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Study of node flow fields of micro direct methanol fuel cells

机译:微直接甲醇燃料电池节点流场的研究

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To improve the low mass transfer efficiency and poor performance of micro direct methanol fuel cells (μDMFCs), a detailed study on the micro direct methanol fuel cell flow field structure is developed in this paper. Since the flow field structure plays an important role in increasing the performance of cells. Silicon-based self-breathing μDMFCs with the gird, parallel, single serpentine, double serpentine and tapered single serpentine anode flow fields are fabricated using MEMS technology. First of all, compared to the grid and parallel and double serpentine structures, single serpentine has been proved to perform a best result. However, Owing to the mass transport shadow region of an under-rib diffusion layer from the channel to the electrode, it results in the fall of methanol transport efficiency. A new tapered single serpentine has been fabricated and tested to prove its superiority. The results show that the cell performance with tapered single serpentine flow field is better than conventional single serpentine. And the maximum output power density is 15.41mW/cm2 with the increment of 35%, which contributed to further development of portable micro power sources systems.
机译:为了改善低传质效率和微型直接甲醇燃料电池(μDMFCs)的性能差,在微直接甲醇燃料电池流场结构的详细研究本文显影。由于流场结构对增加电池的性能具有重要作用。硅系与网格,并行,单蛇纹石,蛇纹石双锥形和单个蛇形阳极流场自我呼吸μDMFCs使用MEMS技术制造的。首先,相对于网格和平行和双蛇形结构,单个蛇形已被证明执行最好的结果。然而,由于从信道到所述电极的下棱扩散层的质量运输阴影区域,它导致的甲醇传输效率的下降。一种新的单锥形蛇形已经制造和测试,以证明其优越性。结果表明,与单锥形蛇形流场的电池性能比现有的单蛇形更好。和最大输出功率密度为15.41mW / cm 2的35%的增加,这有助于便携式微电源系统的进一步发展。

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