Contribution to study the effect of semi-coherent interfaces on the mechanical behavior of metallic multilayers by MD simulations

dc.contributor.authorHAMDANI , Soumia
dc.contributor.authorABDESLAM , Saad Reporter
dc.contributor.authorHARTMAIER , Alexander Co- Reporter
dc.date.accessioned2026-06-24T10:23:12Z
dc.date.issued2025
dc.description.abstractThis thesis investigates the role of BCC/BCC semi-coherentAinterfaces on the mechanical response of NV/Fe bilayers underNnano-indentation, tension, and compression. Using atomistic simulations, we analyze the effects of layer thickness, indenter position, and crystallographic orientation. Our findings reveal that theAV/Fe interfaceZacts asQa dislocationZbarrier during nano-indentation, enhancing hardness through blocking dislocation propagation. This effect is more pronounced for thinner V layers, aligning with the Hall-Petch model. On the other hand, in Fe/V bilayers, the interface promotes dislocation propagation, allowing the decomposition of lattice dislocations in the substrate and leading to a softening effect consistent with the inverse Hall-Petch effect. These results are also observable in the V-Fe-V and Fe-V-Fe multilayers. Under uniaxial loading, analytical investigations of plastic deformation mechanisms during tension and compression reveal a complex interplay between anti-twinning/ twinning and slipQdeformations in bothA V and AFe layers. Tension strengthens the V/Fe bilayer due to the decomposition of misfit dislocation inside V layer and anti-twinning in Fe. Whereas, Softening is observed during compression as deformation initiates in the softer V layer via phase transition. While misfit dislocations decompose inside Fe, activating slip deformation. This /compression asymmetry of the V/Fe bilayer is driven by shear strain evolution at the interface.This study provides fundamental insights into dislocation-interfaceQinteractions, strengthening mechanisms, and deformation anisotropy in nano-scale metallic multilayers.
dc.description.sponsorshipCette thèse explore les interactions dislocation-interface, les mécanismes de renforcement et l’anisotropie de déformation dans les multicouches métalliques nanométriques. À travers des simulations de la dynamique moléculaire, nous analysons la réponse mécanique des bicouches V/Fe sous nano-indentation, traction et compression, en tenant compte de l’épaisseur des couches, de la position de l’indenteur et de l’orientation cristallographique. Nos résultats montrent que l’interface V/Fe agit comme une barrière aux dislocations sous nano-indentation, renforçant la dureté, en particulier pour des couches de vanadium inférieures à 50Å, conformément au modèle de Hall-Petch. En revanche, dans les bicouches Fe/V, l’interface favorise la propagation des dislocations, permettant la décomposition des dislocations de réseau dans le substrat et entraînant un adoucissement en accord avec l’effet inverse de Hall-Petch. Sous chargement uniaxial, la bicouche V/Fe se renforce en traction grâce à la décomposition des dislocations dans V et l’anti-maclage dans Fe, tandis qu’en compression, une transformation de phase dans V et la décomposition des dislocations dans Fe induisent un adoucissement. Cette asymétrie est dictée par l’évolution des contraintes de cisaillement à l’interface.
dc.identifier.urihttps://repository.univ-setif.dz/handle/123456789/1447
dc.language.isoen
dc.publisherSetif 1 University - Ferhat ABBAS , Institute of Optics and Precision Mechanics
dc.subjectSemi-coherent Interfaces
dc.subjectMechanical Behavior
dc.subjectMetallic Multilayers
dc.titleContribution to study the effect of semi-coherent interfaces on the mechanical behavior of metallic multilayers by MD simulations
dc.typeThesis

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