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Redox flow batteries with serpentine flow fields: Distributions of electrolyte flow reactant penetration into the porous carbon electrodes and effects on performance

机译:具有蛇形流场的氧化还原液流电池:电解液流反应物渗透到多孔碳电极中的分布及其对性能的影响

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摘要

Redox flow batteries with flow field designs have been demonstrated to boost their capacities to deliver high current density and power density in medium and large-scale energy storage applications. Nevertheless, the fundamental mechanisms involved with improved current density in flow batteries with serpentine flow field designs have been not fully understood. Here we report a three-dimensional model of a serpentine flow field over a porous carbon electrode to examine the distributions of pressure driven electrolyte flow penetrations into the porous carbon electrodes. We also estimate the maximum current densities associated with stoichiometric availability of electrolyte reactant flow penetrations through the porous carbon electrodes. The results predict reasonably well observed experimental data without using any adjustable parameters. This fundamental work on electrolyte flow distributions of limiting reactant availability will contribute to a better understanding of limits on electrochemical performance in flow batteries with serpentine flow field designs and should be helpful to optimizing flow batteries.
机译:具有流场设计的氧化还原液流电池已被证明可以提高其在中型和大型储能应用中提供高电流密度和功率密度的能力。然而,在具有蛇形流场设计的液流电池中,与改善电流密度有关的基本机理尚未完全被理解。在这里,我们报告了在多孔碳电极上的蛇形流场的三维模型,以检查压力驱动的电解质流渗透到多孔碳电极中的分布。我们还估计了与通过多孔碳电极的电解质反应物流穿透的化学计量可用性相关的最大电流密度。结果预测了合理观察到的实验数据,无需使用任何可调整的参数。有关限制反应物可利用性的电解液流量分布的这项基础性工作将有助于更好地理解采用蛇形流场设计的液流电池的电化学性能极限,并且应有助于优化液流电池。

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