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Three-Dimensional CFD Modeling of Transport Phenomena in a Cross-Flow Anode-Supported Planar SOFC

机译:横流阳极支撑平面SOFC中运输现象的三维CFD建模

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In this study, a three-dimensional computational fluid dynamics (CFD) model is developed for an anode-supported planar SOFC from the Chinese Academy of Science Ningbo Institute of Material Technology and Engineering (NIMTE). The simulation results of the developed model are in good agreement with the experimental data obtained under the same conditions. With the simulation results, the distribution of temperature, flow velocity and the gas concentrations through the cell components and gas channels is presented and discussed. Potential and current density distributions in the cell and overall fuel utilization are also presented. It is also found that the temperature gradients exist along the length of the cell, and the maximum value of the temperature for the cross-flow is at the outlet region of the cell. The distribution of the current density is uneven, and the maximum current density is located at the interfaces between the channels, ribs and the electrodes, the maximum current density result in a large over-potential and heat source in the electrodes, which is harmful to the overall performance and working lifespan of the fuel cells. A new type of flow structure should be developed to make the current flow be more evenly distributed and promote most of the TPB areas to take part in the electrochemical reactions.
机译:在这项研究中,中国科学院宁波材料技术与工程研究所(NIMTE)为阳极支撑的平面SOFC建立了三维计算流体动力学(CFD)模型。所建立模型的仿真结果与在相同条件下获得的实验数据吻合良好。通过仿真结果,介绍并讨论了通过电池组件和气体通道的温度,流速和气体浓度的分布。还介绍了电池中的电位和电流密度分布以及整体燃料利用率。还发现沿电池的长度存在温度梯度,并且横流温度的最大值在电池的出口区域。电流密度分布不​​均匀,最大电流密度位于通道,肋与电极之间的界面处,最大电流密度导致电极中过大的过电位和热源,对人体有害。燃料电池的整体性能和使用寿命。应该开发一种新型的流动结构,以使电流更均匀地分布,并促进大多数TPB区域参与电化学反应。

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