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    Surface/interface effects on the formation of misfit dislocation in a core-shell nanowire

    , Article Philosophical Magazine ; Volume 94, Issue 5 , 11 February , 2014 , Pages 492-519 ; ISSN: 14786435 Enzevaee, C ; Gutkin, M. Y ; Shodja, H. M ; Sharif University of Technology
    Abstract
    The misfit strain within the core of a two-phase free-standing core-shell nanowire resulting in the generation of an edge misfit dislocation or an edge misfit dislocation dipole at the core-shell interface is considered theoretically within both the classical and surface/interface elasticity approaches. The critical conditions for the misfit dislocation generation are studied and discussed in detail with special attention to the non-classical surface/interface effect. It is shown that this effect is significant for fine cores of radius smaller than roughly 20 interatomic distances. The positive and negative surface/interface Lamé constants mostly make the generation of the misfit dislocation... 

    Dislocation density and flow stress modeling of nanostructured Al-SiC p composite during accumulative roll bonding

    , Article Computational Materials Science ; Volume 67 , February , 2013 , Pages 359-363 ; 09270256 (ISSN) Kavosi, J ; Saei, M ; Kazeminezhad, M ; Sharif University of Technology
    2013
    Abstract
    In order to investigate the dislocation structure and flow stress evolution of Al-SiCp composite during ARB process, a comprehensive model which describes the evolution of dislocation density is needed. Dislocation density, microstructure and flow stress evolution of Al-SiCp composite are predicted considering the ETMB model, strain and strain rate achieved from the mechanical model of ARB process and shear modulus calculated from the composite model. In addition, models' parameters such as dislocation generation parameters are modified due to the effect of SiC particles. The predicted results are in good agreement with experimental data  

    A new microstructural model based on dislocation generation and consumption mechanisms through severe plastic deformation

    , Article Computational Materials Science ; Volume 50, Issue 3 , January , 2011 , Pages 1123-1135 ; 09270256 (ISSN) Hosseini, E ; Kazeminezhad, M ; Sharif University of Technology
    2011
    Abstract
    A new model on the evolution of dislocation structure of cell forming metals and alloys through severe plastic deformation is presented. Following previous approaches, the model considers a cellular dislocation structure consisted of two phases: cell interiors and cell walls. The model distinguishes edge and screw dislocations in terms of three categories: mobile dislocations, immobile dislocations in cell interiors and immobile dislocations in cell walls. Then considering physical and geometrical assumptions for each dislocation category, an evolutional law is derived, based on some dislocation interaction mechanisms such as dislocation generation, annihilation, locking and migration. The...