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Ferroalloys
Название Study of phase transformations during heating of briquetted mono-charge from chromiumcontaining materials and carbon reducing agents
DOI 10.17580/cisisr.2023.01.05
Автор E. Zh. Shabanov, A. S. Baisanov, R. T. Toleukadyr, I. S. Inkarbekova
Информация об авторе

Zh. Abishev Chemical and Metallurgical Institute (Karaganda, Kazakhstan):

E. Zh. Shabanov, Ph. D. (Metallurgy), Head of Laboratory of Ferroalloys and Reduction Processes
A. S. Baisanov, Cand. Eng., Prof., Head of Pyrometallurgical Processes Laboratory
R. T. Toleukadyr, Master, Junior Research Assistant, Laboratory of Ferroalloys and Reduction Processes, corresponding author, e-mail: ruslan-94kz@mail.ru
I. S. Inkarbekova, Master, 1st Category Eng., Laboratory of Ferroalloys and Reduction Processes

Реферат

The article presents the results of a study of phase transformations occurring during gradual heating of briquetted mono-charge. A complex of physical and chemical studies aimed at establishing the possibility of monocharge use for smelting of standard carbon ferrochromium was carried out in the laboratorial conditions on the basis of the Chemical and Metallurgical Institute named after Zh. Abishev. In order to study the phase transformations occurring in a mono-charge for smelting of high-carbon ferrochromium, thermograms of chromium briquettes of different variants were obtained in air oxidizing atmosphere and nitrogen inert atmosphere. Among them the following variants are mentioned: chromium fines mixed with a reducing agent, option I - Shubarkol coal; option II - Borlinsky coal; option III - China coke; as well as option IV - pure dust from Aktobe ferroalloy plant gas cleaning; option V - dust from pellet production site at Donskoy GOK with China coke and option VI - flash from production of briquettes with China coke. As a result of processing of thermograms, the peak temperatures and temperature intervals of behaviour of the thermal effects of chromium oxide interaction with used reducing agents were established. The method of differential thermal analysis (DTA) is based on the most important properties of a substance which are related to its chemical composition and structure and are reflected in the thermal changes of a substance when heated. The reason for the widespread use of this method of non-isothermal kinetics is that one experiment can determine all the kinetic constants, including the activation energy. Analyzing the calculated data on the activation energy, it is possible to assume the diffusion nature of inhibition of the reduction reaction for all studied chromium ore materials. Based on the values of the activation energy of the process, briquettes with Borlinsky coal and complex reducing agent have the highest reducibility.

This research was funded by the Committee of science of the Ministry of education and science of Kazakhstan Republic (Grant No. AP14871610).

Ключевые слова Ferroalloys, differential thermal analysis, mono-charge, reducing agents, briquette, chromium ores, coal
Библиографический список

1. Shabanov E. Zh., Izbembetov D. D., Baisanov S. O., Shadiev M. F. Technology of high-carbon ferrochromium production using mono-charge briquettes. Izvestiya vysshikh uchebnykh zavedeniy. Chernaya metallurgiya. 2018. Vol. 61. No. 9. pp. 702-707.
2. Tiunova T. G., Yakushev R. M. et al. Determination of activation energy for solidification of epoxyacrylate lacquer compositions based on DTA data. Plasticheskie massy. 1998. No. 8. pp. 28-30
3. Wagner M. Thermal analysis in practice. Fundamental Aspects. Carl Hanser Verlag GmbH & Co. KG. 2018. p. 349.
4. Tanzi M. C., Farè S., Candiani G. Techniques of Analysis Foundations of Biomaterials Engineering. 2019. p. 393-469.
5. Gabelchenko N. I., Khantimirova S. B., Mishustin O. A., Savchenko A. I. Investigation of local interval of steels and cast irons primary crystallization using differential thermal analysis. Science, Education and Culture in Eurasia and Africa: The 7 International Academic Congress (France, Paris, 23-25 April 2017. Proceedings. Vol. VII. Paris: University Press, 2017. pp. 489-494.
6. Gabelchenko N. I., Khantimirova S. B., Shtepina E. V. Study of local intervals of crystallization process for steel and cast iron via the method of differential thermal analysis. Izvestiya VolgGTU. Seriya “Problemy materialovedeniya”. 2016. No. 9 (188). pp. 113-116.
7. Differential thermal analysis. Methodical recommendations for laboratorial workshop and self-guided work of students within the course “Physical chemistry of high-melting nonmetallic and silicate materials”. Collected by Prof. Lotov V.A. et al. Tomsk. Izdatelstvo TPU. 2020. 30 p.
8. Tolymbekov M. Zh., Baisanov S. O., Abdulabekov E. E., Baicanov A. S. Investigations on development of the smelting technology for high-carbon ferrochromium using complex briquetted charge. Report of the scientific and research study. Chemical and metallurgical institute named after Zh. Abishev. 2007. 63 p.
9. Kaliakparov A. G., Suslov A. V., Nurmaganbetova B. N., Zhdanov A. V., Nurmaganbetov Z. O. Smelting of high-carbon ferrochrome from chromium agglomerate produced with alumina-silica flux. Steel in Translation. 2017. Vol. 47. No. 1.pp. 65-69.
10. Salina V. A., Zhuchkov V .I., Sychev A. V. Thermodynamic Simulation of the Carbothermic Reduction of Chromium from the Cr2O3–FeO–CaO–SiO2–MgO–Al2O3 Oxide System. Russian Metallurgy (Metally). 2021. No. 2. pp. 229-233.
11. Kelamanov B., Samuratov Y., Zhumagaliyev Y., Akuov A., Sariev O. Titanium and chrome oxides system thermodynamic diagram analysis. Metalurgija. 2020. Vol. 59. No. 1. pp. 101-104.
12. Sariev O., Kelamanov B., Zhumagaliyev Y., Kim S., Abdirashit А., Almagambetov M. Remelting the high-carbon ferrochrome dust in a direct current arc furnace (DCF). Metalurgija. 2020. Vol. 59. No. 4. pp. 533-536.
13. Akuov А., Samuratov Y., Kelamanov B., Zhumagaliyev Y., Taizhigitova M. Development of an alternative technology for the production of refined ferrochrome. Metalurgija. 2020. Vol. 59. No. 4. pp. 529-532.

Полный текст статьи Study of phase transformations during heating of briquetted mono-charge from chromiumcontaining materials and carbon reducing agents
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