Analysis of Membrane Transport Equations for Reverse Electrodialysis (RED) Using Irreversible Thermodynamics.

Wojciech Kujawski, Andriy Yaroshchuk, Emiliy Zholkovskiy, Izabela Koter, Stanislaw Koter

Journal: International journal of molecular sciences 2021;21(17):6325

PMID: 32878293

Abstract

Reverse electrodialysis (RED) is an electro-membrane process for the conversion of mixing energy into electricity. One important problem researchers' face when modeling the RED process is the choice of the proper membrane transport equations. In this study, using experimental data that describe the membrane Nafion 120 in contact with NaCl aqueous solutions, the linear transport equation of irreversible thermodynamics was applied to calculate the power density of the RED system. Various simplifying assumptions about transport equation (i.e., four-, three-, and two-coefficients approaches) are proposed and discussed. We found that the two-coefficients approach, using the membrane conductivity and the apparent transport number of ions, describes the power density with good accuracy. In addition, the influence of the membrane thickness and the concentration polarization on the power density is also demonstrated.

Address: Faculty of Chemistry, Nicolaus Copernicus University in Toruń, 87-100 Toruń, Poland.; MEPhI, National Research Nuclear University, 115409 Moscow, Russia.; ICREA & Polytechnic University of Catalonia-Barcelona Tech, 08034 Barcelona, Spain.; Institute of Bio-Colloid Chemistry, National Academy of Sciences of Ukraine, 03680 Kyiv-142, Ukraine.
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