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    A 3D Coupled Finite-Element Model for Simulating Mechanical Regain in Self-Healing Cementitious Materials

    Source: Journal of Engineering Mechanics:;2023:;Volume ( 149 ):;issue: 007::page 04023038-1
    Author:
    Brubeck Lee Freeman
    ,
    Anthony Jefferson
    DOI: 10.1061/JENMDT.EMENG-6944
    Publisher: American Society of Civil Engineers
    Abstract: Interest in self-healing techniques that can enhance the performance of cementitious materials has been ever increasing over the past two decades. Alongside the experimental developments, a great deal of progress has been made on the development of numerical models for simulating the self-healing behavior. In spite of this, many models do not consider the coupled physical processes that govern the healing response. In addition, few are developed in a 3D setting that is necessary for many self-healing systems. This study aims to address this through the development of a new 3D coupled model for simulating self-healing cementitious materials. Key features of the model are a new embedded strong discontinuity hexahedral element that employs a damage-healing cohesive zone model to describe the mechanical behavior, a new approach for describing the dependence of the mechanical regain on healing agent transport based on a local crack filling function, and a generalized healing front model that is applicable to different healing agents. The performance of the model is demonstrated with a healing front study and experimental tests on self-healing cementitious specimens. The examples consider a vascular self-healing cementitious specimen that uses a sodium silicate solution as the healing agent and the autogenous healing of a cementitious specimen with and without crystalline admixtures. The results of the validations show that the model is able to reproduce the experimentally observed behavior with good accuracy.
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      A 3D Coupled Finite-Element Model for Simulating Mechanical Regain in Self-Healing Cementitious Materials

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    http://yetl.yabesh.ir/yetl1/handle/yetl/4292659
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    contributor authorBrubeck Lee Freeman
    contributor authorAnthony Jefferson
    date accessioned2023-08-16T19:02:16Z
    date available2023-08-16T19:02:16Z
    date issued2023/07/01
    identifier otherJENMDT.EMENG-6944.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4292659
    description abstractInterest in self-healing techniques that can enhance the performance of cementitious materials has been ever increasing over the past two decades. Alongside the experimental developments, a great deal of progress has been made on the development of numerical models for simulating the self-healing behavior. In spite of this, many models do not consider the coupled physical processes that govern the healing response. In addition, few are developed in a 3D setting that is necessary for many self-healing systems. This study aims to address this through the development of a new 3D coupled model for simulating self-healing cementitious materials. Key features of the model are a new embedded strong discontinuity hexahedral element that employs a damage-healing cohesive zone model to describe the mechanical behavior, a new approach for describing the dependence of the mechanical regain on healing agent transport based on a local crack filling function, and a generalized healing front model that is applicable to different healing agents. The performance of the model is demonstrated with a healing front study and experimental tests on self-healing cementitious specimens. The examples consider a vascular self-healing cementitious specimen that uses a sodium silicate solution as the healing agent and the autogenous healing of a cementitious specimen with and without crystalline admixtures. The results of the validations show that the model is able to reproduce the experimentally observed behavior with good accuracy.
    publisherAmerican Society of Civil Engineers
    titleA 3D Coupled Finite-Element Model for Simulating Mechanical Regain in Self-Healing Cementitious Materials
    typeJournal Article
    journal volume149
    journal issue7
    journal titleJournal of Engineering Mechanics
    identifier doi10.1061/JENMDT.EMENG-6944
    journal fristpage04023038-1
    journal lastpage04023038-11
    page11
    treeJournal of Engineering Mechanics:;2023:;Volume ( 149 ):;issue: 007
    contenttypeFulltext
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