Modern Powder Metallurgy: Chemical Composition Design for Improved Heat Resistant Alloys

The modern approach to the design of heat-resistant metal alloys (HRAs) is analyzed, according to which the creep rupture characteristics of an alloy are mostly determined by the strength of interatomic bonding at grain boundaries (GBs) and in the bulk of a matrix phase. The main attention is paid t...

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Main Authors: Igor Razumovskii, Alla Logacheva, Vsevolod Razumovskiy, Ivan Logachev, Mikhail Razumovsky
Format: Article
Language:English
Published: MDPI AG 2021-07-01
Series:Metals
Subjects:
Online Access:https://www.mdpi.com/2075-4701/11/8/1215
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spelling doaj-9dd8ef11b310419d874e8fa31960c66f2021-08-26T14:04:16ZengMDPI AGMetals2075-47012021-07-01111215121510.3390/met11081215Modern Powder Metallurgy: Chemical Composition Design for Improved Heat Resistant AlloysIgor Razumovskii0Alla Logacheva1Vsevolod Razumovskiy2Ivan Logachev3Mikhail Razumovsky4Joint Stock Company “Kompozit”, Pionerskaya Street 4, 141070 Korolev, RussiaJoint Stock Company “Kompozit”, Pionerskaya Street 4, 141070 Korolev, RussiaMaterials Center Leoben Forschung GmbH, Roseggerstrasse 12, 8700 Leoben, AustriaJoint Stock Company “Kompozit”, Pionerskaya Street 4, 141070 Korolev, RussiaJoint Stock Company “Kompozit”, Pionerskaya Street 4, 141070 Korolev, RussiaThe modern approach to the design of heat-resistant metal alloys (HRAs) is analyzed, according to which the creep rupture characteristics of an alloy are mostly determined by the strength of interatomic bonding at grain boundaries (GBs) and in the bulk of a matrix phase. The main attention is paid to the concept of “low alloying additions” to polycrystalline alloys with transition metals, because of which the cohesive strength of the GBs and the cohesion energy of the alloy matrix are increased. This approach is especially important in relation to alloys obtained by powder metallurgy, which, in the compacted state, are fine-grained polycrystals. The methodology for calculating the key parameters of the theory (the energy of impurity segregation to the grain boundaries E<sub>gb</sub> and to the free surface E<sub>fs</sub>, as well as the values of the partial molar energy of the cohesion of the alloys) from the first principles is given. The results of applying the theory to the study of Ni-, Cr- and Ti-based alloys and the development of new HRAs based on them are presented. Typical defects in the microstructures of objects obtained using additive technologies (AT) and the application efficiency of standard methods of processing powder alloys (Hot Isostatic Pressing (HIP), heat treatment (HT)) to improve the microstructure and increase the mechanical properties are considered.https://www.mdpi.com/2075-4701/11/8/1215powder metallurgyalloying theorygrain boundariesadditive technologiesheat-resistant alloys
collection DOAJ
language English
format Article
sources DOAJ
author Igor Razumovskii
Alla Logacheva
Vsevolod Razumovskiy
Ivan Logachev
Mikhail Razumovsky
spellingShingle Igor Razumovskii
Alla Logacheva
Vsevolod Razumovskiy
Ivan Logachev
Mikhail Razumovsky
Modern Powder Metallurgy: Chemical Composition Design for Improved Heat Resistant Alloys
Metals
powder metallurgy
alloying theory
grain boundaries
additive technologies
heat-resistant alloys
author_facet Igor Razumovskii
Alla Logacheva
Vsevolod Razumovskiy
Ivan Logachev
Mikhail Razumovsky
author_sort Igor Razumovskii
title Modern Powder Metallurgy: Chemical Composition Design for Improved Heat Resistant Alloys
title_short Modern Powder Metallurgy: Chemical Composition Design for Improved Heat Resistant Alloys
title_full Modern Powder Metallurgy: Chemical Composition Design for Improved Heat Resistant Alloys
title_fullStr Modern Powder Metallurgy: Chemical Composition Design for Improved Heat Resistant Alloys
title_full_unstemmed Modern Powder Metallurgy: Chemical Composition Design for Improved Heat Resistant Alloys
title_sort modern powder metallurgy: chemical composition design for improved heat resistant alloys
publisher MDPI AG
series Metals
issn 2075-4701
publishDate 2021-07-01
description The modern approach to the design of heat-resistant metal alloys (HRAs) is analyzed, according to which the creep rupture characteristics of an alloy are mostly determined by the strength of interatomic bonding at grain boundaries (GBs) and in the bulk of a matrix phase. The main attention is paid to the concept of “low alloying additions” to polycrystalline alloys with transition metals, because of which the cohesive strength of the GBs and the cohesion energy of the alloy matrix are increased. This approach is especially important in relation to alloys obtained by powder metallurgy, which, in the compacted state, are fine-grained polycrystals. The methodology for calculating the key parameters of the theory (the energy of impurity segregation to the grain boundaries E<sub>gb</sub> and to the free surface E<sub>fs</sub>, as well as the values of the partial molar energy of the cohesion of the alloys) from the first principles is given. The results of applying the theory to the study of Ni-, Cr- and Ti-based alloys and the development of new HRAs based on them are presented. Typical defects in the microstructures of objects obtained using additive technologies (AT) and the application efficiency of standard methods of processing powder alloys (Hot Isostatic Pressing (HIP), heat treatment (HT)) to improve the microstructure and increase the mechanical properties are considered.
topic powder metallurgy
alloying theory
grain boundaries
additive technologies
heat-resistant alloys
url https://www.mdpi.com/2075-4701/11/8/1215
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