ISSN (print) 1995-2732
ISSN (online) 2412-9003

 

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DOI: 10.18503/1995-2732-2022-20-2-44-52

Abstract

Problem Statement (Relevance).The Ural region is a metallurgical center of Russia more than 300 years, and for such a long period a large amount of man-made waste (slag) has accumulated here. The study on the material composition of the slags is a relevant task, since before you dispose of them you need to understand what kind of a mineral composition we are dealing with. Many slags are potential ores that can be further processed; some of them are technology-related refractories, etc. Objectives.The research is aimed at studying the material (mineral) composition of slags from the Klyuchevskoy Ferroalloy Plant formed as a result of ferrotungsten production.Methods Applied. The chemical composition of rock-forming and ore minerals of the slag was determined with a CAMECA SX 100 electron probe microanalyzer with five wave spectrometers (the Institute of Geology and Geochemistry, the Ural Branch of the Russian Academy of Sciences, Yekaterinburg). To analyze it, we used polished petrographic thin sections cut from pieces of slag.Originality. The material composition of the slags was studied from the point of view of conventional mineralogy, using the modern mandatory nomenclature of the International Mineralogical Association.Result. For the first time, the mineralogy of ferrotungsten slags produced at the Klyuchevskoy Metallurgical Plant was studied. It has been established that they are composed of a fluormayenite-spinel aggregate with a significant content of fluorite and the presence of cuspidine, fluorkyuygenite, and metal (Fe-W alloy and Fe7W6 intermetallic compound). These slags are waste products of ferrotungsten production, and the temperature of their formation is apparently estimated within narrow limits of 1360–1460°C. Practical Relevance.The slags under study can be used for additional processing, because rock-forming spinel is a good abrasive material, and ferrotungsten as a by-product (it is easily produced by magnetic separation) can be further used as alloying additions to steels.

Keywords

fluormayenite, spinel, fluorite, cuspidine, mineralogy, slags, Klyuchevskoy Ferroalloy Plant.

For citation

fluormayenite, spinel, fluorite, cuspidine, mineralogy, slags, Klyuchevskoy Ferroalloy Plant.

Erokhin Yu.V. Zavaritsky Institute of Geology and Geochemistry, Ural Branch of RAS, Yekaterinburg, Russia

Ponomarev V.S. Zavaritsky Institute of Geology and Geochemistry, Ural Branch of RAS, Yekaterinburg, Russia

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