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Entwicklung und Charakterisierung eines metallischen Substrats für ...

Entwicklung und Charakterisierung eines metallischen Substrats für ...

Entwicklung und Charakterisierung eines metallischen Substrats für ...

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Literaturverzeichnis<br />

[81] Y. Gu, S. T. Oyama. Permeation properties and hydrothermal stability of silicatitania<br />

membranes supported on porous alumina substrates. Journal of Membrane<br />

Science 345, 267–275 (2009).<br />

[82] K. Yoshida, Y. Hirano, H. Fujii, T. Tsuru, M. Asaeda. Hydrothermal stability and<br />

performance of silica-zirconia membranes for hydrogen separation in hydrothermal<br />

conditions. Journal of Chemical Engineering of Japan 34, 523–530 (2001).<br />

[83] S. Battersby, S. Smart, B. Ladewig, S. Liu, M. C. Duke, V. Rudolph, J. C. Diniz<br />

da Costa. Hydrothermal stability of cobalt silica membranes in a water gas shift<br />

membrane reactor. Separation and Purification Technology 66, 299–305 (2009).<br />

[84] E. R. Geus, H. van Bekkum, W. J. W. Bakker, J. A. Moulijn. High-temperature<br />

stainless steel supported zeolite (MFI) membranes: Preparation, module construction,<br />

and permeation experiments. Microporous Materials 1, 131 – 147 (1993).<br />

[85] A. Li, W. Liang, R. Hughes. Characterisation and permeation of palladium/stainless<br />

steel composite membranes. Journal of Membrane Science 149, 259–268 (1998).<br />

[86] T. A. Peters, M. Stange, H. Klette, R. Bredesen. High pressure performance of<br />

thin Pd-23%Ag/stainless steel composite membranes in water gas shift gas mixtures;<br />

influence of dilution, mass transfer and surface effects on the hydrogen flux. Journal<br />

of Membrane Science 316, 119 – 127 (2008).<br />

[87] P. P Mardilovich, Y. She, Y. H. Ma. Defect-Free Palladium Membranes on Porous<br />

Stainless-Steel Support. AIChE Journal 44, 310–322 (1998).<br />

[88] S.-E. Nam, S.-H. Lee, K.-H. Lee. Preparation of a palladium alloy composite membrane<br />

supported in a porous stainless steel by vacuum electrodeposition. Journal of<br />

Membrane Science 153, 163–173 (1999).<br />

[89] D. Wang, J. Tong, H. Xu, Y. Matsumura. Preparation of palladium membrane over<br />

porous stainless steel tube modified with zirconium oxide. Catalysis Today 93-95,<br />

689–693 (2004).<br />

[90] J. Tong, Y. Matsumura, H. Suda, K. Haraya. Thin and dense Pd/CeO2/MPSS<br />

composite membrane for hydrogen separation and steam reforming of methane. Separation<br />

and Purification Technology 46, 1–10 (2005).<br />

[91] C. Su, T. Jin, K. Kuraoka, Y. Matsumura, T. Yazawa. Thin Palladium Film Supported<br />

on SiO2-Modified Porous Stainless for a High-Hydrogen-Flux Membrane. Industrial<br />

& Engineering Chemistry Research 44, 3053–3058 (2005).<br />

[92] J. Tong, L. Su, Y. Kashima, R. Shirai, H. Suda, Y. Matsumura. Simultaneously<br />

Depositing Pd-Ag Thin Membrane on Asymmetric Porous Stainless Steel Tube and<br />

Application To Produce Hydrogen from Steam Reforming of Methane. Industrial &<br />

Engineering Chemistry Research 45, 648–655 (2006).<br />

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