用于制氢的太阳能质子交换膜电解槽

Dr. Sharma G.S., Dr. G. L. Kameswari
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引用次数: 0

摘要

人们探索了多种制氢方法,如自热重整、部分氧化、生物质气化、蒸汽重整、水电解、克瓦纳工艺、热化学工艺和光生物工艺,以利用高热值燃料在集成电路发动机中燃烧,从而实现先进的交通运输。在本文中,我们尝试对质子交换膜电解槽的制氢量进行估算。我们模拟了太阳能质子交换膜电解槽的水分裂过程,并详细解释了电极动力学。本文提出了每天生产 100 公斤氢气的规模要求。关键词氢气 阳极反应 阴极反应 铂 铱 PEM 燃料电池
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Solar Powered Proton Exchange Membrane Electrolyser for Hydrogen Production
The production of hydrogen was explored in many ways such as auto thermal reforming, partial oxidation, biomass gasification, steam reforming, water electrolysis, Kvaerner process, thermochemical process and photo-biological process to utilize the high calorific value fuel for combustion in IC Engines for advanced transportation. In this paper, we have attempted the estimation of the production of hydrogen using the Proton Exchange membrane electrolyzer. The water splitting in Solar powered PEM EL is simulated and electrode kinetics is explained in detail. Scaling requirements for the production of 100 kg of hydrogen per day is presented. Keywords: Hydrogen, Anodic reaction, Cathodic reaction, Platinum, iridium, PEM fuel cell
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