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Analysis of H_2S Tolerance of Pd-Cu Alloy Hydrogen Separation Membranes

Pd-Cu合金氢分离膜耐H_2S性能分析(英文)
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摘要 The presence of a limited amount of H2S in H2-rich feed adversely affects the Pd-Cu membrane permeation performance due to the sulphidization of the membrane surface. A theoretical model was proposed to predict the S-tolerant performance of the Pd-Cu membranes in presence of H2S under the industrial water-gas-shift(WGS) reaction conditions. The ideas of surface coverage and competitive adsorption thermodynamics of H2S and H2 on Pd-Cu surface were introduced in the model. The surface sulphidization of the Pd-Cu membranes mainly depended on the pressure ratio of H2S to H2, temperature and S-adsorbed surface coverage, i.e., the occurrence of sulphidization on the surface was not directly related with the bulk compositions and structures [body centered cubic and face centered cubic(bcc or fcc)] of Pd-Cu alloy membranes because of the surface segregation phenomena. The resulting equilibrium equations for the H2S adsorption/sulphidization reactions were solved to calculate the pressure ratio of H2S to H2 over a wide range of temperatures. A validation of the model was performed through a comparison between lots of literature data and the model calculations over a rather broad range of operating conditions. An extremely good agreement was obtained in the different cases, and thus, the model can serve to guide the development of S-resistant Pd alloy membrane materials for hydrogen separation. The presence of a limited amount of H2S in H2-rich feed adversely affects the Pd-Cu membrane per-meation performance due to the sulphidization of the membrane surface. A theoretical model was proposed to pre-dict the S-tolerant performance of the Pd-Cu membranes in presence of H2S under the industrial water-gas-shift (WGS) reaction conditions. The ideas of surface coverage and competitive adsorption thermodynamics of H2S and H2 on Pd-Cu surface were introduced in the model. The surface sulphidization of the Pd-Cu membranes mainly de-pended on the pressure ratio of H2S to H2, temperature and S-adsorbed surface coverage, i.e., the occurrence of sulphidization on the surface was not directly related with the bulk compositions and structures [body centered cu-bic and face centered cubic (bcc or fcc)] of Pd-Cu alloy membranes because of the surface segregation phenomena. The resulting equilibrium equations for the H2S adsorption/sulphidization reactions were solved to calculate the pressure ratio of H2S to H2 over a wide range of temperatures. A validation of the model was performed through a comparison between lots of literature data and the model calculations over a rather broad range of operating condi-tions. An extremely good agreement was obtained in the different cases, and thus, the model can serve to guide the development of S-resistant Pd alloy membrane materials for hydrogen separation.
作者 高会元 王岭
出处 《Chinese Journal of Chemical Engineering》 SCIE EI CAS CSCD 2014年第5期503-508,共6页 中国化学工程学报(英文版)
基金 Supported by the National Natural Science Foundation of China(50972038) the National Natural Science Foundation of Hebei Province(B2009000739,B2014209258) Science and Technology Support Program of Hebei Province(09215142D)
关键词 surtace coverage Pd-Cu alloy membranes H2S tolerance theoretical model hydrogen separation 硫化氢 铜合金 分离膜 公差分析 吸附热力学 表面覆盖率 反应条件
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  • 1Paglieri, S.N., Way, J.D., "Innovations in palladium membrane research", Sep. Purif. Methods, 31(1), 1-169 (2002).
  • 2Uerniya, S., "State-Of-The-Art of supported metal membranes for gas separation", Sep. Purif. Methods, 28(1), 51-85(1999).
  • 3Lin, Y.S., “Microporous and dense inorganic membranes: current status and prospective”, Sep. Purif. Technol., 25(1), 39-55(2001).
  • 4Uerniya, S., Kude, Y., Sugino, K., Sato, N., Matsuda, T., Kikuchi, E., "A palladium/porous-glass composite membrane for hydrogen separation", Chem. Len., 1687-1690(1988).
  • 5Uerniya, S., Matsuda, T., Kikuchi, E., "Hydrogen permeable palladium-silver alloy membrane supported on porous ceramics", J. Membr. Sci., 56, 315-325(1991).
  • 6Mardilovich, EE, She, Y., Ma, Y.H., "Defect-free palladium membranes on porous stainless-steel support", AIChE J, 44(2), 310-322(1998).
  • 7Gao, H.Y., Lin, J.Y.S., Li, Y.D., Zhang, B.Q., "Electroless plating synthesis, characterization and permeation properties of Pd-Cu membranes supported on ZrO2 modified porous stainless steel", J. Membr. Sci., 265(112), 142-152(2005).
  • 8Yeung, K.L., Christiansen, S.C., Varma, A., “Palladium composite membranes by electroless plating technique: Relationships between plating kinetics, film microstructure and membrane performance”, J. Membr. Sci., 56, 107-122(1999).
  • 9Wang, D., Tong, J.H., Xu, H.Y., Matsumura, Y., "Preparation of palladium membrane over porous stainless steel tube modified with zirconium oxide", Catal. Today, 93-95, 689-693 (2004).
  • 10Ma, Y.H., Mardilovich, EE, She, Y., "Hydrogen gas-extraction module and method of fabrication", USP, 6152987 (2000).

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