菱形交错冷却通道PEMFC的传热性能评价

Pirbux Mughal, Yadong He, Ramzan Luhur
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摘要

化石燃料枯竭和环境污染是全球性的挑战。氢是地球上最丰富的元素之一。最近,科学家和研究人员正在研究分解水以产生用于内燃机的氢氧。已经发表了几项利用氢气发电的研究。质子交换膜燃料电池(PEMFC)是未来电动汽车的一种替代能源。PEMFC的反应包括氢分子在阳极上分裂为氢离子和电子,而质子在阴极上与氧和电子相遇形成水并释放热量。PEMFC的产热过程包括电流电阻、熵热反应和电化学反应的不可逆性等。PEMFC中产生的热量通过冷却通道排出。传热速率取决于热性能。聚合物电解质膜、催化剂层、气体扩散层、电极等的设计具有不同的热性能,影响传热。适当的热管理是PEMFC运行的关键部分。因为PEMFC的效率取决于临界范围内的热损失。在本研究中,采用数值方法研究了PEMFC冷却通道的传热性能。计算了换热速率、对流换热系数、温度分布和压降。在冷却液质量流量分别为0.2、0.4、0.6、0.8和1 kg/s的条件下进行研究。采用Ansys Fluent软件进行数值研究。在燃料电池中采用了菱形扩展交错模式冷却通道进行分布流动。在本研究中,横向节距为2mm,纵向节距为1mm、1.5 mm和2mm,并在PEMFC冷却通道中扩展为菱形。采用实验设计法对最佳结果进行筛选。结果表明,延长的交错冷却通道改善了换热性能,横向和纵向间距分别为2mm和1.5 mm,换热效果较好,压降略高于2mm间距。湍流动力学随横节距减小而增大,流动分布随纵节距增大而改善。
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Heat Transfer Performance Evaluation of PEMFC With Diamond-Shaped Staggered Cooling Channel
The fossil fuel depletion and environmental pollution are global challenges. Hydrogen is one of the most abundant elements on earth. Recently, scientists and researchers are investigating water splitting to produce oxy-hydrogen for internal combustion engines. Several studies have been published where hydrogen was used to generate electricity. The proton exchange membrane fuel cell (PEMFC) is an alternative energy resource for future electric vehicles. The reaction of PEMFC includes hydrogen molecules splitting as hydrogen ions and electrons on the anode whereas proton meet with oxygen and electrons and form water and release heat on the cathode. There are several processes involved in heat generation in PEMFC such as resistance in current flow, entropic heat reaction, and irreversibility of the electrochemical reactions. The generated heat in PEMFC is removed through cooling channels. The heat transfer rate depends on thermal properties. The design of the such as polymer electrolyte membrane, catalyst layer, gas diffusion layer, and electrodes have different thermal properties which influence heat transfer. Proper thermal management is critical part of PEMFC operation. Because the efficiency of PEMFC depends on heat loss in-between critical range. In this study, a numerical approach is used to investigate heat transfer performance of a (PEMFC) cooling channel. The heat transfer rate, convective heat transfer coefficient, temperature distribution and pressure drop were evaluated in this work. All these results were carried out on, 0.2, 0.4, 0.6 0.8 and 1 kg/s of mass flow rate of coolant in the PEMFC cooling channel. Ansys Fluent is used for the numerical investigation. The diamond shape extended staggered pattern cooling channel were used in fuel cell for distributed flow. In this study, 2mm transverse pitch whereas 1mm, 1.5 mm and 2 mm longitudinal pitch with diamond shape extended in PEMFC cooling channel are used. However, design of experiments method was used to sort optimum results. The results reveal the extended staggered cooling channel improve heat transfer performance, 2mm and 1.5 mm transverse and longitudinal pitch respectively gave better heat transfer results and slightly higher pressure drops than 2mm pitch. Turbulence kinetic increases with decreasing transverse pitch and flow distribution improved with longitudinal pitch.
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