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Multi-physics modeling of a symmetric flat-tube solid oxide fuel cell with internal methane steam reforming

机译:具有内部甲烷蒸汽重整的对称扁管固体氧化物燃料电池的多物理场建模

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摘要

Methane is regarded as one of the ideal fuels for solid oxide fuel cells (SOFCs) due to its huge reserves and transportation properties. In this study, a 3D numerical model coupling with chemical reaction, electrochemical reaction, mass transfer, charge transfer, and heat transfer is developed to understand the heat and mass transfer processes of methane steam direct internal reforming based on double-sided cathodes (DSC) SOFC. After the model verification, the parametric simulations are performed to study the effects of operating voltage, inlet temperature, and steam to carbon (S/C) ratio on the performance of a DSC. It is found that the non-uniform distribution of flow rate among channels results in the non-uniform distribution of each physical field. Increasing the inlet temperature significantly enhances the performance of DSC, however, when the temperature is above 1073 K, the concentration loss and the temperature gradient of DSC increase, which is not conducive to the long-term operation of the DSC. In addition, we revealed the effect of the S/C ratios on the heat and mass transfer process. This study provides an insight into the heat and mass transfer process of SOFC with a mixture of steam and methane and operating conditions for enhancing the performance. (C) 2022 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:甲烷因其巨大的储量和运输特性而被认为是固体氧化物燃料电池(SOFC)的理想燃料之一。本研究建立了化学反应、电化学反应、传质、电荷转移和传热耦合的三维数值模型,以了解基于双面阴极(DSC)SOFC的甲烷蒸汽直接内重整的传热传质过程。模型验证后,通过参数化仿真研究了工作电压、入口温度和汽碳比(S/C)对DSC性能的影响。研究发现,通道间流速分布不均匀,导致各物理场分布不均匀。提高入口温度可显著提高DSC的性能,但当温度高于1073 K时,DSC的浓度损失和温度梯度增加,不利于DSC的长期运行。此外,我们还揭示了S/C比对传热传质过程的影响。本研究深入了解了蒸汽和甲烷混合物中SOFC的传热传质过程以及提高性能的操作条件。(c) 2022 Hydrogen Energy Publications LLC.,由爱思唯尔有限公司出版。保留所有权利。

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