Carbothermal and boron carbide reduction of oxides of some transition metals
The study presents a possible mechanism to produce carbides and diborides of transition metals, such as titanium, vanadium, chromium and zirconium. The carbothermal synthesis of transition metal carbides has defined the direct dependence between the thermodynamic stability of oxides and the temperat...
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EDP Sciences
2021-01-01
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doaj-ccca932cf193428495b63a3c1ed5b47b2021-07-09T11:41:20ZengEDP SciencesMATEC Web of Conferences2261-236X2021-01-013400104010.1051/matecconf/202134001040matecconf_rkfm2021_01040Carbothermal and boron carbide reduction of oxides of some transition metalsKrutskii Yuriy L.0Krutskaya Tatiana M.1Gudyma Tatiana S.2Gerasimov Konstantin B.3Khabirov Roman R.4Mass Anna V.5Novosibirsk State Technical UniversityNovosibirsk State University of Architecture and Civil EngineeringNovosibirsk State Technical UniversityInstitute of Solid State Chemistry and Mechanochemistry, SB RASNovosibirsk State Technical UniversityNovosibirsk State Technical UniversityThe study presents a possible mechanism to produce carbides and diborides of transition metals, such as titanium, vanadium, chromium and zirconium. The carbothermal synthesis of transition metal carbides has defined the direct dependence between the thermodynamic stability of oxides and the temperature range of the reduction onset (the stronger the oxide, the higher the value of the temperature is). It reaches 2000-2100, 1500-1600, 1300-1400 and 2100-2200°C for such carbides as TiC, VC0,88, Cr3C2 and ZrC respectively. The same dependence has not been found for the diborides of these metals. Optimum synthesis temperatures for all these compounds lie in the range of 1600-1700 °C. This viable method to produce transition metal carbides consists in the transfer of vaporous higher and lower oxides. Diborides preparation involves the transfer of oxides and boron vapors onto the surface of the carbon material with the subsequent chemical interaction. In the case of carbide-boron reduction of zirconium oxide in excess of boron carbide, the reaction product will be a composite material (B4C – ZrB2). The ceramics based on this composite possesses high performance properties.https://www.matec-conferences.org/articles/matecconf/pdf/2021/09/matecconf_rkfm2021_01040.pdf |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Krutskii Yuriy L. Krutskaya Tatiana M. Gudyma Tatiana S. Gerasimov Konstantin B. Khabirov Roman R. Mass Anna V. |
spellingShingle |
Krutskii Yuriy L. Krutskaya Tatiana M. Gudyma Tatiana S. Gerasimov Konstantin B. Khabirov Roman R. Mass Anna V. Carbothermal and boron carbide reduction of oxides of some transition metals MATEC Web of Conferences |
author_facet |
Krutskii Yuriy L. Krutskaya Tatiana M. Gudyma Tatiana S. Gerasimov Konstantin B. Khabirov Roman R. Mass Anna V. |
author_sort |
Krutskii Yuriy L. |
title |
Carbothermal and boron carbide reduction of oxides of some transition metals |
title_short |
Carbothermal and boron carbide reduction of oxides of some transition metals |
title_full |
Carbothermal and boron carbide reduction of oxides of some transition metals |
title_fullStr |
Carbothermal and boron carbide reduction of oxides of some transition metals |
title_full_unstemmed |
Carbothermal and boron carbide reduction of oxides of some transition metals |
title_sort |
carbothermal and boron carbide reduction of oxides of some transition metals |
publisher |
EDP Sciences |
series |
MATEC Web of Conferences |
issn |
2261-236X |
publishDate |
2021-01-01 |
description |
The study presents a possible mechanism to produce carbides and diborides of transition metals, such as titanium, vanadium, chromium and zirconium. The carbothermal synthesis of transition metal carbides has defined the direct dependence between the thermodynamic stability of oxides and the temperature range of the reduction onset (the stronger the oxide, the higher the value of the temperature is). It reaches 2000-2100, 1500-1600, 1300-1400 and 2100-2200°C for such carbides as TiC, VC0,88, Cr3C2 and ZrC respectively. The same dependence has not been found for the diborides of these metals. Optimum synthesis temperatures for all these compounds lie in the range of 1600-1700 °C. This viable method to produce transition metal carbides consists in the transfer of vaporous higher and lower oxides. Diborides preparation involves the transfer of oxides and boron vapors onto the surface of the carbon material with the subsequent chemical interaction. In the case of carbide-boron reduction of zirconium oxide in excess of boron carbide, the reaction product will be a composite material (B4C – ZrB2). The ceramics based on this composite possesses high performance properties. |
url |
https://www.matec-conferences.org/articles/matecconf/pdf/2021/09/matecconf_rkfm2021_01040.pdf |
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