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首页> 外文期刊>Journal of power sources >Hydrogen production by thermocatalytic decomposition of methane over Ni-Al and Ni-Cu-Al catalysts: Effect of calcination temperature
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Hydrogen production by thermocatalytic decomposition of methane over Ni-Al and Ni-Cu-Al catalysts: Effect of calcination temperature

机译:Ni-Al和Ni-Cu-Al催化剂上甲烷热催化分解制氢的作用:煅烧温度的影响

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摘要

Thermo catalytic decomposition of methane using Ni-Al and Ni-Cu-Al catalyst prepared by fusion of the corresponding nitrates is studied. The effects of catalyst calcination temperature on the hydrogen yields and the characteristics of the carbon obtained are studied. The role of copper has been also analyzed. Whatever the calcination temperature, all the catalysts show a high and almost constant hydrogen yield without catalyst deactivation after 8 h on stream, which confirms the good performance of this kind of catalysts. The presence of copper enhances the hydrogen production and the best results were obtained using catalysts calcined at 600℃. Cu has a strong influence on the dispersion of Ni in the catalysts and inhibits MO from the formation of nickel aluminate even at high calcinations temperatures, which facilitates the formation of the metallic Ni active phase during the subsequent catalyst reduction step. All catalysts tested promote the formation of very long filaments of carbon a few tens of nanometers in diameter and some micrometers long. The structural properties of these carbon filaments highly depend on the presence of Cu:Ni-Cu-Al catalysts promote the formation of a well-ordered graphitic carbon while Ni-Al catalysts enhance the formation of a rather turbostratic carbon.
机译:研究了用相应的硝酸盐熔融制得的Ni-Al和Ni-Cu-Al催化剂对甲烷进行热催化分解。研究了催化剂煅烧温度对氢收率的影响以及所获得碳的特性。还分析了铜的作用。无论煅烧温度如何,所有催化剂在运行8小时后均显示出高且几乎恒定的氢气产率,且催化剂不会失活,这证实了这类催化剂的良好性能。铜的存在增加了氢气的产生,使用在600℃煅烧的催化剂可获得最佳结果。 Cu对Ni在催化剂中的分散具有强烈影响,并且即使在高煅烧温度下也抑制MO形成铝酸镍,这有助于在随后的催化剂还原步骤中形成金属Ni活性相。所有测试过的催化剂都会促进非常长的碳丝的形成,其直径为数十纳米,而长度则为几微米。这些碳丝的结构特性高度依赖于Cu:Ni-Cu-Al催化剂的存在,促进了有序石墨碳的形成,而Ni-Al催化剂则增强了相当涡轮的碳的形成。

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