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Dehydrogenation characteristic of Zr_(1-x)M_xCo (M=Hf,Sc) alloy 被引量:3

Dehydrogenation characteristic of Zr_(1-x)M_xCo (M=Hf,Sc) alloy
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摘要 The intermetallic compound Zr1-xHfxCo and Zr1-xScxCo(x=0,0.1,0.2,0.3) were prepared and their suitability for hydrogen storage was investigated. The alloys show single cubic phase identical with ZrCo by X-ray diffraction. Pressure-composition-temperature(PCT) measurement results show that the equilibrium dehydrogenation pressure of Zr1-xHfxCo alloy increases obviously with increasing Hf content while it changes little with increasing Sc content for Zr1-xScxCo alloy. The dehydrogenation temperatures for supplying 100 kPa hydrogen are about 673,627,and 650 K for ZrCo,Zr0.7Hf0.3Co and Zr0.7Sc0.3Co alloy,respectively. Thermodynamics calculation results indicate that dehydrogenation -H for Zr1-xHfxCo alloy decreases with increasing Hf content but increases with increasing Sc content for Zr1-xScxCo alloy,which are coincident with their dehydrogenation property. The maximal hydrogen storage capacity of both Zr1-xHfxCo and Zr1-xScxCo alloy at room temperature are high enough. The intermetallic compound Zr1-xHfxCo and Zr1-xScxCo (x=0, 0.1, 0.2, 0.3) were prepared and their suitability for hydrogen storage was investigated. The alloys show single cubic phase identical with ZrCo by X-ray diffraction. Pressure- composition-temperature(PCT) measurement results show that the equilibrium dehydrogenation pressure of Zr1-xHfxCo alloy increases obviously with increasing Hf content while it changes little with increasing Sc content for Zr1-xScxCo alloy. The dehydrogenation temperatures for supplying 100 kPa hydrogen are about 673,627, and 650 K for ZrCo, Zr0.7Hf0.3Co and Zr0,7Sc0.3Co alloy, respectively. Thermodynamics calculation results indicate that dehydrogenation AH for Zr1-xHfxCo alloy decreases with increasing Hf content but increases with increasing Sc content for Zr1-xScxCo alloy, which are coincident with their dehydrogenation property. The maximal hydrogen storage capacity of both Zr1-xHfxCo and Zr1-xScxCo alloy at room temperature are high enough.
出处 《中国有色金属学会会刊:英文版》 CSCD 2007年第A02期949-953,共5页 Transactions of Nonferrous Metals Society of China
关键词 储氢合金 脱氢作用 金属间化合物 锆合金 hydrogen storage alloy ZrCo Zr1-xHfxCo Zr1-xScxCo, intermetallic compound
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  • 3柳东明,韦涛,李李泉.镁基储氢合金氢化物Mg_2NiH_4的制备及性能研究[J].材料科学与工艺,2007,15(3):362-365. 被引量:2
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