欠限电流下电膜过程的熵产——温度的影响。

IF 2 3区 物理与天体物理 Q2 PHYSICS, MULTIDISCIPLINARY Entropy Pub Date : 2024-12-25 DOI:10.3390/e27010003
Juan Carlos Maroto, Sagrario Muñoz, Vicenta María Barragán
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摘要

研究了在3-40°C温度范围内,电流通过单一阳离子交换膜系统时,欠极限状态下极化现象的熵产。从电流-电压曲线的分析出发,将电膜系统视为一维非均质系统,根据系统各部分的贡献估计出系统的总熵产。利用经典极化理论和不可逆热力学方法分别计算了系统各部分不同输运机制下的总电势降和熵产。结果表明,输入的电能一部分通过电迁移和离子扩散输运作为热量散失,另一部分转化为化学能储存在盐水浓度梯度中。考虑到电膜过程是一个能量转换过程,效率被定义为存储功率与输入功率之间的比率。该效率随着外加电流和温度的增加而增加。
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Entropy Production in an Electro-Membrane Process at Underlimiting Currents-Influence of Temperature.

The entropy production in the polarization phenomena occurring in the underlimiting regime, when an electric current circulates through a single cation-exchange membrane system, has been investigated in the 3-40 °C temperature range. From the analysis of the current-voltage curves and considering the electro-membrane system as a unidimensional heterogeneous system, the total entropy generation in the system has been estimated from the contribution of each part of the system. Classical polarization theory and the irreversible thermodynamics approach have been used to determine the total electric potential drop and the entropy generation, respectively, associated with the different transport mechanisms in each part of the system. The results show that part of the electric power input is dissipated as heat due to both electric migration and diffusion ion transports, while another part is converted into chemical energy stored in the saline concentration gradient. Considering the electro-membrane process as an energy conversion process, an efficiency has been defined as the ratio between stored power and electric power input. This efficiency increases as both applied electric current and temperature increase.

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来源期刊
Entropy
Entropy PHYSICS, MULTIDISCIPLINARY-
CiteScore
4.90
自引率
11.10%
发文量
1580
审稿时长
21.05 days
期刊介绍: Entropy (ISSN 1099-4300), an international and interdisciplinary journal of entropy and information studies, publishes reviews, regular research papers and short notes. Our aim is to encourage scientists to publish as much as possible their theoretical and experimental details. There is no restriction on the length of the papers. If there are computation and the experiment, the details must be provided so that the results can be reproduced.
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