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A computational study of bifunctional oxygen electrode in air-breathing reversible microfluidic fuel cells

机译:吸气式可逆微流控燃料电池中双功能氧电极的计算研究

摘要

Air-breathing reversible microfluidic fuel cell (RMFC) provides flexibility to choose either acid or alkaline medium for the bifunctional oxygen electrode. A numerical model has been developed and validated to predict the performance of an air-breathing RMFC. Half-cell J-V characteristics of the RMFC using different pH media for the oxygen electrode are compared. The model results suggest that when the RMFC is operated in fuel cell (FC) mode, alkaline medium is preferred for the oxygen electrode, and when operated in electrolysis-cell (EC) mode, acid medium is preferred. By further analyzing the round-trip energy efficiency and major potential loss of the half-cell, it is found that adopting acid medium for oxygen electrode can maximize the overall charging/discharging cycle efficiency and performance of RMFC, due to much lower activation overpotential in the EC mode. Heat and mass transport characteristics of the half-cell are also investigated. It is found that the flowing electrolyte can efficiently remove the heat generated by various sources in the RMFC, leading to the mass convection in the oxygen electrode and surrounding environment solely driven by concentration gradient. Due to the presence of water vapor as the reaction product, FC mode operation in acid medium yields the most intensive breathing process of the oxygen electrode. The results provide implications to further optimizations of RMFC. © 2011, Hydrogen Energy Publications, LLC. Published by Elsevier Ltd. All rights reserved.
机译:空气呼吸可逆微流燃料电池(RMFC)提供了灵活性,可以为双功能氧电极选择酸性或碱性介质。已经开发并验证了数值模型以预测空气呼吸RMFC的性能。比较了使用不同pH介质的氧气电极的RMFC的半电池J-V特性。模型结果表明,当RMFC在燃料电池(FC)模式下运行时,氧气介质应优先使用碱性介质,而在电解池(EC)模式下运行时,优选酸性介质。通过进一步分析半电池的往返能量效率和主要电势损失,发现采用酸性介质作为氧电极可以最大限度地提高RMFC的整体充放电循环效率和性能,这是因为RMFC的活化电势要低得多。 EC模式。还研究了半电池的传热和传质特性。发现流动的电解质可以有效地除去RMFC中各种源产生的热量,从而导致氧电极和周围环境中的质量对流仅由浓度梯度驱动。由于存在水蒸气作为反应产物,因此在酸性介质中进行FC模式操作可产生氧气电极最密集的呼吸过程。结果为进一步优化RMFC提供了启示。 ©2011,氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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