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PEM fuel cell performance improvement through numerical optimization of the parameters of the porous layers

机译:通过对多孔层参数进行数值优化来提高PEM燃料电池的性能

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A numerical model for a PEM fuel cell has been developed and used to investigate the effect of some of the key parameters of the porous layers of the fuel cell (GDL and MPL) on its performance. The model is comprehensive as it is three-dimensional, multiphase and non-isothermal and it has been well-validated with the experimental data of a 5 cm(2) active area-fuel cell with/without MPLs. As a result of the reduced mass transport resistance of the gaseous and liquid flow, a better performance was achieved when he GDL thickness was decreased. For the same reason, the fuel cell was shown to be significantly improved with increasing the GDL porosity by a factor of 2 and the consumption of oxygen doubled when increasing the porosity from 0.40 to 0.78. Compared to the conventional constant-porosity GDL, the graded-porosity (gradually decreasing from the flow channel to the catalyst layer) GDL was found to enhance the fuel cell performance and this is due to the better liquid water rejection. The incorporation of a realistic value for the contact resistance between the GDL and the bipolar plate slightly decreases the performance of the fuel cell. Also the results show that the addition of the MPL to the GDL is crucially important as it assists in the humidifying of the electrolyte membrane, thus improving the overall performance of the fuel cell. Finally, realistically increasing the MPL contact angle has led to a positive influence on the fuel cell performance. (C) 2019 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:已经开发出用于PEM燃料电池的数值模型,并用于研究燃料电池多孔层(GDL和MPL)的一些关键参数对其性能的影响。该模型是全面的,因为它是三维,多相且非等温的,并且已使用5 cm(2)带有/不带有MPL的有源区域燃料电池的实验数据进行了很好的验证。由于气体和液体流的传质阻力降低,当降低GDL厚度时可获得更好的性能。出于同样的原因,当将GDL孔隙率提高2倍时,燃料电池也得到了​​显着改善,并且当孔隙率从0.40增加到0.78时,氧气的消耗量增加了一倍。与常规的恒定孔隙度GDL相比,发现渐变孔隙度(从流道到催化剂层逐渐降低)GDL增强了燃料电池的性能,这是由于更好的液态水排阻。对于GDL和双极板之间的接触电阻的实际值的并入会稍微降低燃料电池的性能。结果还表明,将MPL添加到GDL中至关重要,因为它有助于电解质膜的加湿,从而改善了燃料电池的整体性能。最后,实际上增加MPL接触角已对燃料电池性能产生了积极影响。 (C)2019氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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