Название |
Physicochemical mechanisms
of destruction of chromite-periclase refractory materials in slag melts |
Информация об авторе |
Gipronickel Institute Ltd., St. Petersburg, Russia
O. S. Novozhilova, Junior Researcher, e-mail: NovozhilovaOS@nornik.ru Yu. A. Savinova, Senior Researcher, e-mail: SavinovaYuA@nornik.ru D. M. Bogatyrev, Researcher, e-mail: BogatyrevDM@nornik.ru E. S. Vladimirov, Leading Engineer, e-mail: VladimirovES@nornik.ru |
Реферат |
One of the urgent tasks facing metallurgical plants is the selection of refractory materials to increase the durability of industrial furnace linings. Of particular interest are the indicators of refractory materials that are supposed to be used in promising projects of PJSC MMC Norilsk Nickel. To solve this problem, it is necessary to understand the nature of the processes of refractory materials destruction. The results of tests of chromite-periclase type (CPT) refractories in hightemperature slag melt are presented. The composition and structure of both the initial and aged in the slag mass samples were studied in detail using such local research methods as scanning electron microscopy and electron microprobe analysis. The studies were carried out on one of the most modern and highly informative analytical complexes, which made it possible to determine the composition of the primary and secondary phases at an accurate quantitative level. The obtained results enable to establish the main mechanisms of refractory destruction, these include: impregnation of the CPT refractory mass with slag melt due to its high porosity, replacement of the refractory silicate binder with slag silicate and direct chemical interaction of periclase granules with the slag mass. In turn, chromites are insensitive to the aggressive effects of slag melt. In addition, it was found that the products of interaction of periclase with slag are refractory phases (in particular, secondary iron-chromium spinels and magnesium-based silicates), during furnace operation this can lead to the formation of a secondary refractory skull layer. |
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