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    Application of Multiscale Cohesive Zone Model to Simulate Fracture in Polycrystalline Solids

    Source: Journal of Engineering Materials and Technology:;2011:;volume( 133 ):;issue: 001::page 11010
    Author:
    Jing Qian
    ,
    Shaofan Li
    DOI: 10.1115/1.4002647
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: In this work, we apply the multiscale cohesive method ( and , 2010, “A Multiscale Cohesive Zone Model and Simulations of Fracture,” Comput. Methods Appl. Mech. Eng., 199, pp. 547–556) to simulate fracture and crack propagations in polycrystalline solids. The multiscale cohesive method uses fundamental principles of colloidal physics and micromechanics homogenization techniques to link the atomistic binding potential with the mesoscale material properties of the cohesive zone and hence, the method can provide an effective means to describe heterogeneous material properties at a small scale by taking into account the effect of inhomogeneities such as grain boundaries, bimaterial interfaces, slip lines, and inclusions. In particular, the depletion potential of the cohesive interface is made consistent with the atomistic potential inside the bulk material and it provides microstructure-based interface potentials in both normal and tangential directions with respect to finite element boundary separations. Voronoi tessellations have been utilized to generate different randomly shaped microstructure in studying the effect of polycrystalline grain morphology. Numerical simulations on crack propagation for various cohesive strengths are presented and it demonstrates the ability to capture the transition from the intergranular fracture to the transgranular fracture. A convergence test is conducted to study the possible size-effect of the method. Finally, a high-speed impact example is reported. The example demonstrates the advantages of multiscale cohesive method in simulating the spall fracture under high-speed impact loads.
    keyword(s): Solids , Fracture (Process) , Deformation , Grain boundaries , Computer simulation , Engineering simulation , Gradients , Finite element methods , Stress AND Finite element analysis ,
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      Application of Multiscale Cohesive Zone Model to Simulate Fracture in Polycrystalline Solids

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    http://yetl.yabesh.ir/yetl1/handle/yetl/146208
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    contributor authorJing Qian
    contributor authorShaofan Li
    date accessioned2017-05-09T00:44:04Z
    date available2017-05-09T00:44:04Z
    date copyrightJanuary, 2011
    date issued2011
    identifier issn0094-4289
    identifier otherJEMTA8-27135#011010_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/146208
    description abstractIn this work, we apply the multiscale cohesive method ( and , 2010, “A Multiscale Cohesive Zone Model and Simulations of Fracture,” Comput. Methods Appl. Mech. Eng., 199, pp. 547–556) to simulate fracture and crack propagations in polycrystalline solids. The multiscale cohesive method uses fundamental principles of colloidal physics and micromechanics homogenization techniques to link the atomistic binding potential with the mesoscale material properties of the cohesive zone and hence, the method can provide an effective means to describe heterogeneous material properties at a small scale by taking into account the effect of inhomogeneities such as grain boundaries, bimaterial interfaces, slip lines, and inclusions. In particular, the depletion potential of the cohesive interface is made consistent with the atomistic potential inside the bulk material and it provides microstructure-based interface potentials in both normal and tangential directions with respect to finite element boundary separations. Voronoi tessellations have been utilized to generate different randomly shaped microstructure in studying the effect of polycrystalline grain morphology. Numerical simulations on crack propagation for various cohesive strengths are presented and it demonstrates the ability to capture the transition from the intergranular fracture to the transgranular fracture. A convergence test is conducted to study the possible size-effect of the method. Finally, a high-speed impact example is reported. The example demonstrates the advantages of multiscale cohesive method in simulating the spall fracture under high-speed impact loads.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleApplication of Multiscale Cohesive Zone Model to Simulate Fracture in Polycrystalline Solids
    typeJournal Paper
    journal volume133
    journal issue1
    journal titleJournal of Engineering Materials and Technology
    identifier doi10.1115/1.4002647
    journal fristpage11010
    identifier eissn1528-8889
    keywordsSolids
    keywordsFracture (Process)
    keywordsDeformation
    keywordsGrain boundaries
    keywordsComputer simulation
    keywordsEngineering simulation
    keywordsGradients
    keywordsFinite element methods
    keywordsStress AND Finite element analysis
    treeJournal of Engineering Materials and Technology:;2011:;volume( 133 ):;issue: 001
    contenttypeFulltext
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