logo

Electrolysis of CO2 and H2O

PDF Publication Title:

Electrolysis of CO2 and H2O ( electrolysis-co2-and-h2o )

Previous Page View | Next Page View | Return to Search List

Text from PDF Page: 108

Chapter 3. Sustainable Hydrocarbon Fuels by Recycling CO2 with Renewable/Nuclear Energy 87 84. Zhang CL, Li S, Wang LJ, Wu TH, and Peng SY, Studies on the decomposition of carbon dioxide into carbon with oxygen-deficient magnetite I. Preparation, characterization of magnetite, and its activity of decomposing carbon dioxide. Materials Chemistry and Physics, (2000). 62(1): p. 44-51. 85. Zhang CL, Li S, Wang LJ, Wu TH, and Peng SY, Studies on the decomposing carbon dioxide into carbon with oxygen-deficient magnetite II. The effects of properties of magnetite on activity of decomposition CO2 and mechanism of the reaction. Materials Chemistry and Physics, (2000). 62(1): p. 52-61. 86. Charvin P, Abanades S, Lemort F, and Flamant G, Hydrogen Production by Three-Step Solar Thermochemical Cycles Using Hydroxides and Metal Oxide Systems. Energy & Fuels, (2007). 21(5): p. 2919-2928. 87. Abanades S, Charvin P, Flamant G, and Neveu P, Screening of water-splitting thermochemical cycles potentially attractive for hydrogen production by concentrated solar energy. Energy, (2006). 31(14): p. 2805-2822. 88. Fletcher EA and Moen RL, Hydrogen and Oxygen from Water. Science, (1977). 197(4308): p. 1050-1056. 89. GrafD,MonnerieN,RoebM,SchmitzM,andSattlerC,Economiccomparisonofsolarhydrogengenerationby means of thermochemical cycles and electrolysis. International Journal of Hydrogen Energy, (2008). 33(17): p. 4511-4519. 90. Bailleux C, Damien A, and Montet A, Alkaline electrolysis of water-EGF activity in electrochemical engineering from 1975 to 1982. International Journal of Hydrogen Energy, (1983). 8(7): p. 529-538. 91. Abe I, Fujimaki T, and Matsubara M, Hydrogen production by high temperature, high pressure water electrolysis, results of test plant operation. International Journal of Hydrogen Energy, (1984). 9(9): p. 753-758. 92. Janjua MBI and Leroy RL, Electrocatalyst performance in industrial water electrolysers. International Journal of Hydrogen Energy, (1985). 10(1): p. 11-19. 93. Divisek J, Malinowski P, Mergel J, and Schmitz H, Improved construction of an electrolytic cell for advanced alkaline water electrolysis. International Journal of Hydrogen Energy, (1985). 10(6): p. 383-388. 94. Divisek J, Malinowski P, Mergel J, and Schmitz H, Improved components for advanced alkaline water electrolysis. International Journal of Hydrogen Energy, (1988). 13(3): p. 141-150. 95. Ivy J, Summary of Electrolytic Hydrogen Production: Milestone Completion Report. (2004), National Renewable Energy Laboratory: Golden, Colorado. MP-560-35948. 28. 96. Oi T and Wada K, Feasibility study on hydrogen refueling infrastructure for fuel cell vehicles using the off-peak power in Japan. International Journal of Hydrogen Energy, (2004). 29(4): p. 347-354. 97. Gutiérrez-Martín F, García-De María JM, Baïri A, and Laraqi N, Management strategies for surplus electricity loads using electrolytic hydrogen. International Journal of Hydrogen Energy, (2009). 34(20): p. 8468-8475. 98. Holladay JD, Hu J, King DL, and Wang Y, An overview of hydrogen production technologies. Catalysis Today, (2009). 139(4): p. 244-260. 99. Isenberg AO, Energy-Conversion Via Solid Oxide Electrolyte Electrochemical-Cells at High-Temperatures. Solid State Ionics, (1981). 3-4(AUG): p. 431-437. 100. Hauch A, Ebbesen SD, Jensen SH, and Mogensen M, Highly efficient high temperature electrolysis. Journal of Materials Chemistry, (2008). 18(20): p. 2331-2340. 101. Cable TL, Setlock JA, Farmer SC, and Eckel AJ, Regenerative Performance of the NASA Symmetrical Solid Oxide Fuel Cell Design. International Journal of Applied Ceramic Technology, In Press. 102. Gandía LM, Oroz R, Ursúa A, Sanchis P, and Diéguez PM, Renewable Hydrogen Production: Performance of an Alkaline Water Electrolyzer Working under Emulated Wind Conditions. Energy & Fuels, (2007). 21(3): p. 1699- 1706. 103. Swalla DR, Feasibility Study of Hydrogen Production from Existing Nuclear Power Plants Using Alkaline Electrolysis - Final Technical Report October 1, 2006 – October 30, 2008. (2008). DOE/ID/14789. 104. Jensen JO, Bandur V, Bjerrum NJ, Højgaard Jensen S, Ebbesen SD, Mogensen M, et al., Pre-investigation of water electrolysis. (2008), available at http://130.226.56.153/rispubl/NEI/NEI-DK-5057.pdf. 195. 105. Bacon FT, Fuel cells, past, present and future. Electrochimica Acta, (1969). 14(7): p. 569-585. 106. Levene JI, Mann MK, Margolis RM, and Milbrandt A, An analysis of hydrogen production from renewable electricity sources. Solar Energy, (2007). 81(6): p. 773-780. 107. Divisek J, Mergel J, and Niessen HF, Production of hydrogen by the electrolytic decomposition of water in fused sodium hydroxide. International Journal of Hydrogen Energy, (1980). 5(2): p. 151-164. 108. Bailleux C, Advanced water alkaline electrolysis: a two-year running of a test plant. International Journal of Hydrogen Energy, (1981). 6(5): p. 461-471. 109. Divisek J, Mergel J, and Schmitz H, Improvements of water electrolysis in alkaline media at intermediate temperatures. International Journal of Hydrogen Energy, (1982). 7(9): p. 695-701.

PDF Image | Electrolysis of CO2 and H2O

electrolysis-co2-and-h2o-108

PDF Search Title:

Electrolysis of CO2 and H2O

Original File Name Searched:

co2-hso-fuels.pdf

DIY PDF Search: Google It | Yahoo | Bing

NFT (Non Fungible Token): Buy our tech, design, development or system NFT and become part of our tech NFT network... More Info

IT XR Project Redstone NFT Available for Sale: NFT for high tech turbine design with one part 3D printed counter-rotating energy turbine. Be part of the future with this NFT. Can be bought and sold but only one design NFT exists. Royalties go to the developer (Infinity) to keep enhancing design and applications... More Info

Infinity Turbine IT XR Project Redstone Design: NFT for sale... NFT for high tech turbine design with one part 3D printed counter-rotating energy turbine. Includes all rights to this turbine design, including license for Fluid Handling Block I and II for the turbine assembly and housing. The NFT includes the blueprints (cad/cam), revenue streams, and all future development of the IT XR Project Redstone... More Info

Infinity Turbine ROT Radial Outflow Turbine 24 Design and Worldwide Rights: NFT for sale... NFT for the ROT 24 energy turbine. Be part of the future with this NFT. This design can be bought and sold but only one design NFT exists. You may manufacture the unit, or get the revenues from its sale from Infinity Turbine. Royalties go to the developer (Infinity) to keep enhancing design and applications... More Info

Infinity Supercritical CO2 10 Liter Extractor Design and Worldwide Rights: The Infinity Supercritical 10L CO2 extractor is for botanical oil extraction, which is rich in terpenes and can produce shelf ready full spectrum oil. With over 5 years of development, this industry leader mature extractor machine has been sold since 2015 and is part of many profitable businesses. The process can also be used for electrowinning, e-waste recycling, and lithium battery recycling, gold mining electronic wastes, precious metals. CO2 can also be used in a reverse fuel cell with nafion to make a gas-to-liquids fuel, such as methanol, ethanol and butanol or ethylene. Supercritical CO2 has also been used for treating nafion to make it more effective catalyst. This NFT is for the purchase of worldwide rights which includes the design. More Info

NFT (Non Fungible Token): Buy our tech, design, development or system NFT and become part of our tech NFT network... More Info

Infinity Turbine Products: Special for this month, any plans are $10,000 for complete Cad/Cam blueprints. License is for one build. Try before you buy a production license. May pay by Bitcoin or other Crypto. Products Page... More Info

CONTACT TEL: 608-238-6001 Email: greg@infinityturbine.com | RSS | AMP