Advances in Solid Oxide Fuel Cells and Electronic Ceramics by Mihails Kusnezoff, Narottam P. Bansal, Kiyoshi Shimamura PDF

By Mihails Kusnezoff, Narottam P. Bansal, Kiyoshi Shimamura

ISBN-10: 1119320208

ISBN-13: 9781119320203

ISBN-10: 1119320224

ISBN-13: 9781119320227

This factor includes thirteen papers from the yankee Ceramic Society’s fortieth overseas convention on complicated Ceramics and Composites, held in Daytona seashore, Florida, January 24-29, 2016 provided in Symposium three - thirteenth foreign Symposium on sturdy Oxide gasoline Cells: fabrics, technology, and know-how and Symposium 14 – unmarried Crystalline fabrics for electric, Optical, and scientific Applications.

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Additional resources for Advances in Solid Oxide Fuel Cells and Electronic Ceramics II: Ceramic Engineering and Science Proceedings Volume 37, Issue 3

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153[4], A765-A773 (2006). 5 Pyo, S. , Lee, S. , Lim, T. , Song, R. , Shin, D. , Hyun, S. H. and Yoo, Y. 98MnO3 coating on Crofer22APU uased as metallic interconnects for solid oxide fuel cells, Int. J. Hydrog. Energy, 36, 1868-1881 (2011). , Xia, G. and Stevenson, J. , 8(3) A167-170, (2005). , Xia, G. , Maupin, G. D. and Stevenson, J. , Conductive protection layers on xidation resistant alloys for SOFC interconnect applications, Surf. Coat. , 201, 4476-4483, (2006). , Knibbe, R. and Hendriksen, P.

And White et al about plasma sprayed LSM coating show that the perovskite LSM coating can be decomposed to La2O3 and La2SrOx due to the use of hydrogen as a component of plasma forming gas 12,13. Since the formation of secondary phases such as La2O3 and La2SrOx can dramatically decrease the electrical conductivity of LSM and further results in a large interfacial resistance of LSM, the thermal stability of the LSM coatings coated by APS process need to be considered carefully. Therefore, to avoid the LSM decomposition in the high temperature reducing environment, hydrogen gas was excluded from the plasma forming gas to prevent the decomposition phenomenon of perovskite LSM in this study.

Gadolinia doped-ceria (GDC) is actually one of the preferred electrolyte materials for IT-SOFC because of its higher ionic conductivity at lower temperature6. The main issue associated with the use of GDC is its relatively poor densification behavior, which requires high temperatures for sintering, in some cases exceeding 1500°C7. The principal approach proposed to reduce the sintering temperature is to use sintering aids, typically a transition metal oxide (TMO), which increases the sintering rate, although its effect on conductivity is variable8,9,10,11.

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Advances in Solid Oxide Fuel Cells and Electronic Ceramics II: Ceramic Engineering and Science Proceedings Volume 37, Issue 3 by Mihails Kusnezoff, Narottam P. Bansal, Kiyoshi Shimamura


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