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Optimum Geometrical Design For Improved Fuel Utilization In Membraneless Micro Fuel Cell

机译:改进无膜微燃料电池燃料利用率的最佳几何设计

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In membraneless micro fuel cells, the mixing and depletion widths are major factors that determine the cell performance. Cells in which these widths are too large exhibit severely reduced fuel utilization and, hence, less electrochemical reaction especially in the downstream region of the channel. For cells with conventional rectangular geometry, increasing the aspect ratio reduces the mixing width but reduces the effective electrode area. This work proposes a trident-shaped geometrical design for membraneless micro fuel cells in which the anode fluid, cathode fluid and proton-conducting fluid are introduced through three distinct inlets. The anode and cathode fluids are interconnected by the proton-conducting fluid channel. In addition, the anode fluid and proton-conducting fluid are connected by a small narrow passage, and the cathode fluid and proton-conducting fluid channel are also connected by a small narrow passage. Numerical simulations, including the effects of electrochemical reaction and fluid flow, are carried out to investigate reactant distributions in the downstream region of the channel and to study fuel utilization. A fuel utilization of around 51% is achieved when the two opposite walls are used as reaction surfaces and the inlet velocity is set at 0.01 ms~(-1). By varying the cell length and expanding the reaction surface areas by including additional surfaces within the cell, simulations show that the fuel utilization can be improved to around 86%. which is much higher than has been achieved in previous studies. The present numerical results are validated by comparison with available literature data.
机译:在无膜微型燃料电池中,混合和耗尽宽度是决定电池性能的主要因素。这些宽度太大的电池表现出严重降低的燃料利用率,因此,尤其是在通道的下游区域,电化学反应较少。对于具有常规矩形几何形状的电池,增加长宽比会减小混合宽度,但会减小有效电极面积。这项工作为无膜微型燃料电池提出了一种三叉戟形的几何设计,其中通过三个不同的入口引入了阳极流体,阴极流体和质子传导流体。阳极和阴极流体通过质子传导流体通道互连。另外,阳极流体和质子传导流体通过小的狭窄通道连接,阴极流体和质子传导流体通道也通过小的狭窄通道连接。进行了包括电化学反应和流体流动的影响在内的数值模拟,以研究反应物在通道下游区域的分布并研究燃料利用率。当两个相对的壁用作反应表面并且入口速度设置为0.01 ms〜(-1)时,可实现约51%的燃料利用率。通过改变电池的长度并通过在电池内包括其他表面来扩大反应表面积,模拟显示燃料利用率可以提高到约86%。这比以前的研究要高得多。通过与现有文献数据进行比较,可以验证本数值结果。

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