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Plasma-assisted CO2 methanation: effects on the low-temperature activity of an Ni–Ce catalyst and reaction performance

机译:等离子体辅助的CO2甲烷化:对Ni-Ce催化剂的低温活性和反应性能的影响

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Ni–Ce three-dimensional material with macropore diameter of 146.6 ± 8.4 nm was synthesized and used as a methanation catalyst. Firstly, H 2 reduction of the catalyst was conducted in the thermal fixed bed and plasma reactor, respectively, then X-ray diffraction (XRD) and CO 2 temperature programmed desorption experiments on the two reduced samples were carried out to reveal the plasma effect on the catalyst's physico-chemical properties. It was found that plasma reduction created more abundant basic sites for CO 2 adsorption, in particular the medium basic sites were even doubled compared with the thermal-reduced catalysts. The plasma-reduced catalyst exhibited excellent low-temperature activity, ca 50–60°C lower than the thermal catalyst (the maximum CO 2 conversion point). Based on the optimum reduced catalyst, plasma effect in the reactor level was further investigated under high gas hour space velocity of approximately 50 000 h ?1 . The plasma reactor showed higher CO 2 conversion capacity and efficiency than the thermal reactor.
机译:合成了具有大孔直径146.6±8.4 nm的Ni-Ce三维材料,并将其用作甲烷化催化剂。首先在热固定床和等离子体反应器上分别进行了H 2还原,然后对两种还原样品进行了X射线衍射(XRD)和CO 2程序升温脱附实验,揭示了等离子体对催化剂的影响。催化剂的理化性质。发现等离子体还原产生了更丰富的CO 2吸附碱性位点,特别是与热还原催化剂相比,中等碱性位点甚至增加了一倍。等离子体还原的催化剂表现出优异的低温活性,比热催化剂(最大CO 2转化点)低约50–60°C。基于最佳的还原催化剂,在大约50,000 h?1的高气时空速下,进一步研究了反应器级的等离子体效应。等离子体反应器显示出比热反应器更高的CO 2转化能力和效率。

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