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A fast start up system for microfluidic direct methanol fuel cells

机译:用于微流体直接甲醇燃料电池的快速启动系统

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摘要

A novel simple and effective heating system for microfluidic direct methanol fuel cells was characterized experimentally. It consisted of a semi-conductive indium tin oxide heating layer of nanometer thickness that was applied to the anode and cathode cover plates and subjected to high electrical power. Within only 25 s, temperatures of up to 80 degrees C were reached in the vicinity of the membrane, which was verified experimentally. With this system the time needed to generate more than 90 % of the maximum output power of the fuel cell can be reduced to 20 s, thus overcoming the well known problem of long start up times in the order of minutes of this type of fuel cells. Furthermore, deeper insight into the role of the convective heat transfer is given. For the first time simultaneous measurements of the three-dimensional velocity and temperature distributions within the anode channel of a microfluidic direct methanol fuel cell were performed by means of luminescence lifetime imaging and astigmatism particle tracking velocimetry. The experimental results prove a significant cooling effect of the anode flow, whereas the influence of the cathode flow is small. Finally, various possible future improvements to increase the efficiency of the heating system are identified. (C) 2019 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:实验表征了一种新型的简单有效的微流体直接甲醇燃料电池加热系统。它由一个纳米厚度的半导体铟锡氧化物加热层组成,该加热层被施加到阳极和阴极盖板上并承受高电功率。在仅25秒内,膜附近的温度就达到了80摄氏度,这已通过实验进行了验证。使用该系统,可以将产生超过90%的燃料电池最大输出功率所需的时间减少到20 s,从而克服了这种类型的燃料电池几分钟启动所需的长启动时间这一众所周知的问题。 。此外,更深入地了解了对流换热的作用。首次通过发光寿命成像和像散粒子跟踪测速技术同时测量了微流直接甲醇燃料电池阳极通道内的三维速度和温度分布。实验结果证明了阳极流的显着冷却效果,而阴极流的影响很小。最后,确定了各种可能的未来改进措施,以提高加热系统的效率。 (C)2019氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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