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Change in Hydrogen-Storage Performance of Transition Metals and NaAlH4-Added MgH2 with Thermal and Hydriding-Dehydriding Cycling

机译:过渡金属和NaAlH4加的MgH2在热和加氢-脱水循环中储氢性能的变化

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A sample with a composition of 86 wt% MgH2-10 wt% Ni-2 wt% NaAlH4-2 wt% Ti (designated MgH2-10Ni-2NaAlH(4)-2Ti) was prepared by reactive mechanical grinding. The sample was subjected to thermal cycling (between room temperature and 623 K) as well as cycling between hydriding (at 593 K under 12 bar H-2) and dehydriding (at 623 K in vacuum). At n=1, MgH2-10Ni-2NaAlH(4)-2Ti absorbed 3.10 wt% H for 5 min, 4.14 wt% H for 10 mm, 4.35 wt% H for 15 min, and 4.45 wt% H for 60 mm at 593 K under 12 bar H-2. From the beginning to about 10 mm, the hydriding rate of the sample increased roughly as the number of cycles, n, increased. The quantity of hydrogen absorbed for 60 min, Ha (60 min), decreased on the whole as the number of cycles increased from 1 to 15. At n=15, MgH2-10Ni-2NaAlH(4)-2Ti absorbed 3.31 wt% H for 5 mm, 3.60 wt% H for 10 mm, 3.66 wt% H for 15 mm, and 3.82 wt% H for 60 mm. The quantity of hydrogen desorbed for 30 min, H-d (30 min), increased slowly as the number of cycles increased from n=2 to n=15. After hydricling-dehydriding cycling, ss-MgH2, Mg, Mg2Ni, TiH1.924, NiAl, and MgO were observed in the samples. NiAl was formed from the reaction of Ni with Al which was formed by the decomposition of NaAlH4.
机译:通过反应性机械研磨制备具有86重量%的MgH 2-10重量%的Ni-2重量%的NaAlH 4-2重量%的Ti(指定为MgH 2-10Ni-2NaAlH(4)-2Ti)的样品。对样品进行热循环(在室温至623 K之间),以及在氢化(在12 bar H-2下于593 K下)和脱水(在623 K在真空下)之间进行循环。在n = 1时,MgH2-10Ni-2NaAlH(4)-2Ti在593处吸收3.10 wt%H,5分钟吸收4.14 wt%H,10 mm,4.35 wt%H,15分钟和4.45 wt%H吸收60 mm。 K在12 bar H-2以下。从开始到大约10毫米,样品的氢化率随着循环数n的增加而大致增加。随着周期数从1增加到15,整个60分钟的氢吸收量Ha(60分钟)减少。在n = 15时,MgH2-10Ni-2NaAlH(4)-2Ti吸收的氢为3.31 wt%对于5mm,H为3.60wt%H为10mm,3.66wt%H为15mm,和3.82wt%H为60mm。 H-d(30分钟)解吸30分钟的氢气量随着循环数从n = 2增加到n = 15而缓慢增加。水合-脱水循环后,在样品中观察到ss-MgH2,Mg,Mg2Ni,TiH1.924,NiAl和MgO。 NiAl是由Ni与Al的反应形成的,而Al是通过NaAlH4的分解而形成的。

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