水滑石
蒸汽重整
催化作用
甲醇
制氢
煅烧
铜
无机化学
氢
锌
材料科学
化学
化学工程
冶金
有机化学
工程类
作者
Dima Hammoud,Cédric Gennequin,A. Aboukaı̈s,Edmond Abi Aad
标识
DOI:10.1016/j.ijhydene.2014.09.080
摘要
Abstract A novel catalyst for hydrogen production from the catalytic process of methanol steam reforming could play an important role in hydrogen production to be used as a feed for fuel cell. Our study focuses on the preparation of copper supported on calcined hydrotalcite catalysts using the memory effect of zinc–aluminum hydrotalcite. Zinc–aluminum was calcined at 400 °C and dipped in a copper nitrate aqueous solution. The steam reforming of methanol was studied in a fixed-bed reactor under mild conditions and a reaction temperature range of 200–350 °C. The catalysts were characterized by XRD, SEM, TPR, chemisorption N 2 O, TG/DTA, IR and N 2 adsorption techniques in order to identify their physical and chemical properties. The results evince the regeneration and the reconstruction of the layered structure that have a positive influence on the interactions between support and copper species. After activation by calcination at 500 °C, the solids copper/zinc–aluminum (Cu/Zn–Al 400 500) showed an interesting mixed oxides and were tested in the reaction of methanol steam reforming. The 10% Cu/Zn–Al 400 500 exhibits the best catalytic activity about 75.44% of H 2 yield with 51.87% of methanol conversion at 250 °C. Methanol conversion was found to be a strong function of catalyst reducibility and copper concentration. Also, reaction temperature depended strongly on the amount of Cu 2 O formed in the activated catalyst.
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