首页> 外文期刊>International journal of hydrogen energy >Coating the porous A1_2O_3 substrate with a natural mineral of Nontronite-15A for fabrication of hydrogen-permeable palladium membranes
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Coating the porous A1_2O_3 substrate with a natural mineral of Nontronite-15A for fabrication of hydrogen-permeable palladium membranes

机译:在多孔A1_2O_3基板上涂上Nontronite-15A天然矿物,以制造透氢钯膜

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Substrate surface modification is a key pretreatment during fabrication of composite palladium membranes for hydrogen purification in hydrogen energy applications. The suspension of a natural porous material, Nontronite-15A mineral, without any organic additives was employed in dip-coating of the porous Al2O3 substrate. The Nontronite-15A mineral was characterized by SEM, XRD, TG-DSC and granulometry analysis. The surface and cross-section of the coated porous Al2O3 tubes were observed by SEM, and their pore size distribution and nitrogen flux were also measured. Palladium membranes were fabricated over the coated Al2O3 tubes by a suction-assisted electroless plating. The optimal loading amount of the Nontronite-15A mineral is just to fill in and level up the surface cavities of the Al2O3 substrate rather than to form an extra continuous layer. A thin and selective palladium membrane was successfully obtained, and its permeation performances were tested. The kinetic analyses on the hydrogen flux indicate that the hydrogen permeation behavior exhibits typical characteristics for most of the palladium membranes. During the stability test at 450 degrees C for 192 h, no membrane damage was detected, and the hydrogen flux increased slightly. (C) 2019 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:在氢能应用中用于氢纯化的复合钯膜的制造过程中,基底表面改性是关键的预处理。天然多孔材料,Nontronite-15A矿物的悬浮液,不添加任何有机添加剂,用于多孔Al2O3基材的浸涂。通过SEM,XRD,TG-DSC和粒度分析对Nontronite-15A矿物进行了表征。用SEM观察涂覆的多孔Al 2 O 3的管的表面和横截面,并测量其孔径分布和氮通量。通过抽吸辅助化学镀在涂覆的Al2O3管上制造钯膜。 Nontronite-15A矿物的最佳负载量只是为了填充和拉平Al2O3基材的表面空腔,而不是形成额外的连续层。成功地获得了薄而有选择性的钯膜,并测试了其渗透性能。氢通量的动力学分析表明,氢渗透行为表现出大多数钯膜的典型特征。在450摄氏度下进行192小时的稳定性测试期间,未发现膜损坏,并且氢通量略有增加。 (C)2019氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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