By Robert J. Gale, David G. Lovering (auth.), Robert J. Gale, David G. Lovering (eds.)
This moment quantity consists of at the first-class paintings of its predecessor, ex tending its scope to different melts and to different thoughts. It maintains to provide first-hand realizing and adventure of this hard and critical box. there's ever current the trade-off or reconciliation among the unconventional chemistry of platforms no longer ruled by means of the mediating impression of a supposedly detached solvent and the excessive temperatures required to influence the fluidity of the procedure. on the restrict, the very excessive temperatures so raise the premiums of all reactions as to dissolve the temporal distinction among the thermodynamic and the kinetic view of chemistry. What can take place will ensue and consistently does take place. Vessels corrode, the gear turns into a reactant, and the variety of tolerant fabrics in a position to face up to the assault shrinks to graphite, boron carbide or, if all else fails, to frozen elements of the molten salt itself. it's most likely actual that there's no restrict to man's ingenuity yet i think that God gave us molten salts simply to try out that thesis. If there's ever a Molten Salt membership, and Englishmen love golf equipment, its club could be specific. it should definitely contain the authors of this sequence. Graham Hills collage of Strathclyde ix Preface within the first quantity of this sequence, we expressed our competition genuine want existed for useful counsel within the box of molten salt experimentation.
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Additional resources for Molten Salt Techniques: Volume 2, 1st Edition
18 Reprinted by permission of the Publisher, The Electrochemical Society. 5 mm diameter) is immersed in the melt. An inner alumina tube of about 2 mm outer diameter situated a few centimeters above the electrolyte level supplies the reference gas mixture, Pco2 = 2/3 atm and P02 = 113 atm. cm2 fuel Hansraj C. Maru 32 cell (Figure 8b). Here the outer sleeve (H) (inside diameter = 25 mm) containing two pockets (G) of approximately 6 mm inside diameter houses the reference electrodes. 5 mm diameter (drilled from the outside) serve as junctions between the cell and the reference electrodes.
28. A. J. S. C. Maru, "Coating Applications for the Molten Carbonate Fuel Cell," Thin Solid Films 83, 449-454 (1981). 29. I. Sax, Dangerous Properties of Industrial Materials, Third Edition, Van Nostrand, New York (1968). 30. Lithium Corporation of America, Material Safety Data Sheet, Gastonia, NC (January 31, 1979). 31. ). 3 Oxides, Silicates, Phosphates, and Borates I. D. Sommerville and H. B. Bell 1. Introduction In view of the fact that the melts discussed in this Chapter have liquidus temperatures mainly in the temperature range 1000-l600°C, it seems appropriate to include a brief section on how such elevated temperatures are obtained and measured and, more particularly, how melts are contained at such temperatures.
Braunstein and G. , Plenum Press, New York (1981), pp. 159-390. 2. G. Eberhart. "Molten Carbonate Fuel Cell Wetting Studies," paper presented at First Molten Carbonate Fuel Cell Workshop, Chicago, IL (February 1977). 42 Hansraj C. Maru 3. B. Kr. D. Thesis, The Technical University of Denmark, Lyngby (1975). 4. J. Appleby and S. Nicholson, ''The Reduction of Oxygen in Molten Lithium Carbonate," J. Electroanal. Chem. and Interfacial Electrochem. 53, 105-109 (1974). 5. Institute of Gas Technology, Fuel Cell Research on Second-Generation Molten-Carbonate Systems, Final Report for DOE Contr.