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首页> 外文期刊>International journal of hydrogen energy >Experimental thermal analysis on air cooling for closed-cathode Polymer Electrolyte Membrane fuel cells
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Experimental thermal analysis on air cooling for closed-cathode Polymer Electrolyte Membrane fuel cells

机译:闭式阴极聚合物电解质膜燃料电池空冷实验热分析

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摘要

This work explores the strength and limits of using separate air cooling for closed-cathode Polymer Electrolyte Membrane (PEM) stacks. Evaluating the thermal behavior of the designs based on stack temperature profiles alone would lead to inaccuracy as the initial temperatures and the stack thermal powers are different. Thus, the thermal behavior of the cooling modes was qualitatively analyzed via heat transfer analyses. An experimental approach is reported here using three stacks with varied cooling channel geometry and aspect ratio. Two stacks were designed on parallel multi channel (20 and 40 channels) straight flow configuration. The third stack applied the concept of non-linear laminar flow trajectory for the cooling channels. The 3-cell stacks were constructed with an active area of 240 cm(2). The cooling mode applied a cooling fan coupling of positive and negative pressure flows. Air flows were between Reynolds number of 200 and 400 while the humidity varied at 50% and 90%. The analytical methodology converted the first-order temperature profiles into second-order heat transfer profiles. The steady-state parameters studied were temperature uniformity, cooling response, average cooling rate, cooling effectiveness, cooling flux, the heat transfer coefficient and the mean local temperature difference. The width of analysis has successfully identified the dynamic capabilities of the individual cooling plate designs for further practical considerations. Copyright (C) 2015, Hydrogen Energy Publications, LLC. Published by Elsevier Ltd. All rights reserved.
机译:这项工作探讨了对封闭式阴极聚合物电解质膜(PEM)电池组使用单独的空气冷却的优势和局限性。仅根据电池堆温度曲线评估设计的热性能会导致不准确,因为初始温度和电池堆热功率不同。因此,通过传热分析定性地分析了冷却模式的热行为。这里报道了一种实验方法,该方法使用具有不同冷却通道几何形状和纵横比的三个烟囱。在平行多通道(20和40通道)直流配置上设计了两个堆栈。第三个堆栈对冷却通道应用了非线性层流轨迹的概念。 3单元电池堆的有效面积为240 cm(2)。冷却模式应用了正负压力流的冷却风扇耦合。空气流量在雷诺数200和400之间,而湿度在50%和90%之间变化。分析方法将一阶温度曲线转换为二阶传热曲线。研究的稳态参数为温度均匀性,冷却响应,平均冷却速率,冷却效率,冷却通量,传热系数和平均局部温差。分析的宽度已成功地确定了各个冷却板设计的动态性能,可作进一步的实际考虑。 Hydrogen Energy Publications,LLC版权所有(C)2015。由Elsevier Ltd.出版。保留所有权利。

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