电渗析
阳极
反向电渗析
电流密度
电流(流体)
阴极
电压降
电化学
化学
离子键合
分析化学(期刊)
电极
材料科学
离子
膜
色谱法
电气工程
工程类
物理化学
物理
有机化学
量子力学
生物化学
作者
W. Henry Freer,Charles Perks,Charles Codner,Paul A. Kohl
出处
期刊:Membranes
[Multidisciplinary Digital Publishing Institute]
日期:2025-06-19
卷期号:15 (6): 186-186
标识
DOI:10.3390/membranes15060186
摘要
Electrochemical separations use an ionic current to drive the flow of ions across an ion exchange membrane to produce dilute and concentrated streams. The economics of these systems is challenging because passing an ionic current through a dilute solution often requires a small cell gap to lower the ionic resistance and the use of a low current density to minimize the voltage drop across the dilute product stream. Lower salt concentration in the product stream improves the fraction of the salt recovered but increases the electricity cost due to high ohmic losses. The electricity cost is managed by lowering the current density which greatly increases the balance of the plant. The cell configuration demonstrated in this study eliminates the need to pass an ionic current through the diluted product stream. Ionic current passes only through the concentrated product stream, which allows use of high current density and smaller balance of the plant. The cell has three chambers with an anion and cation membrane separating the cathode and anode, respectively, from the concentrated product solution. The device uses zero-gap membrane electrode assemblies to improve the cell voltage and system performance. As ions concentrate in the center compartment, the solution resistance decreases, and the product is recovered with a lower voltage penalty compared to traditional electrodialysis. This lower voltage drop allows for faster feed flow rates and higher current density. Additionally, the larger cell gap for the product provides opportunities for systems with solids suspended in solution. It was found that the ion collection efficiency increased with current due to enhanced convective mass transfer in the feed streams.
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