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Plastic deformation mechanisms in BCC single crystals and equiatomic alloys: Insights from nanoindentation

creativeworkseries.issn2720-4081
dc.contributor.authorDominguez-Gutierrez, Francisco Javier
dc.contributor.authorPapanikolaou, Stefanos
dc.contributor.authorBonfanti, Silvia
dc.contributor.authorAlava, Mikko
dc.date.available2024-10-07T10:11:39Z
dc.date.issued2024
dc.description.abstractDeformation plasticity mechanisms in alloys and compounds may reveal the material’s capacity towards optimal mechanical properties. We conducted a series of molecular dynamics (MD) simulations to investigate plasticity mechanisms due to nanoindentation in pure tungsten, molybdenum, and vanadium body-centered cubic single crystals, as well as the body-centered cubic, equiatomic, random solid solutions (RSS) of tungsten–molybdenum and tungsten–vanadium alloys. Our analysis focuses on a thorough, side-by-side comparison of dynamic deformation processes, defect nucleation, and evolution, along with corresponding stress–strain curves. We also checked the surface morphology of indented samples through atomic shear strain mapping. As expected, the presence of Mo and V atoms in W matrices introduces lattice strain and distortion, increasing material resistance to deformation and slowing down dislocation mobility of dislocation loops with a Burgers vector of 1/2 ?111?. Our side-by-side comparison displays a remarkable suppression of the plastic zone size in equiatomic W–V RSS, but not in equiatomic W–Mo RSS alloys, displaying a clear prediction for optimal hardening response of equiatomic W–V RSS alloys. If the small-depth nanoindentation plastic response is indicative of overall mechanical performance, it is possible to conceive a novel MD-based pathway towards material design for mechanical applications in complex, multi-component alloys.en
dc.description.placeOfPublicationKraków
dc.description.versionwersja wydawnicza
dc.identifier.doihttps://doi.org/10.7494/cmms.2024.1.0826
dc.identifier.eissn2720-3948
dc.identifier.issn2720-4081
dc.identifier.urihttps://repo.agh.edu.pl/handle/AGH/109678
dc.language.isoeng
dc.publisherWydawnictwa AGH
dc.relation.ispartofComputer Methods in Materials Science
dc.rightsAttribution 4.0 International
dc.rights.accessotwarty dostęp
dc.rights.urihttps://creativecommons.org/licenses/by/4.0/legalcode
dc.subjectnanoindentationen
dc.subjectalloysen
dc.subjecthardnessen
dc.subjectmachine learning interatomic potentialsen
dc.subjectdislocation dynamicsen
dc.subjectplasticityen
dc.subjecttungstenen
dc.titlePlastic deformation mechanisms in BCC single crystals and equiatomic alloys: Insights from nanoindentationen
dc.title.relatedComputer Methods in Materials Scienceen
dc.typeartykuł
dspace.entity.typePublication
publicationissue.issueNumberNo. 1
publicationissue.paginationpp. 37-49
publicationvolume.volumeNumberVol. 24
relation.isJournalIssueOfPublication09ee95c4-8b60-4420-86ed-26d796b93ee4
relation.isJournalIssueOfPublication.latestForDiscovery09ee95c4-8b60-4420-86ed-26d796b93ee4
relation.isJournalOfPublication1f717eff-e164-4db5-8437-ca75e714cac5

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