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首页> 外文期刊>Applied Catalysis, A. General: An International Journal Devoted to Catalytic Science and Its Applications >A bimodal catalytic membrane having a hydrogen-permselective silica layer on a bimodal catalytic support: Preparation and application to the steam reforming of methane
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A bimodal catalytic membrane having a hydrogen-permselective silica layer on a bimodal catalytic support: Preparation and application to the steam reforming of methane

机译:在双峰催化载体上具有氢渗透选择性二氧化硅层的双峰催化膜:甲烷的制备及其在蒸汽重整中的应用

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摘要

The steam reforming of methane for hydrogen production was experimentally investigated using catalytic membrane reactors, Consisting of a microporous silica top layer, for the selective permeation of hydrogen, and an alpha-alumina support layer, for catalytic reaction of the steam reforming of methane. An alpha-alumina support layer with a bimodal structure, which was proposed for the enhanced dispersion of Ni catalysts, was prepared by impregnating gamma-Al2O3 inside alpha-Al2O3 microfiltration membranes (1 mu m in pore diameter), and then immersing the membranes in a nickel nitrate solution, resulting in a bimodal catalytic support. The bimodal catalytic support showed a large conversion of methane at a high space velocity compared with a conventional catalytic membrane with a monomodal structure. The enhanced activity of Ni-catalysts in bimodal catalytic supports was confirmed by hydrogen adsorption measurements. A bimodal catalytic membrane, i.e. a silica membrane coated on a bimodal catalytic support, showing an approximate selectivity of hydrogen over nitrogen of 100 with a hydrogen permeance of (0.5-1) x 10(-5) m(3) m(-2) s(-1) kPa(-1) was examined for the steam reforming of methane. The reaction was carried out at 500 degrees C, and the feed and permeate pressures were maintained at 100 and 20 kPa, respectively. Methane conversion could be increased up to approximately 0.7 beyond the equilibrium conversion of 0.44 by extracting hydrogen from the reaction stream to the permeate stream. (c) 2006 Elsevier B.V. All rights reserved.
机译:使用催化膜反应器对甲烷的蒸汽重整以生产氢气进行了实验研究,该催化膜反应器由用于选择性渗透氢的微孔二氧化硅顶层和用于甲烷的蒸汽重整的催化反应的α-氧化铝载体层组成。通过将γ-Al2O3浸渍在α-Al2O3微滤膜(孔径为1微米)中,然后将膜浸入其中,可以制备出具有双峰结构的α-氧化铝载体层,该载体用于增强Ni催化剂的分散性。硝酸镍溶液,生成双峰催化载体。与具有单峰结构的常规催化膜相比,双峰催化载体在高空速下显示出较大的甲烷转化率。通过氢吸附测量证实了双峰催化载体中Ni催化剂的活性增强。双峰催化膜,即涂在双峰催化载体上的二氧化硅膜,显示氢对氮的选择性接近100,氢渗透率为(0.5-1)x 10(-5)m(3)m(-2) )s(-1)kPa(-1)用于甲烷的蒸汽重整。反应在500℃下进行,进料和渗透压分别保持在100和20kPa。通过将氢气从反应物流中提取到渗透物流中,甲烷转化率可以增加到比平衡转化率0.44高出约0.7。 (c)2006 Elsevier B.V.保留所有权利。

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