面,带有墙壁滑动

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Coating liquid films exist widely in nature and industrial processes, such as lava flows, falling-film evaporators, and microfabrication processes. In this paper, we aim to give a comprehensive study on contact line instability of thin film flows on a slippery substrate, which has different slippery lengths in the streamwise direction and the spanwise direction. It is reported here for thin film flows with contact lines, the streamwise slippery effect plays an opposite role compared with the spanwise slippery effect, different from the conclusion by Ding and Wong that the wall slippage always promoted the instability of the thin film flow [Ding and Wong, Int. J. Heat Mass Tran. 90, 2015]. The evolution equation of the thin film flow is derived by the lubrication theory, and traveling wave solutions are obtained, showing that with a larger streamwise slippery length, the traveling wave speed is promoted and a higher capillary ridge is induced. Linear stability analysis (LSA) and energy analysis are carried out to elucidate the mechanism of the flow instability. Results indicate that for thin film flows with dynamic contact lines, the slippery effect in the streamwise and spanwise direction plays different roles in the flow instability. The wall slippage in the streamwise direction suppresses the wave height of traveling waves and impedes the instability of the flow, while the wall slippage in the spanwise direction promotes the instability with a smaller cut off wavenumber. Besides, numerical simulations for thin film flows are performed, and the flow phenomenon agrees well with the prediction by the LSA. Our findings offer insight into the influence of the wall slippage on the dynamics of thin films coating on biomaterials and compliant substrates. (C) 2019 Elsevier Ltd. All rights reserved.
机译:涂层液体膜在自然界和工业过程中广泛存在,例如熔岩流动,落叶膜蒸发器和微型制备方法。在本文中,我们的目标是综合研究薄膜流动在滑湿基板上的薄膜流动的综合研究,其在流动方向和翼展方向上具有不同的滑湿长度。据报道,这里有薄膜用接触线流动,流动滑移的效果与枝条的光滑效应相比起着相反的作用,与墙壁滑动总是促进薄膜流动的不稳定性的结论,不同于垂直和黄的结论相反[丁和黄,int。 J.热质量tran。 90,2015]。薄膜流的演化方程由润滑理论导出,并且获得了行波溶液,表明,具有较大的流动滑移的长度,促进行驶波速度,诱导更高的毛细血管脊。进行线性稳定性分析(LSA)和能量分析以阐明流动不稳定性的机制。结果表明,对于具有动态接触线的薄膜流动,在流动和翼展方向上的光滑效应在流动不稳定性中起不同的作用。流动方向上的壁滑动抑制了行进波的波浪高度,并阻碍了流动的不稳定性,而翼展在翼展方向上的壁滑动促进了较小的截止波数的不稳定性。此外,执行用于薄膜流动的数值模拟,并且流动现象与LSA的预测很好地吻合。我们的调查结果介绍了墙壁滑动对生物材料和柔顺基材的薄膜涂层动态的影响。 (c)2019年elestvier有限公司保留所有权利。

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