混合储能系统超级电容器电极自放电机理的物理分析

Weinan Zhao, Zhengxing Zuo, Muhammad Hamza, Boru Jia, Huihua Feng, Bing-Ang Mei
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引用次数: 0

摘要

自放电是一种自发过程,对超级电容器的性能有相当大的不利影响。为了定量研究自放电机理的贡献,本文提出了基于双电层理论的超级电容器碳电极自放电理论模型。三个物理贡献,即副反应,离子扩散和欧姆泄漏,进行了研究。并对碳电极进行了自放电测量,验证了该理论模型的正确性。结果表明,在所有情况下,由于副反应引起的电位下降在自放电过程中可以忽略不计。此外,离子扩散以初始电位低、保持时间短为主,占自放电的50% ~ 80%。另一方面,由于初始电位高,保持时间长,欧姆泄漏占主导地位。在整个自放电过程中,离子扩散引起的电位下降随时间单调增加,而欧姆泄漏引起的电位下降则保持恒定。此外,欧姆泄漏引起的电位下降随着保持时间的增加而增加,这弥补了离子扩散引起的电位下降。这可以解释自放电过程中电极总电位衰减与保持时间无关的现象。最后进行量纲分析预测自放电。推导了副反应、离子扩散和欧姆泄漏的时间常数。无量纲电极电位与无量纲时间的重叠表明,这种量纲分析一般适用于预测碳基超级电容器在给定初始电位和时间下的自放电。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Physical analysis of self-discharge mechanism for supercapacitor electrode for hybrid electric energy storage system

Self-discharge is a spontaneous process that has considerable adverse effects on the performance of supercapacitors. In order to quantitatively investigate the contribution of self-discharge mechanism, this paper proposed a theoretical self-discharge model for carbon electrode of supercapacitors based on electric double layer theory. Three physical contributions, i.e., side reactions, ion diffusion, and ohmic leakage, were investigated. In addition, self-discharge measurement of carbon electrode was performed to validate such theoretical model. The results indicated that the potential drop due to side reactions was negligible throughout the self-discharge process in all cases. In addition, ion diffusion dominated for low initial potential and short holding time, accounting for 50%–80% of self-discharge. On the other hand, ohmic leakage dominated for high initial potential and long holding time. Furthermore, the potential drop due to ion diffusion increased monotonously with time while the potential drop due to ohmic leakage remained constant throughout the self-discharge. Moreover, the potential drop due to ohmic leakage increased with the increase in holding time, which compensated for the decreasing potential drop due to ion diffusion. This could explain the fact that the total electrode potential decay during the self-discharge was independent of holding time. Finally, dimensional analysis was performed to predict self-discharge. Time constants of side reactions, ion diffusion, and ohmic leakage were derived. Overlapping dimensionless electrode potential versus dimensionless time indicated that such dimensional analysis was generally applicable to predict self-discharge of carbon-based supercapacitors at a given initial potential and time.

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