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开放微通道中毛细驱动的液-液置换动力学

Dynamics of capillary-driven liquid-liquid displacement in open microchannels.

作者信息

Yang D, Krasowska M, Priest C, Ralston J

机构信息

Ian Wark Research Institute, University of South Australia, Mawson Lakes SA 5095, Australia.

出版信息

Phys Chem Chem Phys. 2014 Nov 28;16(44):24473-8. doi: 10.1039/c4cp03910f.

Abstract

The dynamics of the spontaneous spreading of a liquid droplet along an open hydrophilic microchannel filled with another immiscible liquid is primarily determined by the competition between the capillary driving force and the viscous drag. While the former force depends on the channel cross-section and dimensions, interfacial tension between two liquids and the contact angle formed between the channel's wall and the two liquids, the latter arises from the motion of fluid molecules in the two bulk liquids. This paper focuses on the influence of the outer (displaced) phase viscosity. In general, as the viscosity of the displaced phase increases relative to the viscosity of the displacing phase, the velocity of the liquid-liquid meniscus decreases. The experiments were interpreted by extending a previously established correlation for liquid-vapour systems (J. Phys. Chem. C, 2011, 115(38), 18761-18769) in open microchannels of the same geometry. The relationship between the liquid-liquid flow dynamics and the properties of the liquids (e.g. viscosities) is still unclear. Nonetheless, by taking a self-consistent empirical approach to estimate the influence of the viscosities on the flow kinetics for a given system, it is possible to obtain a reasonable theoretical description for the experimental system over a specific range of viscosity ratios.

摘要

液滴沿着充满另一种不混溶液体的开放亲水性微通道自发扩展的动力学主要由毛细驱动力和粘性阻力之间的竞争决定。前者取决于通道的横截面和尺寸、两种液体之间的界面张力以及通道壁与两种液体之间形成的接触角,而后者则源于两种主体液体中流体分子的运动。本文重点研究外(被驱替)相粘度的影响。一般来说,随着被驱替相的粘度相对于驱替相的粘度增加,液 - 液弯月面的速度会降低。通过扩展先前建立的关于相同几何形状开放微通道中液 - 气系统的关联式(《物理化学杂志C》,2011年,115(38),18761 - 18769)来解释这些实验。液 - 液流动动力学与液体性质(如粘度)之间的关系仍不明确。尽管如此,通过采用自洽的经验方法来估计粘度对给定系统流动动力学的影响,有可能在特定粘度比范围内获得对实验系统合理的理论描述。

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