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    Concurrent and Hierarchical Multiscale Analysis for Layer-Thickness Effects of Nanoscale Coatings on Interfacial Stress and Fracture Behavior

    Source: Journal of Engineering Materials and Technology:;2012:;volume( 134 ):;issue: 003::page 31012
    Author:
    Jinghong Fan
    ,
    Long He
    ,
    Ross J. Stewart
    DOI: 10.1115/1.4006498
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: To investigate the effects of coating layer thickness on stress and the debonding behavior near the interface of coating layer and substrate, multiscale analysis is a must since molecular dynamics (MD) simulations can only be performed on models with thicknesses of about tens of nanometers on common computers, but the real thicknesses of such layers are around 300–1200 nm. In this work, generalized particle dynamics (GP) modeling for Al coated on Fe is first developed by using an atomistic domain near the layer interface and having high-scale particles far from that region to reduce degrees of freedom. Results show that the thicker coatings experience lower local average shearing stresses for a given shear strain. However, it is found that when the layer thickness reaches a large value, further increase of the layer thickness will not greatly benefit the reduction of the stress, thereby not increasing the allowable load. This trend is consistent with the simulation for Al2 O3 coated on Fe by a hierarchical multiscale analysis which is formulated by proposing a nanoscale-based key variable, Gdb , called debonding energy density. This variable, defined by the debonding energy per unit area, is used to characterize material bonding strength in realizing that failure originates from the atomistic and nanoscale. The difference and connection of this low-scale fracture variable, Gdb , with crack energy release rate, GIC , in traditional fracture mechanics is illustrated and how Gdb can be easily determined through atomistic simulation is exemplified. To make the new variable effective in engineering applications, Gdb is used as input to a macroscopic scale finite element model. The obtained layer-thickness effect directly confirms the existence of a critical thickness, predicted by the GP method. This work is an effort in developing material failure theory from lower scales where material fracture originates but with applications in continuum scale via both hierarchical and concurrent multiscale analyses.
    keyword(s): Atoms , Coating processes , Coatings , Particulate matter , Simulation , Stress , Fracture (Materials) , Density , Fracture (Process) , Nanoscale phenomena , Failure , Thickness , Crack propagation , Degrees of freedom , Engineering simulation AND Force ,
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      Concurrent and Hierarchical Multiscale Analysis for Layer-Thickness Effects of Nanoscale Coatings on Interfacial Stress and Fracture Behavior

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    https://yetl.yabesh.ir/yetl1/handle/yetl/148983
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    • Journal of Engineering Materials and Technology

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    contributor authorJinghong Fan
    contributor authorLong He
    contributor authorRoss J. Stewart
    date accessioned2017-05-09T00:50:48Z
    date available2017-05-09T00:50:48Z
    date copyrightJuly, 2012
    date issued2012
    identifier issn0094-4289
    identifier otherJEMTA8-27156#031012_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/148983
    description abstractTo investigate the effects of coating layer thickness on stress and the debonding behavior near the interface of coating layer and substrate, multiscale analysis is a must since molecular dynamics (MD) simulations can only be performed on models with thicknesses of about tens of nanometers on common computers, but the real thicknesses of such layers are around 300–1200 nm. In this work, generalized particle dynamics (GP) modeling for Al coated on Fe is first developed by using an atomistic domain near the layer interface and having high-scale particles far from that region to reduce degrees of freedom. Results show that the thicker coatings experience lower local average shearing stresses for a given shear strain. However, it is found that when the layer thickness reaches a large value, further increase of the layer thickness will not greatly benefit the reduction of the stress, thereby not increasing the allowable load. This trend is consistent with the simulation for Al2 O3 coated on Fe by a hierarchical multiscale analysis which is formulated by proposing a nanoscale-based key variable, Gdb , called debonding energy density. This variable, defined by the debonding energy per unit area, is used to characterize material bonding strength in realizing that failure originates from the atomistic and nanoscale. The difference and connection of this low-scale fracture variable, Gdb , with crack energy release rate, GIC , in traditional fracture mechanics is illustrated and how Gdb can be easily determined through atomistic simulation is exemplified. To make the new variable effective in engineering applications, Gdb is used as input to a macroscopic scale finite element model. The obtained layer-thickness effect directly confirms the existence of a critical thickness, predicted by the GP method. This work is an effort in developing material failure theory from lower scales where material fracture originates but with applications in continuum scale via both hierarchical and concurrent multiscale analyses.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleConcurrent and Hierarchical Multiscale Analysis for Layer-Thickness Effects of Nanoscale Coatings on Interfacial Stress and Fracture Behavior
    typeJournal Paper
    journal volume134
    journal issue3
    journal titleJournal of Engineering Materials and Technology
    identifier doi10.1115/1.4006498
    journal fristpage31012
    identifier eissn1528-8889
    keywordsAtoms
    keywordsCoating processes
    keywordsCoatings
    keywordsParticulate matter
    keywordsSimulation
    keywordsStress
    keywordsFracture (Materials)
    keywordsDensity
    keywordsFracture (Process)
    keywordsNanoscale phenomena
    keywordsFailure
    keywordsThickness
    keywordsCrack propagation
    keywordsDegrees of freedom
    keywordsEngineering simulation AND Force
    treeJournal of Engineering Materials and Technology:;2012:;volume( 134 ):;issue: 003
    contenttypeFulltext
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