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Performance analysis and exergoeconomic assessment of a proton exchange membrane compressor for electrochemical hydrogen storage

机译:用于电化学储氢的质子交换膜压缩机的性能分析与Exergo经济评估

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Electrochemical hydrogen compression (EHC) is a promising alternative to conventional compressors for hydrogen storage at high pressure, because it has a simple structure, low cost of hydrogen delivery, and high efficiency. In this study, the performance of an EHC is evaluated using a three-dimensional numerical model and finite volume method. The results of numerical analysis for a single cell of EHC are extended to a full stack of EHC. In addition, exergy and exergoeconomic analyses are carried out based on the numerical data. The effects of operating temperature, pressure, and gas diffusion layer (GDL) thickness on the energy and exergy efficiencies and the exergy cost of hydrogen are examined. The motivation of this study is to examine the performance of the EHC at different working conditions and also to determine the exergy cost of hydrogen. The results reveal that the energy and exergy efficiency of EHC stack improve by almost 3.1% when operating temperature increases from 363 K to 393 K and the exergy cost of hydrogen decreases by 0.5% at current density of 5000 A m(-2). It is concluded that energy and exergy efficiency of EHC stack decrease by 25% and 5.4% when the cathode pressure increases from 1 bar to 30 bar, respectively. Moreover, it is realized that the GDL thickness has a considerable effect on the EHC performance. The exergy cost of hydrogen decreases by 53% when the GDL thickness decreases from 0.5 mm to 0.2 mm at current density of 5000 A m(-2). (c) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:电化学氢气压缩(EHC)是在高压下储氢的常规压缩机的有希望的替代方案,因为它具有简单的结构,氢递送成本低,效率高。在该研究中,使用三维数值模型和有限体积法评估EHC的性能。 EHC的单个细胞数值分析结果延伸到全堆叠的EHC。此外,基于数值数据进行Deergy和Exergo经济分析。检查了工作温度,压力和气体扩散层(GDL)厚度对能量和漏险效率的影响以及氢气的漏洞成本。本研究的动机是在不同的工作条件下检查EHC的性能,也可以确定氢的漏胀成本。结果表明,当工作温度从363 k增加到393 k时,EHC堆叠的能量和漏极效率提高了近3.1%,并且氢气的电流密度为5000μm(-2)的电流降低0.5%。结论是,当阴极压力分别从1巴增加到30巴时,EHC堆栈的能量和高度效率降低了25%和5.4%。此外,它意识到GDL厚度对EHC性能具有相当大的影响。当GDL厚度在5000A(-2)的电流密度下降0.5mm至0.2mm时,氢的氢成本降低53%。 (c)2020氢能源出版物LLC。 elsevier有限公司出版。保留所有权利。

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