Singh Rahul, Hong Seok Hoon, Kim Daejoong
Department of Mechanical Engineering, Energy Engineering Lab, Sogang University.
Department of Mechanical Engineering, Energy Engineering Lab, Sogang University;
J Vis Exp. 2021 Jul 20(173). doi: 10.3791/62309.
Reverse electrodialysis (RED) is an effective way to generate power by mixing two different salt concentrations in water using cation-exchange membranes (CEM) and anion-exchange membranes (AEM). The RED stack is composed of an alternating arrangement of the cation-exchange membrane and anion-exchange membrane. The RED device acts as a potential candidate for fulfilling the universal demand for future energy crises. Here, in this article, we demonstrate a procedure to fabricate a reverse electrodialysis device using laboratory-scale CEM and AEM for power production. The active area of the ion-exchange membrane is 49 cm. In this article, we provide a step-by-step procedure for synthesizing the membrane, followed by the stack's assembly and power measurement. The measurement conditions and net power output calculation have also been explained. Furthermore, we describe the fundamental parameters that are taken into consideration for obtaining a reliable outcome. We also provide a theoretical parameter that affects the overall cell performance relating to the membrane and the feed solution. In short, this experiment describes how to assemble and measure RED cells on the same platform. It also contains the working principle and calculation used for estimating the net power output of the RED stack using CEM and AEM membranes.
反向电渗析(RED)是一种通过使用阳离子交换膜(CEM)和阴离子交换膜(AEM)混合水中两种不同盐浓度来发电的有效方法。RED 堆栈由阳离子交换膜和阴离子交换膜交替排列组成。RED 装置有望成为满足未来能源危机普遍需求的潜在候选者。在此,在本文中,我们展示了一种使用实验室规模的 CEM 和 AEM 制造反向电渗析装置以进行发电的程序。离子交换膜的有效面积为 49 平方厘米。在本文中,我们提供了合成膜的分步程序,随后是堆栈的组装和功率测量。还解释了测量条件和净功率输出计算。此外,我们描述了为获得可靠结果而考虑的基本参数。我们还提供了一个影响与膜和进料溶液相关的整体电池性能的理论参数。简而言之,本实验描述了如何在同一平台上组装和测量 RED 电池。它还包含用于估计使用 CEM 和 AEM 膜的 RED 堆栈净功率输出的工作原理和计算方法。