论文标题

调查粘弹性下降在球形底物上的完全扩散动力学

Investigations into the complete spreading dynamics of a viscoelastic drop on a spherical substrate

论文作者

Shyam, Sudip, Gaikwad, Harshad Sanjay, Ahmed, Syed Abu Ghalib, Chakraborty, Bibek, Mondal, Pranab Kumar

论文摘要

我们研究了毛细管驱动方案中球形底物上球体弹性非牛顿液滴的扩散动力学。我们使用简化的Phan Thien Tanner模型来代表弹性非牛顿滴的流变。我们认为下降是扁平基板上的火山口,以计算接触线附近的粘性耗散。遵循与毛细管粘合力平衡兼容的方法,我们建立了描述传播过程中接触线的时间演化的演化方程。我们表明,从理论计算获得的接触线速度与我们的实验观察结果非常匹配。同样,正如当前的实验观察结果所证实的那样,我们的分析认为有效地捕获了在延伸后期的现象,而线张力的效果显性占主导地位。流体的粘弹性参数的增加会增加接触线处的粘性耗散效应。可以看出,较高的耗散效应会导致球形基板下降的润湿时间增强。另外,我们已经表明,与牛顿对应物相比,流体的弹性性质会导致任何时间瞬间的动态接触角增加。最后,我们揭露,随着流体的粘弹性的增加,完全润湿的滴水所需的时间会导致接触角的现象会导致更高的时间。由于对弹性非牛顿液在球形底物上的扩散的实验研究不可用,因此本文将填补仍然影响现有文献的空白。

We study the spreading dynamics of a sphere-shaped elastic non-Newtonian liquid drop on a spherical substrate in the capillary driven regime. We use the simplified Phan Thien Tanner model to represent the rheology of the elastic non-Newtonian drop. We consider the drop to be a crater on a flat substrate to calculate the viscous dissipation near the contact line. Following the approach compatible with the capillary-viscous force balance, we establish the evolution equation for describing the temporal evolution of the contact line during spreading. We show that the contact line velocity obtained from the theoretical calculation matches well with our experimental observations. Also, as confirmed by the present experimental observations, our analysis deems efficient to capture the phenomenon during the late-stage of spreading for which the effect of line tension becomes dominant. An increment in the viscoelastic parameter of the fluid increases the viscous dissipation effect at the contact line. It is seen that the higher dissipation effect leads to an enhancement in the wetting time of the drop on the spherical substrate. Also, we have shown that the elastic nature of fluid leads to an increment in the dynamic contact angle at any temporal instant as compared to its Newtonian counterpart. Finally, we unveil that the phenomenon of increasing contact angle results in the time required for the complete wetting of drop becomes higher with increasing viscoelasticity of the fluid. This article will fill a gap still affecting the existing literature due to the unavailability of experimental investigations of the spreading of the elastic non-Newtonian drop on a spherical substrate.

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