制氢
电力转天然气
高压电解
电解水
聚合物电解质膜电解
可再生能源
工艺工程
质子交换膜燃料电池
高温电解
氢
电解
环境科学
氢燃料
化学
核工程
化学工程
工程类
燃料电池
电气工程
物理化学
有机化学
电解质
电极
作者
F.Z. Aouali,Mohamed Becherif,Mohamad Ramadan,Mahieddine Emziane,A. Khellaf,Kamal Mohammedi
标识
DOI:10.1016/j.ijhydene.2016.03.101
摘要
Proton Exchange Membrane (PEM) Electrolysers (ELSs) are considered as pollution-free with enhanced efficiency technology. Hydrogen can be easily produced from different resources like biomass, water electrolysis, natural gas, propane, and methanol. Hydrogen generation from water electrolysis, which is the splitting of water molecules into hydrogen and oxygen using electricity, can be beneficial when used in combination with variable Renewable Energy (RE) technologies such as solar and wind. When the electricity used for water electrolysis is produced by a variable RE source, the hydrogen stores the unused energy for a later use and can be considered as a renewable fuel and energy resource for the transport and energy sectors. This paper aims to propose a novel graphical model design for the PEM-ELS for hydrogen production based on the electrochemical, thermodynamical and thermal equations. The model under study is experimentally validated using a small-scale laboratory electrolyser. Simulation results, using Matlab-Simulink™, show an adequate parameter agreement with those found experimentally. Therefore, the impact of the different parameters on the electrolyser dynamic performance is introduced and the relevant analytical-experimental comparison is shown. The temperature effect on the PEM-ELS dynamic behaviour is also discussed.
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