横向约束对湿滴热毛细迁移的影响

K. S. Sagar, K. Dwaraknath, A. Pattamatta, T. Sundararajan
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引用次数: 1

摘要

本研究旨在研究具有不同水平侧向约束的热毛细迁移特性。温度梯度是通过加热和冷却基材的两侧而产生的。当液滴靠近热侧时,它像薄膜一样扩散并向冷侧迁移。前进端呈抛物线状,后退端呈薄膜状。观察到液滴减速以达到稳态速度,并在基体冷端附近经历轻微的加速度。观察到的速度趋势与基材上的温度梯度一致。速度随液滴体积和基材温度梯度的增大而增大。观察到液体粘度对迁移速度的影响是递减的。通过在不同宽度的衬底上进行实验,研究了横向扩散约束的影响。研究发现,减小衬底宽度会增加迁移速度,因为足迹增加导致热毛细力增大。在本研究中观察到的结果突出了热毛细管流动在许多学术和工业应用中的重要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Influence of Lateral Restraint on Thermocapillary Migration of Wetting Droplets
The present study aims at studying the characteristics of thermocapillary migration with varying levels of lateral restraints. A temperature gradient is created by heating and cooling either side of the substrate. When a droplet is placed near hot side it spreads as thin film and migrates towards the cold side. The advancing end assumes the shape of a parabolic rim while the receding end stays as a thin film. It is observed that the droplet decelerates to attain a steady state velocity and undergoes slight acceleration near the cold end of the substrate. The observed velocity trend follows the temperature gradient on the substrate. The velocity increases with the droplet volume and substrate temperature gradient. The liquid viscosity is observed to have a diminishing effect on migration velocity. The effect of lateral spread confinement is studied by performing experimental trails on substrates with different widths. It is found that reducing the substrate width increases the migration velocity due to increased footprint resulting in larger thermocapillary force. The results observed in the present study highlights the importance of thermocapillary flows in many academic and industrial applications.
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