Ab Initio Study of the Combined Effects of Alloying Elements and H on Grain Boundary Cohesion in Ferritic Steels

Hydrogen enhanced decohesion is expected to play a major role in ferritic steels, especially at grain boundaries. Here, we address the effects of some common alloying elements C, V, Cr, and Mn on the H segregation behaviour and the decohesion mechanism at a Σ 5 ( 310 ) [ 001 ]...

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Main Authors: Aparna P. A. Subramanyam, Abril Azócar Guzmán, Smobin Vincent, Alexander Hartmaier, Rebecca Janisch
Format: Article
Language:English
Published: MDPI AG 2019-03-01
Series:Metals
Subjects:
Online Access:http://www.mdpi.com/2075-4701/9/3/291
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spelling doaj-e33e72f4784a41b2a403ecd1451eca432020-11-25T01:23:59ZengMDPI AGMetals2075-47012019-03-019329110.3390/met9030291met9030291Ab Initio Study of the Combined Effects of Alloying Elements and H on Grain Boundary Cohesion in Ferritic SteelsAparna P. A. Subramanyam0Abril Azócar Guzmán1Smobin Vincent2Alexander Hartmaier3Rebecca Janisch4Interdisciplinary Centre for Advanced Materials Simulation, Ruhr-University Bochum, 44780 Bochum, GermanyInterdisciplinary Centre for Advanced Materials Simulation, Ruhr-University Bochum, 44780 Bochum, GermanyInterdisciplinary Centre for Advanced Materials Simulation, Ruhr-University Bochum, 44780 Bochum, GermanyInterdisciplinary Centre for Advanced Materials Simulation, Ruhr-University Bochum, 44780 Bochum, GermanyInterdisciplinary Centre for Advanced Materials Simulation, Ruhr-University Bochum, 44780 Bochum, GermanyHydrogen enhanced decohesion is expected to play a major role in ferritic steels, especially at grain boundaries. Here, we address the effects of some common alloying elements C, V, Cr, and Mn on the H segregation behaviour and the decohesion mechanism at a Σ 5 ( 310 ) [ 001 ] 36.9 ∘ grain boundary in bcc Fe using spin polarized density functional theory calculations. We find that V, Cr, and Mn enhance grain boundary cohesion. Furthermore, all elements have an influence on the segregation energies of the interstitial elements as well as on these elements’ impact on grain boundary cohesion. V slightly promotes segregation of the cohesion enhancing element C. However, none of the elements increase the cohesion enhancing effect of C and reduce the detrimental effect of H on interfacial cohesion at the same time. At an interface which is co-segregated with C, H, and a substitutional element, C and H show only weak interaction, and the highest work of separation is obtained when the substitute is Mn.http://www.mdpi.com/2075-4701/9/3/291hydrogen embrittlementhydrogen enhanced decohesiongrain boundary embrittlementgrain boundary segregationab initio calculations
collection DOAJ
language English
format Article
sources DOAJ
author Aparna P. A. Subramanyam
Abril Azócar Guzmán
Smobin Vincent
Alexander Hartmaier
Rebecca Janisch
spellingShingle Aparna P. A. Subramanyam
Abril Azócar Guzmán
Smobin Vincent
Alexander Hartmaier
Rebecca Janisch
Ab Initio Study of the Combined Effects of Alloying Elements and H on Grain Boundary Cohesion in Ferritic Steels
Metals
hydrogen embrittlement
hydrogen enhanced decohesion
grain boundary embrittlement
grain boundary segregation
ab initio calculations
author_facet Aparna P. A. Subramanyam
Abril Azócar Guzmán
Smobin Vincent
Alexander Hartmaier
Rebecca Janisch
author_sort Aparna P. A. Subramanyam
title Ab Initio Study of the Combined Effects of Alloying Elements and H on Grain Boundary Cohesion in Ferritic Steels
title_short Ab Initio Study of the Combined Effects of Alloying Elements and H on Grain Boundary Cohesion in Ferritic Steels
title_full Ab Initio Study of the Combined Effects of Alloying Elements and H on Grain Boundary Cohesion in Ferritic Steels
title_fullStr Ab Initio Study of the Combined Effects of Alloying Elements and H on Grain Boundary Cohesion in Ferritic Steels
title_full_unstemmed Ab Initio Study of the Combined Effects of Alloying Elements and H on Grain Boundary Cohesion in Ferritic Steels
title_sort ab initio study of the combined effects of alloying elements and h on grain boundary cohesion in ferritic steels
publisher MDPI AG
series Metals
issn 2075-4701
publishDate 2019-03-01
description Hydrogen enhanced decohesion is expected to play a major role in ferritic steels, especially at grain boundaries. Here, we address the effects of some common alloying elements C, V, Cr, and Mn on the H segregation behaviour and the decohesion mechanism at a Σ 5 ( 310 ) [ 001 ] 36.9 ∘ grain boundary in bcc Fe using spin polarized density functional theory calculations. We find that V, Cr, and Mn enhance grain boundary cohesion. Furthermore, all elements have an influence on the segregation energies of the interstitial elements as well as on these elements’ impact on grain boundary cohesion. V slightly promotes segregation of the cohesion enhancing element C. However, none of the elements increase the cohesion enhancing effect of C and reduce the detrimental effect of H on interfacial cohesion at the same time. At an interface which is co-segregated with C, H, and a substitutional element, C and H show only weak interaction, and the highest work of separation is obtained when the substitute is Mn.
topic hydrogen embrittlement
hydrogen enhanced decohesion
grain boundary embrittlement
grain boundary segregation
ab initio calculations
url http://www.mdpi.com/2075-4701/9/3/291
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