首页> 外文会议>International Conference on Fluid Mechanics and Fluid Power;National Conference on Fluid Mechanics and Fluid Power >Level Set Method Based Simulations on Impact-Dynamics of Bouncing and Non-bouncing Droplet on Super-Hydrophobic Substrates
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Level Set Method Based Simulations on Impact-Dynamics of Bouncing and Non-bouncing Droplet on Super-Hydrophobic Substrates

机译:基于级别的基于方法对超级疏水基板上弹跳和非撞击液滴的冲击动态模拟

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摘要

The present work investigates the spreading, receding and bouncing dynamics of a droplet falling on a superhydrophobic substrate. CMFD (computational multi-fluid dynamics) simulations are done using a DGLSM (dual grid level set method) based in-house code in an axisymmetric cylindrical coordinates. The available dynamic contact angle model from the literature is implemented in the code - to capture dynamic wetting of the droplet on the substrate. The deforming liquid-gas interface - during the droplet impact - is tracked using zero level set function. The droplet impact is modelled such that liquid vapor diffusion in the atmosphere, viscosity and surface tension variation with temperature are considered negligible. The droplet, substrate and surrounding air are at atmospheric conditions. Advancing and the receding contact angle of the droplet with the substrate (i.e. the wettability of substrate) are found to play a vital role in the modeling of impact dynamics of droplet. Numerically obtained temporal evolutions of the droplets are compared with published experimental results; for bouncing as well as non-bouncing droplets. Other than the instantaneous interface shape, the comparison is also done for temporal variation of droplet height and wetting diameter. The comparison is good - validating our DGLSM for the impact-dynamics.
机译:目前的作品研究了落在超疏水底物上的液滴的扩散,后退和反弹动力学。 CMFD(计算多流体动力学)模拟是使用基于轴对称圆柱坐标的内部代码的DGLSM(双电网级集合)来完成的。来自文献的可用动态接触角模型在代码中实现 - 捕获基板上液滴的动态润湿。使用零电平集功能跟踪液滴冲击期间的变形液气接口。模拟液滴冲击使得在大气中的液态蒸汽扩散,温度的粘度和表面张力变化被认为可以忽略不计。液滴,衬底和周围空气处于大气条件下。液滴与基材的前进和后退接触角(即底物的润湿性)在液滴冲击动力学的建模中起着至关重要的作用。将数值获得的液滴的时间演进与公开的实验结果进行了比较;用于弹跳以及非弹性液滴。除瞬时界面形状之外,还进行比较,用于液滴高度和润湿直径的时间变化。比较很好 - 验证我们的冲击动态的DGLSM。

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