Affiliation:
1. REDstack BV, Graaf Adolfstraat 35-G, 8606 BT Sneek, The Netherlands
2. Departmento de Ingenierías Químicas y Biomolecular, Universidad de Cantabria, Av. Los Castros 46, 39005 Santander, Spain
Abstract
Salinity gradient energy has gained attention in recent years as a renewable energy source, especially employing reverse electrodialysis technology (RED), which is based on the role of ion exchange membranes. In this context, many efforts have been developed by researchers from all over the world to advance the knowledge of this green source of energy. However, the influence of divalent ions on the performance of the technology has not been deeply studied. Basically, divalent ions are responsible for an increased membrane resistance and, therefore, for a decrease in voltage. This work focuses on the estimation of the resistance of the RED membrane working with water flows containing divalent ions, both theoretically by combining the one-thread model with the Donnan exclusion theory for the gel phase, as well as the experimental evaluation with Fumatech membranes FAS-50, FKS-50, FAS-PET-75, and FKS-PET-75. Furthermore, simulated results have been compared to data recently reported with different membranes. Besides, the influence of membrane resistance on the overall performance of reverse electrodialysis technology is evaluated to understand the impact of divalent ions in energy generation. Results reflect a minor effect of sulfate on the gross power in comparison to the effect of calcium and magnesium ions. Thus, this work takes a step forward in the knowledge of reverse electrodialysis technology and the extraction of salinity gradient energy by advancing the influence of divalent ions on energy recovery.
Subject
Filtration and Separation,Chemical Engineering (miscellaneous),Process Chemistry and Technology
Reference51 articles.
1. The morphology in Nafion perfluorinated membrane products, as determined by wide-and small-angle X-ray studies;Gierke;J. Polym. Sci.,1981
2. On the development of proton conducting polymer membranes for hydrogen and methanol fuel cells;Kreuer;J. Membr. Sci.,2001
3. Effect of structural membrane inhomogeneity on transport properties;Zabolotsky;J. Membr. Sci.,1933
4. Water electrotransport in membrane systems. Experiment and model description;Berezina;J. Membr. Sci.,1994
5. Sarapulova, V., Shkorkina, I., Mareev, S., Pismenskaya, N., Kononenko, N., Larchet, C., Dammak, L., and Nikonenko, V. (2019). Transport Characteristics of Fujifilm Ion-Exchange Membranes as Compared to Homogeneous Membranes AMX and CMX and to Heterogeneous Membranes MK-40 and MA-41. Membranes, 9.
Cited by
8 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献