Wang Qingpu, Chun Jaehun, Subban Chinmayee V
Energy and Environment Directorate, Pacific Northwest National Laboratory, Seattle, Washington 98109, United States.
Physical and Computational Sciences Directorate, Pacific Northwest National Laboratory, Richland, Washington 99354, United States.
Langmuir. 2024 Jan 23;40(3):1613-1622. doi: 10.1021/acs.langmuir.3c02453. Epub 2024 Jan 5.
Membrane-based systems, such as electrodialysis, play an important role in desalination and industrial separation processes. Electrodialysis uses alternating anion- and cation-exchange membranes with a perpendicular electric field to generate concentrated and diluate streams from a feed solution. It is known that under overlimiting current conditions, reduced charge and mass transfer at the membrane interface leads to regions of high ion depletion generating instability and vortices termed electroconvection. While electroconvective mixing is known to directly impact the separation efficiency of electrodialysis, the influence of ion concentration gradients across the membrane experienced in a functional electrodialysis system is not known. Here, we report the influence of ion concentration gradients across a cation exchange membrane (Nafion) that is both aligned with and opposed to the applied electric field. Experiments were conducted by coflowing NaCl solutions of different concentrations (0.1-100 mM) on each side of the membrane, and electroconvection was visualized with a fluorescence dye (Rhodamine 6G). We obtained concentration profiles from fluorescence image data and systematically measured the thickness of the depletion boundary layer under different conditions. We found smaller values at a higher flow rate both with and without concentration gradients. Our results show that electroconvection is enhanced when the electric field is opposite to the direction of the concentration gradient.
基于膜的系统,如电渗析,在海水淡化和工业分离过程中发挥着重要作用。电渗析使用交替排列的阴离子交换膜和阳离子交换膜,并施加垂直电场,从进料溶液中产生浓缩流和稀释流。众所周知,在超极限电流条件下,膜界面处电荷和传质的减少会导致高离子耗尽区域,从而产生不稳定性和称为电对流的涡旋。虽然已知电对流混合会直接影响电渗析的分离效率,但在功能性电渗析系统中,跨膜离子浓度梯度的影响尚不清楚。在此,我们报告了跨阳离子交换膜(Nafion)的离子浓度梯度的影响,该膜与施加的电场方向一致和相反。实验通过在膜的两侧并流不同浓度(0.1 - 100 mM)的NaCl溶液进行,并用荧光染料(罗丹明6G)观察电对流。我们从荧光图像数据中获得浓度分布,并系统地测量了不同条件下耗尽边界层的厚度。我们发现,无论有无浓度梯度,在较高流速下的值都较小。我们的结果表明,当电场与浓度梯度方向相反时,电对流会增强。