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INVESTIGATION OF TRANSPORT PHENOMENA IN MICRO FLOW CHANNELS FOR MINIATURE FUEL CELLS

机译:微型燃料电池微型流动通道运输现象研究

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This paper presents a study on the transport phenomena related to gas flow through fuel cell micro-channels, specifically the impact of dimensional scale on the order of 100 microns and below. Especially critical is the ability to experimentally verify model predictions, and this is made efficiently possible by the use of structural photopolymer (SU-8) to directly fabricate functional fuel cell micro-channels. The design and analysis components of this investigation apply 3-D multi-physics modeling to predict cell performance under micro-channel conditions. Interestingly, the model predicts that very small channels (specifically 100 microns and below) result in a significantly higher peak power density than larger counterparts. SU-8 micro-channels with different feature sizes have been integrated into fuel cell prototypes and tested for comparison against model predictions. The results not only demonstrate that the SU-8 channels with metal current collector show quite appreciable performance, but also provide experimental verification of the merits of channel miniaturization. As predicted, the performance in terms of peak power density increases as the feature size of the channel decreases, even though the pressure drop is higher in the more narrow channels. So it has been observed both theoretically and experimentally that cell performance shows an improving trend with micro-channels, and design optimization for miniature fuel cell provides a powerful method for increasing power density.
机译:本文介绍了通过燃料电池微通道与气流相关的传输现象的研究,特别是尺寸尺度大约100微米和下方的影响。特别是关键是通过使用结构光聚合物(SU-8)直接制造功能性燃料电池微通道,可以有效地实现模型预测的能力。本研究的设计和分析组分应用3-D多物理建模,以预测微信道条件下的细胞性能。有趣的是,该模型预测了非常小的通道(具体100微米和下方)导致比较大的对应物更高的峰值功率密度。具有不同特征尺寸的SU-8微通道已集成到燃料电池原型中并测试以进行模型预测。结果不仅表明,具有金属集电器的SU-8通道显示出相当明显的性能,还提供了对通道小型化的优点的实验验证。如预测所示,随着频道的特征尺寸减小,即使压降在更窄的通道中,峰值功率密度的性能也会增加。因此,理论上和实验地观察到细胞性能显示出具有微通道的提高趋势,并且微型燃料电池的设计优化提供了一种强大的功率密度方法。

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