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Investigation of bubble effect in microfluidic fuel cells by a simplified microfluidic reactor

机译:通过简化的微流控反应器研究微流控燃料电池中的气泡效应

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This study experimentally examines the influence of two-phase flow on the fluid flow in membraneless microfluidic fuel cells. The gas production rate from such fuel cell is firstly estimated via corresponding electrochemical equations and stoichiometry from the published measured current-voltage curves in the literature to identify the existence of gas bubble. It is observed that O_2 bubble is likely to be generated in Hasegawa's experiment when the current density exceeds 30 mA cm~(-2) and 3 mA cm~(-2) for volumetric flow rates of 100 μL min~(-1) and 10 μL min~(-1) respectively. Besides, CO_2 bubble is also likely to be presented in the Jayashree's experiment at a current density above 110 mA cm~(-2) at their operating volumetric liquid flow rate, 0.3 mL min~(-1). Secondly, a 1000-μm-width and 50-μm-depth platinum-deposited microfluidic reactor is fabricated and tested to estimate the gas bubble effect on the mixing in the similar microchannel at different volumetric flow rates. Analysis of the mixing along with the flow visualization confirm that the membraneless fuel cell should be free from any bubble, since the mixing index of the two inlet streams with bubble generation is almost five times higher than that without any bubble at the downstream.
机译:这项研究实验检查了两相流对无膜微流控燃料电池中流体流的影响。首先通过相应的电化学方程式和化学计量比从文献中公开的测量的电流-电压曲线估算这种燃料电池的产气率,以识别气泡的存在。在长谷川实验中,当体积流量为100μLmin〜(-1)且电流密度超过30 mA cm〜(-2)和3 mA cm〜(-2)时,很可能会产生O_2气泡。最小10μLmin〜(-1)。此外,在Jayashree的实验中,当其工作体积液体流速为0.3 mL min〜(-1)时,CO_2气泡也可能会出现在110 mA cm〜(-2)以上的电流密度下。其次,制造并测试了宽度为1000μm且深度为50μm的铂沉积微流体反应器,并评估了气泡在不同体积流量下对类似微通道中混合的影响。混合分析和流动可视化证实了无膜燃料电池应该没有气泡,因为产生气泡的两个入口流的混合指数几乎是下游没有气泡的五倍。

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