Mehdizadeh Soroush, Yasukawa Masahiro, Abo Takakazu, Kuno Masaya, Noguchi Yuki, Higa Mitsuru
Graduate School of Sciences and Technology for Innovation, Yamaguchi University, 2-16-1 Tokiwadai, Ube, Yamaguchi 755-8611, Japan.
Blue Energy Center for SGE Technology (BEST), Yamaguchi University, 2-16-1 Tokiwadai, Ube, Yamaguchi 755-8611, Japan.
Membranes (Basel). 2019 Jun 18;9(6):73. doi: 10.3390/membranes9060073.
Membrane-based reverse electrodialysis (RED) can convert the salinity gradient energy between two solutions into electric power without any environmental impact. Regarding the practical application of the RED process using natural seawater and river water, the RED performance depends on the climate (temperature). In this study, we have evaluated the effect of the feed solution temperature on the resulting RED performance using two types of pilot-scale RED stacks consisting of 200 cell pairs having a total effective membrane area of 40 m with different intermediate distances (200 µm and 600 µm). The temperature dependence of the resistance of the solution compartment and membrane, open circuit voltage (OCV), maximum gross power output, pumping energy, and subsequent net power output of the system was individually evaluated. Increasing the temperature shows a positive influence on all the factors studied, and interesting linear relationships were obtained in all the cases, which allowed us to provide simple empirical equations to predict the resulting performance. Furthermore, the temperature dependence was strongly affected by the experimental conditions, such as the flow rate and type of stack, especially in the case of the pilot-scale stack.
基于膜的反向电渗析(RED)可以将两种溶液之间的盐度梯度能转化为电能,且不会对环境造成任何影响。关于使用天然海水和河水的RED工艺的实际应用,RED性能取决于气候(温度)。在本研究中,我们使用两种中试规模的RED电池堆评估了进料溶液温度对所得RED性能的影响,这两种电池堆由200个电池对组成,总有效膜面积为40平方米,中间距离不同(200微米和600微米)。分别评估了溶液隔室和膜的电阻、开路电压(OCV)、最大总功率输出、泵送能量以及系统随后的净功率输出对温度的依赖性。温度升高对所有研究因素均显示出积极影响,并且在所有情况下都获得了有趣的线性关系,这使我们能够提供简单的经验方程来预测所得性能。此外,温度依赖性受到实验条件的强烈影响,例如流速和电池堆类型,特别是在中试规模电池堆的情况下。