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By Jiann-Yang Hwang, Tao Jiang, Mark William Kennedy, Onuralp Yücel, P. Chris Pistorius, Varadarajan Seshadri, Baojun Zhao, Dean Gregurek, Ender Keskinkilic

This assortment positive aspects contributions protecting the advances and advancements of latest high-temperature metallurgical applied sciences and their purposes to the components of: processing of minerals; extraction of metals; education of metal, refractory, and ceramic fabrics; remedy and recycling of slag and wastes; conservation of strength; and environmental security. the quantity could have a wide effect at the lecturers and execs serving the metallurgical industries around the globe through supplying them with entire insurance of a wide selection of topics.

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This phase contains also some barium the cold end. This moreover means that the invariant point of the respective mineral phase assemblages is below the cold face temperature. Within the infiltrated brick microstructure, the sintered magnesia shows severe intra-granular corrosion particularly in the area 2–5 mm from the hot face. That means that the slag also penetrated along the crystal boundaries of the sintered magnesia and corroded the interstitial phases of the magnesia. Due to the corrosion of the magnesia, the main reaction products are Mg-silicate of type forsterite (Mg2SiO4) slightly enriched with CaO, Ca–Mg-silicate of type monticellite (CaMgSiO4) and Na–Ca–Mg–Fe–Al-silicate (Fig.

J. Chung, Crystallization kinetics of thermotropic liquid crystalline poly(ester-imide)s. Eur. Polymer J. 33, 1613–1626 (1997) 13. G. , Cold-crystallization in liquid crystalline poly(p-hydroxybenzoic acid-co-ethylene terephthalate). Polymer 30, 2068–2073 (1989) 14. B. Wunderlich, Chapter V—the Nucleation Step (Academic Press, London, 1976) Synthesis of Chromite for Subsequent Carburization by Methane-Hydrogen Gas Mixture Vincent Canaguier, Ingeborg-Helene Svenum and Leiv Kolbeinsen Abstract The syntheses of stoichiometric iron chromite and chromites with chosen impurity content have been developed using the induction skull melting technique.

1). On a microscopic scale, several microstructural changes were detected and can be summarized as follows: The immediate brick hot face shows a 2 mm thin reaction zone consisting of phosphorous- and lead-rich Na–Ca–Mg–Fe–Ba-silicate, phosphorous-rich Na–Ca– Mg–Fe–Ba–Al-silicate and Na–Ca–Mg–Fe–Al-silicate. The magnesia component is completely dissolved leaving relics of primary and secondary chromite precipitations (Fig. 2a). The chromite relics are enriched with Fe- and Sn-oxide. Below the reaction zone there is a pore-filling infiltration and corrosion of the brick microstructure (Fig.

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