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    A Multilevel Adaptive Mesh Scheme for Efficient Simulation of Thermomechanical Phase-Field Fracture

    Source: Journal of Engineering Mechanics:;2024:;Volume ( 150 ):;issue: 006::page 04024029-1
    Author:
    Ananya Bijaya
    ,
    Abhinav Gupta
    ,
    U. Meenu Krishnan
    ,
    Rajib Chowdhury
    DOI: 10.1061/JENMDT.EMENG-7480
    Publisher: American Society of Civil Engineers
    Abstract: The numerical modeling of thermomechanical fracture is an essential aspect of designing critical components in various industries, including aerospace, automobile, and nuclear. The phase-field method is a suitable approach for simulating thermomechanical fracture problems. However, this method can be computationally expensive. In this study, we propose a multilevel adaptive mesh refinement (ML-AMR) using a phase-field approach, for thermomechanical fracture problems. The proposed approach can efficiently and accurately capture the crack topology without the need for any pre-refinement or explicit marking of damage boundary. Our proposed ML-AMR algorithm introduces an error estimator based on effective crack driving energy computed based on thermomechanical loading using the three prominently used phase-field models (AT2, AT1, and PF-CZM). We demonstrate the accuracy and computational efficiency of the proposed method by simulating various thermomechanical fracture problems and comparing the results with the nonadaptive phase-field method that adopts a priori nonadaptively refined meshes. We consider different types of thermal and mechanical loading, including thermal shock, to evaluate the proposed approach comprehensively. Our results show that the proposed ML-AMR phase-field method reduces computation time by 78%–99% while accurately capturing the crack path, peak load, and total strain energy.
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      A Multilevel Adaptive Mesh Scheme for Efficient Simulation of Thermomechanical Phase-Field Fracture

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    http://yetl.yabesh.ir/yetl1/handle/yetl/4298873
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    contributor authorAnanya Bijaya
    contributor authorAbhinav Gupta
    contributor authorU. Meenu Krishnan
    contributor authorRajib Chowdhury
    date accessioned2024-12-24T10:24:54Z
    date available2024-12-24T10:24:54Z
    date copyright6/1/2024 12:00:00 AM
    date issued2024
    identifier otherJENMDT.EMENG-7480.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4298873
    description abstractThe numerical modeling of thermomechanical fracture is an essential aspect of designing critical components in various industries, including aerospace, automobile, and nuclear. The phase-field method is a suitable approach for simulating thermomechanical fracture problems. However, this method can be computationally expensive. In this study, we propose a multilevel adaptive mesh refinement (ML-AMR) using a phase-field approach, for thermomechanical fracture problems. The proposed approach can efficiently and accurately capture the crack topology without the need for any pre-refinement or explicit marking of damage boundary. Our proposed ML-AMR algorithm introduces an error estimator based on effective crack driving energy computed based on thermomechanical loading using the three prominently used phase-field models (AT2, AT1, and PF-CZM). We demonstrate the accuracy and computational efficiency of the proposed method by simulating various thermomechanical fracture problems and comparing the results with the nonadaptive phase-field method that adopts a priori nonadaptively refined meshes. We consider different types of thermal and mechanical loading, including thermal shock, to evaluate the proposed approach comprehensively. Our results show that the proposed ML-AMR phase-field method reduces computation time by 78%–99% while accurately capturing the crack path, peak load, and total strain energy.
    publisherAmerican Society of Civil Engineers
    titleA Multilevel Adaptive Mesh Scheme for Efficient Simulation of Thermomechanical Phase-Field Fracture
    typeJournal Article
    journal volume150
    journal issue6
    journal titleJournal of Engineering Mechanics
    identifier doi10.1061/JENMDT.EMENG-7480
    journal fristpage04024029-1
    journal lastpage04024029-19
    page19
    treeJournal of Engineering Mechanics:;2024:;Volume ( 150 ):;issue: 006
    contenttypeFulltext
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