甲烷化
沼气
甲烷
催化作用
电力转天然气
环境科学
化学
替代天然气
可再生能源
废物管理
材料科学
化学工程
工艺工程
合成气
有机化学
工程类
电解
物理化学
电气工程
电解质
电极
作者
Selina Nieß,Udo Armbruster,Sebastian Dietrich,Marco Klemm
出处
期刊:Catalysts
[MDPI AG]
日期:2022-03-25
卷期号:12 (4): 374-374
被引量:20
标识
DOI:10.3390/catal12040374
摘要
Biogas, with its high carbon dioxide content (30–50 vol%), is an attractive feed for catalytic methanation with green hydrogen, and is suitable for establishing a closed carbon cycle with methane as energy carrier. The most important questions for direct biogas methanation are how the high methane content influences the methanation reaction and overall efficiency on one hand, and to what extent the methanation catalysts can be made more resistant to various sulfur-containing compounds in biogas on the other hand. Ni-based catalysts are the most favored for economic reasons. The interplay of active compounds, supports, and promoters is discussed regarding the potential for improving sulfur resistance. Several strategies are addressed and experimental studies are evaluated, to identify catalysts which might be suitable for these challenges. As several catalyst functionalities must be combined, materials with two active metals and binary oxide support seem to be the best approach to technically applicable solutions. The high methane content in biogas appears to have a measurable impact on equilibrium and therefore CO2 conversion. Depending on the initial CH4/CO2 ratio, this might lead to a product with higher methane content, and, after work-up, to a drop in-option for existing natural gas grids.
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