By Tatsuki Ohji, Mrityunjay Singh
The sixth overseas Symposium on complex Processing and production applied sciences for Structural and Multifunctional fabrics and structures used to be held in January 2012 in the course of the thirty sixth foreign convention and Exposition on complicated Ceramics and Composites. This symposium tested development as a result of the study and improvement of complicated processing and production applied sciences for a large choice of non-oxide and oxide-based structural ceramics, particulate and fiber-reinforced composites, and multifunctional fabrics. This factor positive factors seventeen of these papers, representing one of the most very important advancements in processing and production technologies.
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Additional resources for Advanced Processing and Manufacturing Technologies for Structural and Multifunctional Materials VI
Many authors 15 ' l6 ' 18 " 20 ' 23 ' 26 prefer to use stearic acid as the surfactant, but most of their works were related to high pressure injection molding. However, an addition of stearic acid results in higher residual carbon contents attributed to a strong adsorption onto the ceramic powder surface21. Besides, Lin et al16 and Chan et a l " noted the possibility of forming bubbles in the slurry arising from evaporation of stearic acid. At the selection of the surfactant, its melting point has a great importance.
Injection molding technology is based on the ability of ceramic mixtures, which have the consistency of slurries prepared with a specific temporary polymer binder and plasticizer system and heated to the certain temperature, to flow under certain pressures filling the cavity of metallic molds. When the slurry is cooled down in the mold, it is solidified resulting in formation of a green body. There are two principle methods of injection molding technology actively used in ceramic industry. They are distinguished mostly by the type of the temporary binder system and its properties and by the related pressure applied.
Being the heart of the spark plug, the ceramic insulator isolates the high voltage applied to the terminal of the spark plug from the grounded shell. With increased applied voltages, higher operating temperatures and thinner insulator cross-sections, existing ceramic materials are reaching their practical limits. Improvements in ceramic technology are critical to developing higher-performance ignition systems. As engine technology progresses, the role of the ceramic spark plug insulator in controlling voltage becomes increasingly important.
Advanced Processing and Manufacturing Technologies for Structural and Multifunctional Materials VI by Tatsuki Ohji, Mrityunjay Singh
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