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Numerical analysis of mass and heat transport in proton-conducting SOFCs with direct internal reforming

机译:直接内部重整的质子传导SOFC传质与传热的数值分析

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摘要

A computational model to investigate proton-conducting Solid-Oxide Fuel Cells (SOFCs) with direct internal reforming is developed. The numerical framework employs a 42-step elementary heterogeneous mechanism for Ni catalysts, using mean-field approximation. Mass transport through the porous media is described by the dusty gas model (DGM). Electrochemical parameters are deduced by reproducing two sets of experimental data, via the non-linear Butler-Volmer equation. A simple 1-D energy balance model is used to predict temperature profiles. The performance of the cell is analyzed by assuming the co-flow planar cell to be adiabatic. Simulations are carried out to understand the influence of various operating conditions on temperature distribution, species transport, and electrochemistry in the cell. The effect of dividing the anode into four zones, with different specific catalytic areas, on macroscopic performance parameters is investigated. (C) 2015 Elsevier Ltd. All rights reserved.
机译:建立了计算模型,以研究具有直接内部重整的质子传导固体氧化物燃料电池(SOFC)。数值框架采用平均场近似法对Ni催化剂采用42步基本非均质机理。尘埃气体模型(DGM)描述了通过多孔介质的质量传输。电化学参数是通过非线性Butler-Volmer方程重现两组实验数据得出的。一个简单的一维能量平衡模型用于预测温度曲线。通过假定同流平面电池是绝热的来分析电池的性能。进行模拟以了解各种操作条件对电池中温度分布,物质迁移和电化学的影响。研究了将阳极分为四个区域(具有不同的比催化面积)对宏观性能参数的影响。 (C)2015 Elsevier Ltd.保留所有权利。

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