Enhanced displacement of phase separating liquid mixtures in 2D confined spaces
Gilmar F. Arends, Jae Bem You, John M. Shaw, Xuehua Zhang

TL;DR
This study investigates how the initial composition of ternary liquid mixtures affects phase separation and displacement rates in a confined microchannel, revealing non-linear behaviors and mechanisms for enhancing mass transport.
Contribution
It provides new insights into the influence of initial mixture composition on phase separation dynamics and displacement efficiency in 2D confined spaces.
Findings
Displacement rate varies non-linearly with initial 1-octanol concentration.
Stable three-zone boundary forms at intermediate 1-octanol levels, slowing displacement.
Low 1-octanol concentration leads to faster displacement via droplet-driven flow.
Abstract
Displacing liquid in a confined space is important for technological processes, ranging from porous membrane separation to CO sequestration. The liquid to be displaced usually consists of multiple components with different solubilities in the displacing liquid. Phase separation and chemical composition gradients in the liquids can influence the displacement rate. In this work, we investigate the effects of liquid composition on the displacement process of ternary liquid mixtures in a quasi-2D microchannel where liquid-liquid phase separation occurs concurrently. We focused on model ternary mixtures containing 1-octanol, ethanol, and water. These mixtures are displaced with water or with ethanol aqueous solution. The spatial distribution of subphases arising from phase separation and the displacement rates of the solution are impacted by the initial ternary solution composition.…
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Taxonomy
TopicsNanopore and Nanochannel Transport Studies · Lattice Boltzmann Simulation Studies · Microfluidic and Capillary Electrophoresis Applications
