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首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Performance Analysis of Gravity-Driven Oil-Water Separation Using Membranes with Special Wettability
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Performance Analysis of Gravity-Driven Oil-Water Separation Using Membranes with Special Wettability

机译:具有特殊润湿性的膜的重力驱动油水分离性能分析

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摘要

A membrane with selective wettability to either oil or water has been utilized for highly efficient, environmentally friendly membrane-based oil water separation. However, a predictive model, which can be used to evaluate the overall separation performance of the membrane, still needs further development. Herein, we investigate three separation performance parameters, that is, separation efficiency, liquid intrusion pressure, and mass flux in particular, as a function of pore geometry and liquid properties using metallic meshes whose surface wettability is modified by scalable spray coating. We show that the prepared membrane exhibits a separation efficiency over 98% below the intrusion pressure, while the intrusion pressure increases with the decrease of pore size of the membrane. Particularly, we develop a semi-empirical model for the mass flux through the membrane. As application examples of our performance analysis, we successfully predict the separation time for one-way and two-way gravity-driven separation of the oil water mixture, the decrease of the mass flux due to membrane fouling, and the maximum allowable separation capacity of the given membrane. This work can help to design optimal membrane-based oil water separation systems for actual industrial applications by providing a selection guideline for separation membranes.
机译:已经利用了一种具有选择性润湿性的膜,用于高效,环保的基于膜的油水分离。然而,可用于评估膜的整体分离性能的预测模型仍然需要进一步发展。在此,我们研究了三种分离性能参数,即分离效率,液体侵入压力和质量焊剂,特别是使用金属网格的孔隙几何和液体性质的函数,其表面润湿性通过可伸缩喷涂来改变。我们表明,制备的膜在侵入压力以下98%上表现出超过98%的分离效率,而侵入压力随着膜的孔径的降低而增加。特别是,我们通过膜开发用于质量磁通的半实证模型。作为我们性能分析的应用实例,我们成功地预测了单向和双向重力驱动的油水混合物分离的分离时间,由于膜污染引起的质量磁通量的降低,以及最大允许的分离能力给定的膜。这项工作可以通过为分离膜提供选择指南,帮助设计用于实际工业应用的最佳膜的油水分离系统。

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