Non-Pd BCC alloy membranes for industrial hydrogen separation

被引:228
|
作者
Dolan, M. D. [1 ]
机构
[1] CSIRO, Div Energy Technol, Pullenvale, Qld 4069, Australia
关键词
Hydrogen; Membrane; Alloy; Vanadium; Niobium; Body centred cubic; QUANTUM-MECHANICAL CALCULATIONS; GLASS-FORMING ABILITY; PERMEATION CHARACTERISTICS; PALLADIUM-SILVER; METAL MEMBRANES; VANADIUM ALLOYS; NIOBIUM-HYDROGEN; AMORPHOUS ALLOY; THERMODYNAMIC PROPERTIES; DIFFUSION-COEFFICIENT;
D O I
10.1016/j.memsci.2010.06.068
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
With low cost raw materials and high hydrogen permeabilities, body-centred-cubic (BCC) alloys comprising Group IV and V metals are of considerable interest for high-temperature hydrogen separation applications. Until recently, their tendency to embrittle severely has tempered the enthusiasm for these materials in the membrane research community, but efforts to develop BCC alloy membranes suitable for industrial H-2 separation processes have Increased recently and significant gains have been made in overcoming the inherent instability of these materials in hydrogen Compared to competing face-centred-cubic alloys. BCC alloys have much higher solubilities that provide them with a high driving force for hydrogen permeation. This high solubility, however, exacerbates the problem of hydrogen embrittlement. Given their low cost components and high permeabilities, the development of membranes with sufficient durability and embrittlement resistance remains the greatest barrier to the widespread uptake of BCC membrane technology. This review discusses the key scientific issues pertaining to the development of BCC alloy membranes in high-temperature industrial processes, including hydrogen solubility and diffusivity, embrittlement and manufacturing Compositional modification to tailor the hydrogen solubility, maximize the rate of hydrogen diffusion and inhibit the onset of embrittlement is discussed (C) 2010 Elsevier B V All rights reserved
引用
收藏
页码:12 / 28
页数:17
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