Composition and operation of hydrogen-selective amorphous alloy membranes

被引:131
作者
Dolan, M. D. [1 ]
Dave, N. C. [1 ]
Ilyushechkin, A. Y. [1 ]
Morpeth, L. D. [1 ]
McLennan, K. G. [1 ]
机构
[1] CSIRO, Div Energy Technol, Kenmore, Qld 4069, Australia
关键词
amorphous alloy; metal membrane; thermal stability; hydrogen separation; syngas; coal;
D O I
10.1016/j.memsci.2006.09.014
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Catalytic membrane reactors, composed of a suitable hydrogen-selective membrane and water-gas-shift catalyst, can be used to produce a pure hydrogen stream from coal-derived syngas with high yield. The membrane must combine chemical and physical stability in the syngas environment at elevated temperatures, with rapid hydrogen permeation and low cost. Amorphous alloy membranes based on a combination of early transition metals and late transition metals are an alternative to current palladium alloy membranes, offering hydrogen permeance and selectivity that is comparable to palladium alloys, plus the potential advantages of high resistance to crystalline hydride formation and lower cost. Amorphous alloy membranes have been reported that are capable of sustained operation at 400 degrees C, which makes them suitable for use in a CMR based on a metal-oxide catalyst. The development of membranes capable of sustained operation at 700 C, and thus suitable for use with metallic catalysts, remains a significant technological hurdle, due to the tendency of amorphous alloys to crystallize after prolonged use at elevated temperatures, even below the measurable crystallization or glass transition temperatures. Here we provide a critical review of amorphous alloys, their manufacture and properties, and compare them with other types of membrane reactors. Economic and operational considerations are discussed in detail, which allows informed selection of amorphous alloy compositions for high-temperature separation of coal-derived syngas. (c) 2006 Elsevier B.V. All rights reserved.
引用
收藏
页码:30 / 55
页数:26
相关论文
共 281 条
[1]   A regenerable copper-based sorbent for H2S removal from coal gases [J].
Abbasian, J ;
Slimane, RB .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 1998, 37 (07) :2775-2782
[2]   Improvement of hydrogen absorption rate of Pd by ion irradiation [J].
Abe, H ;
Uchida, H ;
Azuma, Y ;
Uedono, A ;
Chen, ZQ ;
Itoh, H .
NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION B-BEAM INTERACTIONS WITH MATERIALS AND ATOMS, 2003, 206 :224-227
[3]   ON TEMPERATURE DEPENDENCE OF COOPERATIVE RELAXATION PROPERTIES IN GLASS-FORMING LIQUIDS [J].
ADAM, G ;
GIBBS, JH .
JOURNAL OF CHEMICAL PHYSICS, 1965, 43 (01) :139-&
[4]  
[Anonymous], 1988, PHYS SURFACES
[5]   SITE ENERGY-DISTRIBUTIONS OF HYDROGEN-ATOMS IN NI-ZR ALLOY GLASSES STUDIED BY THERMAL-DESORPTION SPECTROMETRY [J].
ARAKI, T ;
ABE, T ;
TANAKA, K .
MATERIALS TRANSACTIONS JIM, 1989, 30 (10) :748-755
[6]  
BALE CW, 2004, FACTSAGE V5 3
[7]   ON THE D-BOND IN SCH [J].
BAUSCHLICHER, CW ;
WALCH, SP .
JOURNAL OF CHEMICAL PHYSICS, 1982, 76 (09) :4560-4563
[8]   AN INVESTIGATION OF VIBRATIONALLY ASSISTED ADSORPTION - THE CASES H-2/CU(110) AND H-2/AL(110) [J].
BERGER, HF ;
RENDULIC, KD .
SURFACE SCIENCE, 1991, 253 (1-3) :325-333
[9]   ADSORPTION OF HYDROGEN ON TUNGSTEN - A PRECURSOR PATH PLUS DIRECT ADSORPTION [J].
BERGER, HF ;
RESCH, C ;
GROSSLINGER, E ;
EILMSTEINER, G ;
WINKLER, A ;
RENDULIC, KD .
SURFACE SCIENCE, 1992, 275 (1-2) :L627-L630
[10]   GORSKY RELAXATION AND HYDROGEN DIFFUSION IN THE METALLIC-GLASS PD80SI20 [J].
BERRY, BS ;
PRITCHET, WC .
PHYSICAL REVIEW B, 1981, 24 (04) :2299-2302