By W. Novis Smith and Joseph G. Santangelo (Eds.)
content material: The economics of hydrogen construction / D.P. Gregory, C.L. Tsaros, J.L. Arora, and P. Nevrekar --
DOE application on hydrogen power platforms / Beverly J. Berger and James H. Swisher --
Hydrogen expertise : an summary / F.J. Salzano, A. Mezzina, M. Beller, G. Strickland, and S. Srinivasan --
Hydrogen for ammonia construction and the economics of trade feedstocks / T.A. Czuppon and L.J. Buividas --
Hydrogen in oil refinery operations / Hampton G. Corneil and Fred J. Heinzelmann --
Hydrogen creation from partial oxidation of residual gas oil / C.L. Reed and C.J. Kuhre --
artificial gasoline creation for methanol : present and destiny traits / J.A. Camps and D.M. Turnbull --
Technical and fiscal advances in steam reforming of hydrocarbons / R.G. Minet and O. Olesen --
Coal gasification for hydrogen production / W.G. Schlinger, J. Falbe, and R. Specks --
construction and alertness of electrolytic hydrogen : current and destiny / L.J. Nuttall --
secure dealing with of hydrogen / Clyde McKinley --
construction of hydrogen for the economic industry : present and destiny developments / C.R. Baker --
Hydrogen distribution defense / Manus McHugh, III --
Hydrogen necessities in shale oil and artificial crude from coal / J.L. Skinner --
Rechargeable steel hydrides : a brand new idea in hydrogen garage, processing, and dealing with / G.D. Sandrock and E. Snape --
ultimate the loop for the sulfur-iodine cycle / G. Caprioglio, okay. McCorkle, and R. Sharp --
Hydrogen from gasoline desulfurization / M.E.D. Raymont --
Thermochemical decomposition of H₂S with steel sulfides or metals / Hiromichi Kiuchi, Tetsuo Iwasaki, Isao Nakamura, and Tokiaki Tanaka --
The sulfur-cycle hydrogen construction approach / G.H. Farbman and G.H. Parker.
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Extra info for Hydrogen: Production and Marketing
In these discussions, they have indicated that a 30 man-year effort is in progress in Germany. Both Italy and Switzerland have work in progress on advanced alkaline electrolyzers. The DeNora Corporation and Brown Boveri of Italy and Switzerland, respectively, have built some of the largest industrial electrolysis plants and are each supporting in-house R&D efforts, as well as working on contracts from their respective governments. The French have a major program in place on development of advanced electrolytic processes for hydrogen production.
176-179. ; ACS Symposium Series; American Chemical Society: Washington, DC, 1980. 3. SALZANO et al. Hydrogen Technology 39 of stationary and mobile energy conversion/storage systems applications. S. 8 MW fuel cell power generating unit in downtown New York City. ch003 lead to commercialization of the first generation 26 MW unit. The first generation phosphoric acid fuel cell will use liquid fuels such as naphtha and produce hydrogen via external reformers. It is estimated that in excess of 300,000 gallons of naphtha will be used for a week's operation of a 26 MW unit.
ACS Symposium Series; American Chemical Society: Washington, DC, 1980. 1. Gregory et al. 06 oL_J 1 1 1 1 1 1 L 0 2 4 6 8 10 12 14 16 RAW MATERIAL COST, $/l06 Btu Figure 6. ; ACS Symposium Series; American Chemical Society: Washington, DC, 1980. 20 HYDROGEN: PRODUCTION AND MARKETING estimates of 1979 values. Again, the electrolysis plant costs do not include costs associated with electric power generation. Figure 8 is based upon essentially the same data as Figure 7 but plotted as a sensitivity to percentage change in estimated facilities cost.