By E. A. Olevsky, Rajendra Bordia
This factor of the Ceramic Transactions compiles forty-one papers masking a wealthy variety of the sintering technological know-how and expertise subject matters. those papers have been provided on the foreign convention on Sintering, November 16-20, 2008 in los angeles Jolla, California.
The Ceramic Transactions series encompasses a selection of papers facing concerns in either conventional ceramics (i.e., glass, whitewares, refractories, and porcelain tooth) and complex ceramics. subject matters lined within the zone of complex ceramic contain bioceramics, nanomaterials, composites, good oxide gas cells, mechanical houses and structural layout, complex ceramic coatings, ceramic armor, porous ceramics, and extra.
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Additional info for Advances in Sintering: Ceramic Transactions (Ceramic Transactions Series, Volume 209)
K. McGeary, "Mechanical Packing of Spherical Particles," Journal of the American Ceramic Society, 44 (1961), 513-522. 10. C. Furnas, "Grading Aggregates I - Mathematical Relations for Beds of Broken Solids of Maximum Density," Industrial and Engineering Chemistry, 23 (1931), 1052-1058. 11. F. Fedors and R. F. Landel, "An Empirical Method of Estimating the Void Fraction in Mixtures of Uniform Particles of Different Size," Powder Technology, 23 (1979), 225-231. 12. V. Milewski, "Packing Concepts in the Utilization of Filler and Reinforcement Combinations," Handbook of Fillers and Reinforcements for Plastics, ed.
A serious drawback for the nitride fuel; however, is the loss of americium nitride during the conventional high temperature sintering cycle due to its high vapor pressure. Various conventional sintering approaches have been employed to sinter composite nitride fuel pellets. However, no conventional approach has solved the loss of americium problem. This paper investigates routes for the fabrication of high-density (>85% of theoretical) pellets of surrogate materials (eg. ZrN for UN and DyN for AmN) by using commercially available ZrN powders and by using the chemical precursor approach to synthesize the starting powders and then using either bimodal, trimodal or continuous powder distributions to process the powder into pellets using either cold isostatic pressing or uniaxial pressing at room temperature.
The scatter of mechanical properties of the reaction bonded boron carbide composites is of relevance. 67 for type-A and for type-B composites, respectively (Fig. 12). 5- > *. 2 1η(σ) Figure 12. Weibull plots of flexural strength of the type-A and type-B composites. SUMMARY AND CONCLUSIONS Reaction bonded boron carbide composites, fabricated with and without free carbon additions, consist of four phases: the original boron carbide particles, the ternary Bi2(B,C,Si)3 compound, ß-SiC and residual silicon.
Advances in Sintering: Ceramic Transactions (Ceramic Transactions Series, Volume 209) by E. A. Olevsky, Rajendra Bordia