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Nanofluids to improve the performance of PEM fuel cell cooling systems: A theoretical approach

机译:纳米流体可改善PEM燃料电池冷却系统的性能:一种理论方法

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PEM fuel cells are considered to be viable alternatives to Internal Combustion Engines (ICEs) in automotive applications due to their many advantages. However, one of the challenges is the need to remove considerable heat at relatively low temperatures (i.e. similar to 60-80 degrees C). Nanofluids may offer a promising solution to help reduce the size of thermal management part of PEM fuel cell systems. This paper describes a simulation model developed to theoretically study the effect of using of nanofluids as coolants on the size of the heat exchanger (HE) and the pumping power in PEM fuel cell cooling systems. Considering a 2.4 kW PEM fuel cell, 50/50 water-ethylene glycol based nanofluids with concentration of 0.05-2 vol% have been investigated. By using 0.05 vol% concentration, similar to 21% reduction of frontal area of the HE is obtained compared with that using the base fluid at constant coolant mass flow rate. By increasing nanoparticle concentration from 0.05 to 2 vol%, a further reduction of only similar to 4% of the frontal area of HE can be obtained. No significant difference was found in pumping power when using nanofluids compared that using the base fluid. Using standard models there is negligible differences in the thermal performance using a variety of nanofluids. (C) 2016 Elsevier Ltd. All rights reserved.
机译:PEM燃料电池由于其许多优点,被认为是汽车应用中内燃机(ICE)的可行替代品。然而,挑战之一是需要在相对较低的温度(即类似于60-80℃)下除去大量的热量。纳米流体可以提供一种有前途的解决方案,以帮助减小PEM燃料电池系统热管理部分的尺寸。本文介绍了一种仿真模型,该模型是为理论上研究使用纳米流体作为冷却剂对PEM燃料电池冷却系统中热交换器(HE)的尺寸和泵浦功率的影响而开发的。考虑到2.4 kW PEM燃料电池,已经研究了浓度为0.05-2 vol%的50/50水-乙二醇基纳米流体。通过使用0.05 vol%的浓度,与在恒定冷却剂质量流量下使用基础流体相比,HE的正面面积减少了约21%。通过将纳米颗粒浓度从0.05体积%增加到2体积%,可以获得进一步减少,仅类似于HE的额叶面积的4%。与使用基础流体相比,使用纳米流体时,泵浦功率没有显着差异。使用标准模型,使用各种纳米流体的热性能差异可忽略不计。 (C)2016 Elsevier Ltd.保留所有权利。

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