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    Phase Field Modeling at Mesoscale of Recycled Aggregate Concrete

    Source: Journal of Materials in Civil Engineering:;2024:;Volume ( 036 ):;issue: 006::page 04024112-1
    Author:
    Justin Kinda
    ,
    B. Wendlassida Kabore
    ,
    Lorenc Bogokivu
    ,
    Daniele Waldmann
    DOI: 10.1061/JMCEE7.MTENG-16464
    Publisher: ASCE
    Abstract: We devised a mesoscopic model for recycled aggregates, enabling the deduction of mechanical behavior of finite element representative volume element (RVE) size from constituent properties like aggregate and mortar. This model can be integrated into a finite element solver as the material law, computing macroscopic properties based on individual constituents. It interprets material response under stress and strain by differentiating it into elastic and viscoplastic components. The elastic response uses a compressible neo-Hookean material model, while the viscoplastic response employs a nonassociated Perzyna-type model, accounting for rate-dependent deformation. We modified the Drucker–Prager yield function to predict fracture, and phase field equations describe fracture initiation and propagation. The model was applied to study fracture propagation in recycled aggregate concrete at a mesoscopic level, illustrating how fracture originates and spreads. After model calibration and validation, a parametric study examined the impact of residual mortar on an aggregate and new mortar matrix in the stress-strain relationship. Our investigation identified the significance of mechanical properties in the overall stress-strain relationship and failure patterns of recycled aggregate concrete (RAC), notably the new mortar matrix and old mortar adhesions. The model enables the prediction of fracture behavior in RAC with complex structural heterogeneity caused by recycled aggregates.
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      Phase Field Modeling at Mesoscale of Recycled Aggregate Concrete

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    http://yetl.yabesh.ir/yetl1/handle/yetl/4297897
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    contributor authorJustin Kinda
    contributor authorB. Wendlassida Kabore
    contributor authorLorenc Bogokivu
    contributor authorDaniele Waldmann
    date accessioned2024-04-27T22:56:45Z
    date available2024-04-27T22:56:45Z
    date issued2024/06/01
    identifier other10.1061-JMCEE7.MTENG-16464.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4297897
    description abstractWe devised a mesoscopic model for recycled aggregates, enabling the deduction of mechanical behavior of finite element representative volume element (RVE) size from constituent properties like aggregate and mortar. This model can be integrated into a finite element solver as the material law, computing macroscopic properties based on individual constituents. It interprets material response under stress and strain by differentiating it into elastic and viscoplastic components. The elastic response uses a compressible neo-Hookean material model, while the viscoplastic response employs a nonassociated Perzyna-type model, accounting for rate-dependent deformation. We modified the Drucker–Prager yield function to predict fracture, and phase field equations describe fracture initiation and propagation. The model was applied to study fracture propagation in recycled aggregate concrete at a mesoscopic level, illustrating how fracture originates and spreads. After model calibration and validation, a parametric study examined the impact of residual mortar on an aggregate and new mortar matrix in the stress-strain relationship. Our investigation identified the significance of mechanical properties in the overall stress-strain relationship and failure patterns of recycled aggregate concrete (RAC), notably the new mortar matrix and old mortar adhesions. The model enables the prediction of fracture behavior in RAC with complex structural heterogeneity caused by recycled aggregates.
    publisherASCE
    titlePhase Field Modeling at Mesoscale of Recycled Aggregate Concrete
    typeJournal Article
    journal volume36
    journal issue6
    journal titleJournal of Materials in Civil Engineering
    identifier doi10.1061/JMCEE7.MTENG-16464
    journal fristpage04024112-1
    journal lastpage04024112-14
    page14
    treeJournal of Materials in Civil Engineering:;2024:;Volume ( 036 ):;issue: 006
    contenttypeFulltext
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