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首页> 外文期刊>International journal of hydrogen energy >Effect of microstructure on the hydrogenation behavior of AZ61 magnesium alloy with silicon carbide and nickel additives, processed by equal channel angular pressing
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Effect of microstructure on the hydrogenation behavior of AZ61 magnesium alloy with silicon carbide and nickel additives, processed by equal channel angular pressing

机译:微观结构对碳化硅和镍添加剂的AZ61镁合金氢化行为的影响,通过等通道角压加工

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摘要

In this study, AZ61 alloy processed by equal channel angular pressing (ECAP) method, is presented. This research seeks to find out the relationship that exists between the microstructure of the AZ61-magnesium alloy doped with SiC and Ni and processed by ECAP in terms of hydrogen storage properties. The results indicate that grain size reduces nearly 10 times after 4 passes of ECAP. Homogeneous distribution of the SiC in the metal matrix composite (MMC) and dynamic recrystallization are also observed. There is a gradual reduction in the grain size when the number of ECAP passes are increased. This microstructural refinement induced by ECAP improves the storage capacity and reaction kinetics of the alloy. Besides, the addition of Ni catalyst achieves faster absorption and desorption kinetics. However, it does not change its capacity. Ni reacts with Mg to form an intermetallic, which is hydrogen-absorbing, which in turn, catalyzes the reaction. Apart from introducing defects, the ECAP process also produces Mg/Al intermetallic, which acts catalytically. It is shown that SiC-doped AZ61-magnesium alloy can absorb and desorb 6.8 wt% H-2 at 648 K and 50 atm. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:在该研究中,提出了通过等沟道角压(ECAP)方法处理的AZ61合金。该研究旨在了解掺杂有SiC和Ni的AZ61-镁合金的微观结构之间存在的关系,并在储氢性能方面由ECAP加工。结果表明,晶粒尺寸在4次通过后近10次减少了近10倍。还观察到金属基质复合材料(MMC)中SiC的均匀分布和动态重结晶。当ECAP通行证的数量增加时,晶粒尺寸逐渐减小。 ECAP诱导的这种微观结构细化改善了合金的储存能力和反应动力学。此外,添加Ni催化剂达到更快的吸收和解吸动力学。但是,它不会改变其容量。 Ni与Mg反应形成金属间化合物,其是氢吸收的,这反过来催化反应。除了引入缺陷外,ECAP工艺还产生Mg / Al金属间金属金属,其催化起作用。结果表明,SiC掺杂的AZ61-镁合金可以在648k和50atm下吸收和解吸6.8wt%H-2。 (c)2020氢能源出版物LLC。 elsevier有限公司出版。保留所有权利。

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