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II. İLERİ TEKNOLOJİLER ÇALIŞTAYI (İTÇ 2011) - Bilgesam

II. İLERİ TEKNOLOJİLER ÇALIŞTAYI (İTÇ 2011) - Bilgesam

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88<br />

7. Haklıdır, M., Tut, F.S., Kapkın, Ş., “Possibilities of Production and Storage of Hydrogen<br />

in Black Sea”, Proceedings World Hydrogen Energy Congress (WHEC), Lyon, 13-16<br />

June 2006<br />

8. Mbah, J., Srinivasan, S., Krakow, B., Wolan, J., Goswami, Y., Stefanakos, E., Appathurai,N.,<br />

“Effect of RuO2-CoS2 anode nanostructured on performance of H2S electrolytic<br />

splitting system”, International Journal of Hydrogen Energy, 35 (2010) 10094-<br />

10101<br />

9. L. Pauling, General Chemistry, W. H. Freeman and Co., San Francisco, 1970.<br />

10. Petrov K, Srinivasan S, 1996, “Low temperature removal of hydrogen sulfide from sour<br />

gas and its utilization for hydrogen and sulfur production”, International Journal Hydrogen<br />

Energy, 21: 163-169.<br />

11. Mbah, J., Krakow, B., Stefanakos, E., Wolan, J.T. “A study on H2S permeability of<br />

CsHSO4 membranes”, International Journal of Hydrogen Energy, Volume 34, Issue 5,<br />

March 2009, Pages 2460-2466<br />

12. Mbah, J., Srinivasan, S., Krakow, B., Wolan, Goswami, Y., Stefanakos, E., Appathurai,<br />

N., “Effect of RuO2–CoS2 anode nanostructured on performance of H2S electrolytic<br />

splitting system”, International Journal of Hydrogen Energy, Volume 35, Issue 19, October<br />

2010, Pages 10094-10101<br />

13. Kalina, D. W.; Maas, E. T. Indirect hydrogen sulfide conversion; I. An acidic electrochemical<br />

process. Int. J. Hydrogen Energy 1985, 10 (3), 157–162.<br />

14. Kalina, D. W.; Maas, E. T. Indirect hydrogen sulfide conversion; <strong>II</strong>. An basic electrochemical<br />

process. Int. J. Hydrogen Energy 1985, 10 (3), 163–167.<br />

15. Olson, D. C. Method of removing hydrogen sulfide from gases utilizing a polyvalent<br />

metal chelate solution and electrolytically regenerating the solution. U.S. Patent<br />

4,443,423, 1984.<br />

16. Mizuta, S.; Kondo, W.; Fujii, K. Hydrogen production from hydrogen sulfide by the Fe-<br />

Cl hybrid process. Ind. Eng. Chem. Res. 1991, 30 (7), 1601–1608.<br />

17. Huang,H., Yu,Y., Chung, K.H., Energy Fuels 23 (2009) 4420–4425<br />

18. Anne Hauch, Sune Dalgaard Ebbesen, Søren Højgaard Jensen and Mogens Mogensen,<br />

“Highly efficient high temperature electrolysis”, J. Mater. Chem., 2008, 18, 2331-2340<br />

19. Yixin Lu, Laura Schaefer, “A solid oxide fuel cell system fed with hydrogen sulfide and<br />

natural gas, Journal of Power Sources 135 (2004) 184–191<br />

20. M. Liu, P. He, J.L. Luo, A.R. Sanger, K.T. Chuang, “Performance of a solid oxide fuel<br />

cell utilizing hydrogen sulfide as fuel”, Journal of Power Sources 94 (2001), 20-25.

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