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A Molecular Dynamics Study on the Dislocation-Precipitate Interaction in a Nickel Based Superalloy during the Tensile Deformation

In the present paper, the dislocation-precipitate interaction in the Inconel 718 superalloy is studied by means of molecular dynamics simulation. The atomistic model composed of the ellipsoidal [Formula: see text] precipitate (γ″ phase) and the [Formula: see text] matrix is constructed, and tensile...

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Autores principales: Wan, Chang-Feng, Sun, Li-Gang, Qin, Hai-Long, Bi, Zhong-Nan, Li, Dong-Feng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10532567/
https://www.ncbi.nlm.nih.gov/pubmed/37763419
http://dx.doi.org/10.3390/ma16186140
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author Wan, Chang-Feng
Sun, Li-Gang
Qin, Hai-Long
Bi, Zhong-Nan
Li, Dong-Feng
author_facet Wan, Chang-Feng
Sun, Li-Gang
Qin, Hai-Long
Bi, Zhong-Nan
Li, Dong-Feng
author_sort Wan, Chang-Feng
collection PubMed
description In the present paper, the dislocation-precipitate interaction in the Inconel 718 superalloy is studied by means of molecular dynamics simulation. The atomistic model composed of the ellipsoidal [Formula: see text] precipitate (γ″ phase) and the [Formula: see text] matrix is constructed, and tensile tests on the composite [Formula: see text] system along different loading directions are simulated. The dislocation propagation behaviors in the precipitate interior and at the surface of the precipitate are characterized. The results indicate that the dislocation shearing and bypassing simultaneously occur during plastic deformation. The contact position of the dislocation on the surface of the precipitate could affect the penetration depth of the dislocation. The maximum obstacle size, allowing for the dislocation shearing on the slip planes, is found to be close to 20 nm. The investigation of anisotropic plastic deformation behavior shows that the composite system under the loading direction along the major axis of the precipitate experiences stronger shear strain localizations than that with the loading direction along the minor axis of the precipitate. The precipitate size effect is quantified, indicating that the larger the precipitate, the lower the elastic limit of the flow stress of the composite system. The dislocation accumulations in the precipitate are also examined with the dislocation densities given on specific slip systems. These findings provide atomistic insights into the mechanical behavior of nickel-based superalloys with nano-precipitates.
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spelling pubmed-105325672023-09-28 A Molecular Dynamics Study on the Dislocation-Precipitate Interaction in a Nickel Based Superalloy during the Tensile Deformation Wan, Chang-Feng Sun, Li-Gang Qin, Hai-Long Bi, Zhong-Nan Li, Dong-Feng Materials (Basel) Article In the present paper, the dislocation-precipitate interaction in the Inconel 718 superalloy is studied by means of molecular dynamics simulation. The atomistic model composed of the ellipsoidal [Formula: see text] precipitate (γ″ phase) and the [Formula: see text] matrix is constructed, and tensile tests on the composite [Formula: see text] system along different loading directions are simulated. The dislocation propagation behaviors in the precipitate interior and at the surface of the precipitate are characterized. The results indicate that the dislocation shearing and bypassing simultaneously occur during plastic deformation. The contact position of the dislocation on the surface of the precipitate could affect the penetration depth of the dislocation. The maximum obstacle size, allowing for the dislocation shearing on the slip planes, is found to be close to 20 nm. The investigation of anisotropic plastic deformation behavior shows that the composite system under the loading direction along the major axis of the precipitate experiences stronger shear strain localizations than that with the loading direction along the minor axis of the precipitate. The precipitate size effect is quantified, indicating that the larger the precipitate, the lower the elastic limit of the flow stress of the composite system. The dislocation accumulations in the precipitate are also examined with the dislocation densities given on specific slip systems. These findings provide atomistic insights into the mechanical behavior of nickel-based superalloys with nano-precipitates. MDPI 2023-09-09 /pmc/articles/PMC10532567/ /pubmed/37763419 http://dx.doi.org/10.3390/ma16186140 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Wan, Chang-Feng
Sun, Li-Gang
Qin, Hai-Long
Bi, Zhong-Nan
Li, Dong-Feng
A Molecular Dynamics Study on the Dislocation-Precipitate Interaction in a Nickel Based Superalloy during the Tensile Deformation
title A Molecular Dynamics Study on the Dislocation-Precipitate Interaction in a Nickel Based Superalloy during the Tensile Deformation
title_full A Molecular Dynamics Study on the Dislocation-Precipitate Interaction in a Nickel Based Superalloy during the Tensile Deformation
title_fullStr A Molecular Dynamics Study on the Dislocation-Precipitate Interaction in a Nickel Based Superalloy during the Tensile Deformation
title_full_unstemmed A Molecular Dynamics Study on the Dislocation-Precipitate Interaction in a Nickel Based Superalloy during the Tensile Deformation
title_short A Molecular Dynamics Study on the Dislocation-Precipitate Interaction in a Nickel Based Superalloy during the Tensile Deformation
title_sort molecular dynamics study on the dislocation-precipitate interaction in a nickel based superalloy during the tensile deformation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10532567/
https://www.ncbi.nlm.nih.gov/pubmed/37763419
http://dx.doi.org/10.3390/ma16186140
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