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首页> 外文期刊>Computers & Fluids >Numerical study of gravity-driven droplet displacement on a surface using the pseudopotential multiphase lattice Boltzmann model with high density ratio
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Numerical study of gravity-driven droplet displacement on a surface using the pseudopotential multiphase lattice Boltzmann model with high density ratio

机译:使用高密度比拟势多相晶格玻尔兹曼模型数值模拟重力驱动的液滴在表面的位移

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Gravity-driven displacement of a droplet on a grooved surface is studied using the Shan and Chen's pseudopotential multiphase lattice Boltzmann (LB) model allowing a high density ratio between the gas and liquid phases. To verify and validate the multiphase LB model, we find good agreement of the LB simulations with the pressure difference over a droplet described by Laplace's law, as well as with the dynamic capillary intrusion process obtained by Washburn's law. The equilibrium contact angle of a droplet on a smooth horizontal surface is studied as a function of the wettability, finding good agreement with an empirical scheme obtained with Young's equation. The dynamic behavior of a droplet moving down a vertical surface under different gravitational forces is studied. On a vertical wall, the liquid droplet reaches a terminal velocity, which value depends on the wettability of the surface and strength of the gravitational force. When a hydrophilic groove is introduced along the surface, the droplet shows a complex behavior and, depending on the height of the groove, different patterns and mechanisms of the liquid filling the groove are observed. For small groove heights, the droplet totally fills in the groove. At certain groove height, a liquid bridge is formed between top and bottom surfaces dragging most liquid onto the bottom surface. At increasing height, this liquid bridge is broken, and liquid can be dragged into the groove by adhesion force. At high groove heights, the droplet breaks up in smaller droplets dripping from the top surface onto the bottom surface, and only a small amount of liquid remains in the groove. When the wettability of the groove or surface is changed, the liquid filling behavior changes notably. For a hydrophobic surface, but hydrophilic groove, the groove is filled partly by the liquid, while, for the opposite condition, a hydrophobic groove in a hydrophilic wall, the droplet runs into the groove, but the liquid is again dragged out and no filling of the groove occurs. (C) 2015 Elsevier Ltd. All rights reserved.
机译:使用Shan和Chen的准势多相晶格玻尔兹曼(LB)模型研究了液滴在带槽表面上的重力驱动位移,该模型允许在气相和液相之间具有较高的密度比。为了验证和验证多相LB模型,我们发现LB模拟与拉普拉斯定律描述的液滴上的压差以及沃什伯恩定律获得的动态毛细管侵入过程具有很好的一致性。研究了液滴在光滑水平表面上的平衡接触角,作为润湿性的函数,与通过Young方程获得的经验方案非常吻合。研究了液滴在不同重力作用下沿垂直表面向下运动的动力学行为。在垂直壁上,液滴达到极限速度,该极限速度取决于表面的润湿性和重力强度。当沿着表面引入亲水性凹槽时,液滴表现出复杂的行为,并且根据凹槽的高度,观察到液体填充凹槽的不同图案和机理。对于较小的凹槽高度,液滴将完全填充到凹槽中。在一定的凹槽高度处,在顶面和底面之间形成液桥,从而将大多数液体拖到底面上。在高度增加时,该液桥断裂,并且液体可以通过粘附力被拖入凹槽中。在高凹槽高度处,液滴分解成较小的液滴,这些液滴从顶表面滴到底表面,并且只有少量液体残留在凹槽中。当凹槽或表面的润湿性改变时,液体填充行为显着改变。对于疏水表面但亲水的凹槽,该凹槽部分被液体填充,而对于相反的情况,亲水壁中的疏水凹槽,液滴进入凹槽,但是液体再次被拖出且没有填充发生凹槽。 (C)2015 Elsevier Ltd.保留所有权利。

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