Журналы →  Non-ferrous Metals →  2014 →  №1 →  Назад

HEAVY NON-FERROUS METALS
Название Influence of calcium oxide on microhardness and structure of high ferruginous slags of autogenous melting
Автор Selivanov E. N., Gulyaeva R. I., Zaripov R. Z., Belyaev V. V., Selmenskikh N. I.
Информация об авторе

Institute of Metallurgy of Ural Branch of Russian Academy of Sciences, Ekaterinburg, Russia:

E. N. Selivanov, Director, e-mail: pcmlab@mail.ru

R. I. Gulyaeva, Senior Researcher

R. Z. Zaripov, Engineer

N. I. Selmenskikh, Researcher

 

“Ural Mining and Metallurgical Company Holding” LLC:

V. V. Belyaev, Head of Department of Metallurgy of Strategic Planning Section

 

S. V. Zhidovinova, A. A. Pankratov and L. A. Marshuk (Members of Institute of Metallurgy of Ural Branch of Russian Academy of Sciences) were the participants in this work.

Реферат

The purpose of this work is estimation of influence of calcium oxide on elemental composition and microhardness of phases, formed during the crystallization of slags of autogenous melting of copper zinc concentrates in Vanyukov furnace. Methods of metallography, X-ray radiography and spectral X-ray microanalysis estimated the influence of calcium oxide on microstructure and elemental composition of the phases, formed during the slags crystallization. Measurement of phases’ microhardness was carried out by Vickers method. The content of the basic elements in researched samples was changed in the following ranges: 36.9–39.4% of Fe, 3.3–10.3% of CaO, 26.7–36.5% of SiO2, 0.6–0.9% of Cu, 5.1–5.5% of Zn and 2.0% of S. It is shown that growth of CaO content in slags up to 10.3% leads to increasing of dispersity of its structure, formation of calcium-containing pyroxene and replacement of fayalite by iron-calcium olivine. With increased concentrations of CaO, copper is mainly included in slags in the form of sulfides. Zinc was found as a component of oxide and dispersed sulfide (christophite) phases. Zinc content in olivine and pyroxene phases is decreased with growth of calcium oxide concentration up to 3.6 and 1.7%, respectively. When the slag is cooled, the release of (Fe, Zn)S phase, containing up to 50% of Zn, is confirmed. On the basis of the data about microhardness and thermal expansion of phases, there was made an assumption about sulfides treatability during the grinding process as a stage of preparation of slag to flotation regrinding of non-ferrous metals.

Ключевые слова High-ferruginous slag, copper, zinc, calcium oxide, microstructure, phase composition, microhardness, metal existence forms
Библиографический список

1. Vanyukov A. V., Bystrov V. P., Vaskevich A. D. et al. Plavka v zhidkoy vanne (Melting in liquid bath). Moscow : Metallurgiya, 1988. 208 p.
2. Khalemskiy A. M., Tarasov A. V., Kazantsev A. N., Kinev V. D. et al. Plavka v pechi Vanyukova medno-tsinkovogo sulfidnogo syrya (Melting of copper-zinc sulfide raw materials in Vanukov furnace). Ekaterinburg : Kedr, 1993. 80 p.
3. Vaisburd S., Berner A., Brandon D. G. et al. Slags and Mattes in Vanyukov’s Process for the Extraction of Copper. Metallurgical and Materials Transactions. 2002. Vol. 33 B. pp. 551–559.
4. Selivanov E. N., Belyaev V. V., Selmenskikh N. I., Pankratov A. A. Rasplavy — Melts. 2004. No. 1. pp. 33–41.
5. Selivanov E. N., Okunev A. I., Moiseev G. K. Rasplavy — Melts. 2000. No. 2. pp. 18–24.
6. Kongoli F., McBow I., Yazawa A. et al. Liquidus relations of calcium ferrite and ferrous calcium silicate slag in continuous copper converting. Sohn International Symposium. 2006. Vol. 1. pp. 69–87.
7. Paretskiy V. M., Chakhotin V. S., Dovchenko V. A., Selivanov E. N. Izvestiya vysshikh uchebnykh zavedeniy. Tsvetnaya metallurgiya — Russian Journal of Non-Ferrous Metals. 1996. No. 11/12. pp. 19-21.
8. Mawejaa K., Mukongob T., Mbayac R. K., Mochubeled E. A. Effect of annealing treatment on the crystallization and leaching of dumped base metal smelter slags. Journal of Hazardous Materials. 2010. Vol. 183. pp. 294–300.
9. Gorai B., Jana R. K., Premchand. Characteristics and utilization of copper slag — a review. Resources, Conservation and Recycling. 2003. Vol. 39. pp. 299–313.
10. Selivanov E. N., Gulyaeva R. I., Zelyutin D. I., Belyaev V. V., Selmenskikh N. I. Tsvetnye Metally — Non-ferrous metals. 2009. No. 12. pp. 27–31.
11. Chvileva T. N., Bessmertnaya M. S., Spiridonov E. M. et al. Spravochnik-opredelitel rudnykh mineralov v otrazhennom svete (Reference book — determinant of ore minerals in reflected light). Moscow : Nedra, 1988. 504 p.
12. Pisciella P., Pelino M. Thermal expansion investigation of iron rich glass-ceramic. Journal of the European Ceramic Society. 2008. Vol. 28. pp. 3021–3026.
13. Helffrich G. Practical use of Suzuki’s thermal expansivity formulation. Physics of the Earth and Planetary Interiors. 1999. Vol. 116. pp. 133–136.

Language of full-text английский
Полный текст статьи Получить
Назад