Department of Mechanical Engineering, Indian Institute of Technology Kharagpur, Kharagpur, West Bengal - 721302, India.
Soft Matter. 2017 Sep 27;13(37):6377-6389. doi: 10.1039/c7sm00684e.
In this paper, we report the results of our numerical study on incompressible flow of a binary system of two immiscible fluids in a parallel plate capillary using alternating current electrothermal kinetics as the actuation mechanism for flow. The surfaces of the capillary are wetted with two different alternating wettability patches. The dynamic motion of the interface of the two fluids is tracked using a phase-field order parameter-based approach. The results exhibit a stick-slip behavior involving acceleration and deceleration of the interface due to the interplay of electrothermal (Coulomb and dielectric) and surface tension forces. Controlling the interface motion through effective tuning of the chemical characteristics of the surfaces and forcing parameters was explored in detail. Finally, we were able to find a critical value of the dimensionless strength of the alternating current electrothermal force above which the interface "breaks", resulting in the formation of isolated droplets. These results have the potential to improve fundamental understanding and design optimization of various biomedical and physiological systems that involve flow of two or more immiscible fluids over chemically wetted surfaces.
本文报告了我们使用交流电热动力学作为驱动机制,对平行板毛细管中两种不混溶流体的不可压缩流动进行数值研究的结果。毛细管的表面被两种不同的交变润湿性斑块润湿。使用基于相场序参量的方法跟踪两种流体界面的动态运动。结果显示出一种粘滑行为,由于电热(库仑和介电)和表面张力力的相互作用,界面会加速和减速。通过有效调整表面的化学特性和强制参数来控制界面运动进行了详细探讨。最后,我们发现了一个临界值,当交流电热力的无量纲强度超过这个临界值时,界面“破裂”,导致孤立液滴的形成。这些结果有可能改善对涉及化学润湿表面上两种或更多不混溶流体流动的各种生物医学和生理系统的基本理解和设计优化。