钒氧化还原液流电池非对称仿生流场结构设计数值分析

Zebo Huang , Lihua Xuan , Yilin Liu , Wenyu Zhu , Xing Xie , Tong Lin , Zhenchao Huang , Jianjun Wu , Qian Huang , Yufeng Deng
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引用次数: 0

摘要

在氧化还原液流电池系统中,流场结构的设计对电池内的反应、传质和电解质分布有重要影响。电极内电解液分布的均匀性受流场主通道和分布口几何形状的影响。本研究基于仿生原理对钒氧化还原液流电池(VRFB)的流场进行优化,设计了非对称静脉仿生流场。植物叶脉的分支结构可以有效地控制流体的流动,减少湍流和死区,提高流体的分布均匀性和流动效率。通过分析流场结构影响电池内部过程的机制,本研究比较了对称流场和非对称流场的性能指标,如放电电压、多孔电极浓度和压降。结果表明,非对称流场进口电解质浓度比对称流场至少提高0.4 %,非对称流场电压效率提高0.13 %。非对称流场通过优化电解质分布和增加活性物质的渗透,提高多孔电极的平均浓度,从而减少极化,降低内阻,从多个角度提高液流电池的整体性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical analysis of asymmetric biomimetic flow field structure design for vanadium redox flow battery
In redox flow battery systems, the design of the flow field structure significantly influences reactions, mass transfer, and electrolyte distribution within the battery. The uniformity of electrolyte distribution in the electrode is affected by the geometry of the main channel and distribution ports in the flow field. This study optimizes the flow field of vanadium redox flow battery (VRFB) based on biomimetic principles, designing an asymmetric vein bionic flow field. The branching structure of plant leaf veins can effectively control the flow of fluids, reduce turbulence and dead zones, and improve the distribution uniformity and flow efficiency of fluids. By analyzing the mechanisms through which flow field structure impacts internal battery processes, this work compares performance metrics, such as discharge voltage, porous electrode concentration, and pressure drop between symmetric and asymmetric flow fields. The results indicate that the electrolyte concentration at the inlet of the asymmetric flow field is at least 0.4 % higher than that of the symmetric, and the voltage efficiency of the asymmetric flow field improves by 0.13 %. The asymmetric flow field enhances the average concentration of the porous electrode by optimizing electrolyte distribution and increasing the infiltration of active species, thereby reducing polarization, lowering internal resistance, and improving the overall performance of the flow battery from multiple perspectives.
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