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Optimization of local porosity in the electrode as an advanced channel for all-vanadium redox flow battery

机译:优化电极中局部孔隙率作为全钒氧化还原电池的先进通道

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摘要

Experimental and numerical studies have been carried out to improve the flow distribution by optimizing the local porosity of the electrodes of the all-vanadium redox flow batteries (VFBs) to increase the energy efficiency at high current density. We control the local porosity by inserting extra layer of electrode at inlet and outlet, and the flow field of electrolyte is analyzed numerically. First, the flow field of electrolyte is analyzed numerically to understand distribution of electrolyte in the electrode. Then, the charge and discharge curve is analyzed to understand the effect of local porosity of electrode on the energy efficiency. At 50 mA/cm(2), the energy efficiency is the highest when using electrode with uniform porosity. At 150 mA/cm(2), however, the energy efficiency of the cell using the electrode with low porosity at inlet is similar to that using the uniform electrode which is 66.6%. Lastly, we suggest an empirical equation for optimal local porosity distribution of the electrode according to current density. Using the empirical equation, we can increase the energy efficiency of the cell to 67.7% at 150 mA/cm(2). This study shows the possibility of increase of the energy efficiency of VFBs by controlling local porosity of the electrode. (C) 2019 Elsevier Ltd. All rights reserved.
机译:已经进行了实验性和数值研究以通过优化全钒氧化还原流量电池(VFBS)的电极的局部孔隙率来改善流动分布,以提高高电流密度的能量效率。通过在入口和出口处插入额外的电极层来控制局部孔隙率,并且在数值上分析电解质的流场。首先,在数量上分析电解质的流场以理解电极中的电解质的分布。然后,分析充电和放电曲线以了解电极局部孔隙率对能量效率的影响。在50mA / cm(2)时,使用具有均匀孔隙率的电极时的能量效率最高。然而,在150mA / cm(2)中,使用Inlet孔隙率低的电池电池的能量效率类似于使用66.6%的均匀电极。最后,我们提出了根据电流密度的最佳局部孔隙率分布的经验方程。使用经验方程,我们可以将电池的能量效率提高至150mA / cm(2)的67.7%。本研究表明,通过控制电极的局部孔隙率,通过控制电极的局部孔隙率来增加VFB的能量效率的可能性。 (c)2019 Elsevier Ltd.保留所有权利。

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