A resilience assessment framework for microencapsulated self-healing cementitious composites based on a micromechanical damage-healing model

IF 4 2区 工程技术 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY International Journal of Damage Mechanics Pub Date : 2023-09-11 DOI:10.1177/10567895231197237
Kaihang Han, Jiann-Wen Woody Ju, Chengping Zhang, Dong Su, Hongzhi Cui, Xing-Tao Lin, Xiangsheng Chen
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Abstract

In this paper, a resilience assessment framework for microencapsulated self-healing cementitious composites is proposed based on a micromechanical damage-healing model. A 3D micromechanical analytical model is constructed to analyze the performance evolution during the damage-healing process of self-healing concrete. The resilience assessment of microencapsulated self-healing concrete is defined by virtue of the residual stiffness, self-healing effect on stiffness and damage cumulative on stiffness, which corresponds to three main features of resilience; namely, the robustness, recoverability and adaptability. The assessment results indicate that the release of healing agents within microcapsules and healing process of extended microcracks allows the microencapsulated self-healing concrete to have higher resilience than conventional concrete. Moreover, a parameter sensitivity analysis is conducted to investigate the influence of the healing efficiency, the applied initial damage and the fracture toughness of the repaired microcrack on resilience of microencapsulated self-healing concrete. The results indicate that higher healing efficiency and applied initial damage leads to high resilience, and fracture toughness of the repaired microcrack makes less difference to the results. The findings of this paper lay a theoretical foundation for the resilience design of self-healing material layer of underground structures.
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基于微力学损伤-愈合模型的微囊化自愈胶凝复合材料弹性评估框架
基于微力学损伤-愈合模型,提出了微囊化自愈胶凝复合材料的弹性评估框架。建立了三维细观力学分析模型,分析了自愈混凝土损伤-愈合过程中的性能演变过程。微囊化自愈混凝土的回弹性评价是根据剩余刚度、自愈对刚度的影响和损伤累积对刚度的影响来定义的,对应于回弹性的三个主要特征;即鲁棒性、可恢复性和适应性。评价结果表明,微胶囊内愈合剂的释放和扩展微裂缝的愈合过程使得微胶囊化自愈混凝土具有比常规混凝土更高的回弹性。通过参数敏感性分析,研究了修复后微裂纹的修复效率、外加初始损伤和断裂韧性对微囊化自愈混凝土回弹的影响。结果表明,较高的修复效率和施加的初始损伤导致修复后的微裂纹具有较高的回弹率,修复后微裂纹的断裂韧性对修复结果影响较小。研究结果为地下结构自愈材料层的回弹设计奠定了理论基础。
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来源期刊
International Journal of Damage Mechanics
International Journal of Damage Mechanics 工程技术-材料科学:综合
CiteScore
8.70
自引率
26.20%
发文量
48
审稿时长
5.4 months
期刊介绍: Featuring original, peer-reviewed papers by leading specialists from around the world, the International Journal of Damage Mechanics covers new developments in the science and engineering of fracture and damage mechanics. Devoted to the prompt publication of original papers reporting the results of experimental or theoretical work on any aspect of research in the mechanics of fracture and damage assessment, the journal provides an effective mechanism to disseminate information not only within the research community but also between the reseach laboratory and industrial design department. The journal also promotes and contributes to development of the concept of damage mechanics. This journal is a member of the Committee on Publication Ethics (COPE).
期刊最新文献
Formulation and verification of an anisotropic damage plasticity constitutive model for plain concrete On effective moduli of defective beam lattices via the lattice green’s functions Multi-scale study on the fatigue mechanical properties and energy laws of thermal-damage granite under fatigue loading A comparative study on combined high and low cycle fatigue life prediction model considering loading interaction Micro-damage instability mechanisms in composite materials: Cracking coalescence versus fibre ductility and slippage
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