首页> 外文会议>ASME international mechanical engineering congress and exposition;IMECE2011 >Exploring the MEMS Enabled Water Preservation in Micro-scale Direct Methanol Fuel Cells
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Exploring the MEMS Enabled Water Preservation in Micro-scale Direct Methanol Fuel Cells

机译:在微型直接甲醇燃料电池中探索采用MEMS的水保护

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To ensure the Direct Methanol Fuel Cells (DMFC) achieve a high power density, it is necessary to use high concentration methanol in the storage. However, it is still necessary to supply the needed water in the PEM process. Thus, it becomes necessary to preserve the water from losing at the cathode side. In this exploration, hydrophobic Teflon membrane, with micro-size pores, is applied at the outside of the cathode to prevent water exits to the air stream but still allowing the oxygen to diffuse through. Gold film is sputtered at the inner face of the Teflon membrane to provide electric conductivity. Water tests indicate that this membrane is able to hold significant pressure and allowing the water to be pushed back through PEM to the anode. This modified cathode has been assembled into a micro fuel cell. Electrochemical tests indicated that this fuel cell operates well at various temperatures. Compare with a same fuel cell but using carbon paper instead, it appears that the sputtered gold film has the potential to provide sufficient conductivity. Although the water preservation capability has not been fully validated due to the present micro-scale measurement limitation, this exploration has indicated a promising method to improve the energy density of micro-DMFC.
机译:为了确保直接甲醇燃料电池(DMFC)达到高功率密度,必须在存储中使用高浓度甲醇。但是,仍然有必要在PEM过程中提供所需的水。因此,有必要防止水在阴极侧流失。在这种探索中,在阴极的外部使用了具有微孔的疏水性聚四氟乙烯膜,以防止水逸出到气流中,但仍然允许氧气扩散通过。在特氟龙膜的内表面溅射金膜以提供导电性。水测试表明,该膜能够保持很大的压力,并允许水通过PEM推回到阳极。该修饰的阴极已经组装成微型燃料电池。电化学测试表明,该燃料电池在各种温度下均能良好运行。与使用碳纸替代的相同燃料电池相比,溅射金膜似乎具有提供足够电导率的潜力。尽管由于目前的微尺度测量限制,保水能力尚未得到充分验证,但这项探索表明了改善微DMFC能量密度的一种有前途的方法。

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