By S. K. Sundaram, Tatsuki Ohji, Kevin M. Fox, Elizabeth Hoffman
This ebook includes 29 papers from the fresh strength: gasoline Cells, Batteries, Renewables; eco-friendly applied sciences for fabrics production and Processing II; and fabrics strategies for the Nuclear Renaissance symposia held throughout the 2010 fabrics technology and know-how (MS&T'10) assembly, October 17-21, 2010, Houston, Texas. themes comprise Batteries; Corrosion and fabrics Degradation; gasoline Cells & Electrochemistry; Fossil strength fabrics; solar power; Waste Minimization; eco-friendly production and fabrics Processing; Immobilization of Nuclear Wastes; Irradiation and Corrosion results; and fabrics functionality in severe Environments.
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Additional resources for Advances in Materials Science for Environmental and Nuclear Technology II: Ceramic Transactions
Yamamoto and Y. Abe, High Temperature Electrical Properties of the Spinel-Type Oxide MnCo204-NiMn204, J. Mater. Sei. , 33, 32-37 (1996). Advances in Materials Science for Environmental and Nuclear Technology II -37 This page intentionally left blank EFFECT OF HYDROGEN ON BENDING FATIGUE LIFE FOR MATERIALS USED IN HYDROGEN CONTAINMENT SYSTEMS Patrick Ferro Gonzaga University Spokane, WA, USA ABSTRACT Hydrogen containment systems must be engineered for multiple charge/discharge cycles. Challenges from possible hydrogen embrittlement, pressure, temperature, cost and other parameters affect storage design decisions.
Sei. 3:327-57 (1978) 3. P. Hirth, Effects of Hydrogen on the Properties of Iron and Steel, Met. Trans. l 1A June 1980 861-890 (1980) 4. G. Nelson, Hydrogen Embrittlement, Treatise on Materials Sei. , v. 25, Academic Press, pp. 275-359 (1983) 5. C. P. Somerday, Effects of High-Pressure Gaseous Hydrogen on Structural Metals, 2007-01-0433 6. gov/iTiatlsTechRef/. accessed May 25, 2010 7. Y. Aoki, K. Kawamoto, Y. Oda, H. Noguchi, K. Higashida, Fatigue Characteristics of a Type 304 Austenitic Stainless Steel in a Hydrogen Gas Environment, Int.
26 ■ Advances in Materials Science for Environmental and Nuclear Technology II TITANIUM-DIOXIDE-COATED SILICA MICROSPHERES FOR HIGH-EFFICIENCY DYESENSITIZED SOLAR CELL Devender'* and Ajay Dangi 'Department of Ceramic Engineering, Institute of Technology, Bañaras Hindu University, Varanasi 221005, India department of Mechanical Engineering, Institute of Technology, Bañaras Hindu University, Varanasi 221005, India ABSTRACT In order to improve the efficiency of a dye-sensitized solar cell (DSSC) by using silica microspheres coated with titanium dioxide (TÍO2), silica microspheres were prepared by the solgel method using tetraethyl orthosilicate as the starting material and hydrochloric acid to catalyze the reaction.
Advances in Materials Science for Environmental and Nuclear Technology II: Ceramic Transactions by S. K. Sundaram, Tatsuki Ohji, Kevin M. Fox, Elizabeth Hoffman