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Modeling Radiation Heat Transfer With Participating Media in Solid Oxide Fuel Cells

机译:固体氧化物燃料电池中参与介质的辐射传热建模

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Solid oxide fuel cell (SOFC) technology has been shown to be viable, but its profitability has not yet been seen. To achieve a high net efficiency at a low net cost, a detailed understanding of the transport processes both inside and outside of the SOFC stack is required. Of particular significance is an accurate determination of the temperature distribution because material properties, chemical kinetics, and transport properties depend heavily on the temperature. Effective utilization of the heat can lead to a substantial increase in overall system efficiency and decrease in operating cost. Despite the extreme importance in accurately predicting temperature, the SOFC modeling community appears to be uncertain about the importance of incorporating radiation into their models. Although some models have included it, the majority of models ignore radiative heat transfer. SOFCs operate at temperatures around or above 1200 K, where radiation effects can be significant. In order to correctly predict the radiation heat transfer, participating gases must also be included. Water vapor and carbon dioxide can absorb, emit, and scatter radiation, and are present at the anode in high concentrations. This paper presents a simple thermal transport model for analyzing heat transfer and improving thermal management within planar SOFCs. The model was implemented using a commercial computational fluid dynamic code and includes conduction, convection, and radiation in a participating media. It is clear from this study that radiation must be considered when modeling solid oxide fuel cells. The effect of participating media radiation was shown to be minimal in this geometry, but it is likely to be more important in tubular geometries.
机译:固态氧化物燃料电池(SOFC)技术已被证明是可行的,但尚未看到其盈利能力。为了以较低的净成本实现较高的净效率,需要详细了解SOFC堆栈内部和外部的传输过程。特别重要的是精确确定温度分布,因为材料特性,化学动力学和传输特性在很大程度上取决于温度。有效利用热量可以导致整体系统效率的大幅提高和运营成本的降低。尽管在准确预测温度方面极为重要,但SOFC建模界似乎不确定将辐射纳入其模型中的重要性。尽管某些模型已包括在内,但大多数模型都忽略了辐射传热。 SOFC在大约1200 K或更高的温度下运行,在该温度下辐射效应可能很明显。为了正确预测辐射的热传递,还必须包括参与的气体。水蒸气和二氧化碳可以吸收,发射和散射辐射,并以高浓度存在于阳极。本文提出了一种简单的热传输模型,用于分析平面SOFC内的热传递并改善热管理。该模型是使用商业计算流体动力学代码实现的,并且包括参与介质中的传导,对流和辐射。从这项研究中可以明显看出,在对固体氧化物燃料电池建模时必须考虑辐射。在这种几何形状中,参与介质辐射的影响显示为最小,但在管状几何形状中可能更重要。

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