Feasibility of hydrogen production above 2500 K by direct thermal decomposition reaction in membrane reactor using solar energy
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Takashi Takeuchi | Haruhiko Ohya | Masahiko Aihara | M. Yatabe | M. Aihara | H. Ohya | Y. Negishi | Youichi Negishi | T. Takeuchi | M Yatabe
[1] E. A. Fletcher,et al. Hydrogen and oxygen from water—V. the ROC system , 1981 .
[2] Haruhiko Ohya,et al. Separation of hydrogen from thermochemical processes using zirconia-silica composite membrane , 1994 .
[3] Haruhiko Ohya,et al. Characteristics of a zirconia composite membrane fabricated by a laser firing method , 1996 .
[4] J. Baumard,et al. Production of hydrogen by direct thermal decomposition of water: Preliminary investigations , 1982 .
[5] S. Ihara. Direct thermal decomposition of water , 1979 .
[6] J. Gretz. On the potential of solar energy conversion into hydrogen and/or other fuels , 1980 .
[7] Production of hydrogen by simple impingement of a turbulent jet of steam upon a high temperature zirconia surface , 1987 .
[8] T. Nakamura,et al. Hydrogen production from water utilizing solar heat at high temperatures , 1977 .
[9] S. Ihara. Feasibility of hydrogen production by direct water splitting at high temperature , 1976 .
[10] T. N. Veziroglu,et al. Hydrogen production using solar radiation , 1976 .
[11] E. A. Fletcher,et al. Hydrogen- and Oxygen from Water , 1977, Science.
[12] Use of solar energy for direct and two-step water decomposition cycles , 1977 .
[13] Abraham Kogan. Direct solar thermal splitting of water and on site separation of the products I. Theoretical evaluation of hydrogen yield , 1997 .
[14] Abraham Kogan,et al. Direct solar thermal splitting of water and on-site separation of the products—II. Experimental feasibility study , 1998 .
[15] H. Ohashi,et al. Effect of membrane on yield of equilibrium reaction â case I: H2SâH2+1/xSx with membrane of Knudsen diffusion characteristics , 1999 .
[16] Jun Fan,et al. High flux zirconia composite membrane for hydrogen separation at elevated temperature , 2000 .