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Carbon dioxide reforming of methane on monolithic Ni/Al_2O_3-based catalysts 被引量:3

Carbon dioxide reforming of methane on monolithic Ni/Al_2O_3-based catalysts
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摘要 Nickel-alumina catalysts supported on cordierite monoliths of honeycomb structure surpass essentially the conventional granulated ones with respect to the output in carbon dioxide reforming of methane. Adjusting the surface acid-base properties of catalysts by introduction of alkali metal (Na, K) oxides inhibits the carbonization and as a result, improves the operational stability of these catalysts. An effect of promotion of nickel-alumina based composite doped by lanthanum oxide is found. This effect, caused by an additional route for the CO2 activation on Ni-La2O3/Al2O3/cordierite catalyst, is displayed in increase of methane conversion under conditions of an oxidant excess. Nickel-alumina catalysts supported on cordierite monoliths of honeycomb structure surpass essentially the conventional granulated ones with respect to the output in carbon dioxide reforming of methane. Adjusting the surface acid-base properties of catalysts by introduction of alkali metal (Na, K) oxides inhibits the carbonization and as a result, improves the operational stability of these catalysts. An effect of promotion of nickel-alumina based composite doped by lanthanum oxide is found. This effect, caused by an additional route for the CO2 activation on Ni-La2O3/Al2O3/cordierite catalyst, is displayed in increase of methane conversion under conditions of an oxidant excess.
出处 《Journal of Natural Gas Chemistry》 EI CAS CSCD 2011年第2期184-190,共7页 天然气化学杂志(英文版)
关键词 methane carbon dioxide reforming hydrogen SYNGAS Ni/Al2O3 catalysts cordierite monolithic supports honeycomb structure sodium and potassium lanthanum oxide modifying additives methane; carbon dioxide reforming; hydrogen; syngas; Ni/Al2O3 catalysts; cordierite monolithic supports; honeycomb structure; sodium and potassium; lanthanum oxide modifying additives;
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