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Technological research of process for producing titanium rich slag and complex titanium-containing ferroalloy

This paper demonstrates the results on the experimental smelting of the titanium rich slag and complex titanium-containing ferroalloy under the large-scale laboratory conditions that simulate industrial one. The technological researches of the process were performed on an ore-thermal furnace with 20...

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Detalles Bibliográficos
Autores principales: Vorobkalo, Nina, Baisanov, Alibek, Makhambetov, Yerbolat, Mynzhasar, Yesmurat, Nurgali, Nurzhan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10432982/
https://www.ncbi.nlm.nih.gov/pubmed/37600357
http://dx.doi.org/10.1016/j.heliyon.2023.e18989
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author Vorobkalo, Nina
Baisanov, Alibek
Makhambetov, Yerbolat
Mynzhasar, Yesmurat
Nurgali, Nurzhan
author_facet Vorobkalo, Nina
Baisanov, Alibek
Makhambetov, Yerbolat
Mynzhasar, Yesmurat
Nurgali, Nurzhan
author_sort Vorobkalo, Nina
collection PubMed
description This paper demonstrates the results on the experimental smelting of the titanium rich slag and complex titanium-containing ferroalloy under the large-scale laboratory conditions that simulate industrial one. The technological researches of the process were performed on an ore-thermal furnace with 200 kVA transformer power. The titanium rich slag was produced from the low-grade ilmenite concentrate, i.e. the low TiO(2) content and the high content of impurities. During the production of the high-grade titanium slag (TiO(2) content: 75–80%), the impurity elements are transferred into the associated alloyed metal (cast iron). Thus, it can be used to smelt the steel. As a result, samples of titanium slag have been produced with the content of the main components, %: TiO(2) – 80.2; Al(2)O(3) – 4.5; SiO(2) – 1.97; Cr(2)O(3) – 1.3 and Fe(2)O(3) – 9.87. Then, in metallurgical practice a complex titanium-containing ferroalloy was first smelted from the previously produced titanium rich slag using a carbothermic approach. The high-ash coal was applied as a carbon-bearing reducing agent. The ash was more 45%. As a result of tests, a pilot batch of the alloy was produced with the following chemical composition, %: Ti - 20–25; Si - 35–45; Al - 10–15; C - 0.2–0.5; P - no more than 0.08; and ferrum. The main component content in the produced alloy suggests that it can serve as an alternative to a mechanical mixture (FeSi45, aluminum shavings, low-percentage ferrotitanium) for steel alloying and deoxidation purposes.
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spelling pubmed-104329822023-08-18 Technological research of process for producing titanium rich slag and complex titanium-containing ferroalloy Vorobkalo, Nina Baisanov, Alibek Makhambetov, Yerbolat Mynzhasar, Yesmurat Nurgali, Nurzhan Heliyon Research Article This paper demonstrates the results on the experimental smelting of the titanium rich slag and complex titanium-containing ferroalloy under the large-scale laboratory conditions that simulate industrial one. The technological researches of the process were performed on an ore-thermal furnace with 200 kVA transformer power. The titanium rich slag was produced from the low-grade ilmenite concentrate, i.e. the low TiO(2) content and the high content of impurities. During the production of the high-grade titanium slag (TiO(2) content: 75–80%), the impurity elements are transferred into the associated alloyed metal (cast iron). Thus, it can be used to smelt the steel. As a result, samples of titanium slag have been produced with the content of the main components, %: TiO(2) – 80.2; Al(2)O(3) – 4.5; SiO(2) – 1.97; Cr(2)O(3) – 1.3 and Fe(2)O(3) – 9.87. Then, in metallurgical practice a complex titanium-containing ferroalloy was first smelted from the previously produced titanium rich slag using a carbothermic approach. The high-ash coal was applied as a carbon-bearing reducing agent. The ash was more 45%. As a result of tests, a pilot batch of the alloy was produced with the following chemical composition, %: Ti - 20–25; Si - 35–45; Al - 10–15; C - 0.2–0.5; P - no more than 0.08; and ferrum. The main component content in the produced alloy suggests that it can serve as an alternative to a mechanical mixture (FeSi45, aluminum shavings, low-percentage ferrotitanium) for steel alloying and deoxidation purposes. Elsevier 2023-08-06 /pmc/articles/PMC10432982/ /pubmed/37600357 http://dx.doi.org/10.1016/j.heliyon.2023.e18989 Text en © 2023 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Article
Vorobkalo, Nina
Baisanov, Alibek
Makhambetov, Yerbolat
Mynzhasar, Yesmurat
Nurgali, Nurzhan
Technological research of process for producing titanium rich slag and complex titanium-containing ferroalloy
title Technological research of process for producing titanium rich slag and complex titanium-containing ferroalloy
title_full Technological research of process for producing titanium rich slag and complex titanium-containing ferroalloy
title_fullStr Technological research of process for producing titanium rich slag and complex titanium-containing ferroalloy
title_full_unstemmed Technological research of process for producing titanium rich slag and complex titanium-containing ferroalloy
title_short Technological research of process for producing titanium rich slag and complex titanium-containing ferroalloy
title_sort technological research of process for producing titanium rich slag and complex titanium-containing ferroalloy
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10432982/
https://www.ncbi.nlm.nih.gov/pubmed/37600357
http://dx.doi.org/10.1016/j.heliyon.2023.e18989
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