采用超吸收聚合物(SAP)的水泥基复合材料的多尺度微机械渐进弹性损伤模型

IF 4 2区 工程技术 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY International Journal of Damage Mechanics Pub Date : 2024-04-23 DOI:10.1177/10567895241247996
Aiqing Xu, Xiaoyan Man, J Woody Ju
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引用次数: 0

摘要

本研究建立了一个基于多尺度微观力学的渐进损伤模型,用于研究单轴拉伸条件下以超吸收聚合物(SAP)为特征的水泥基复合材料的整体力学行为和界面微裂纹演变。该模型系统地整合了水泥基复合材料的弹性特性、渐进损伤过程和均质化程序。复合材料的有效弹性模量是基于多尺度微观力学框架确定的。根据小应变假设,总应变张量和弹性-损伤顺应性张量被加法分解为弹性成分和损伤诱导成分。然后从微力学推导出损伤诱导应变和顺应性。为了描述微裂缝引起的渐进弹性损伤,可从界面接触应力和基体裂缝应力中确定微裂缝扩展的阶段。通过分布式位错法推导出了扭结界面裂纹的复势和应力强度因子。通过均质化处理,可以从微观/宏观尺度获得宏观力学行为。结果表明,材料参数具有明显的力学意义。不同的参数,如 SAP 添加比、骨料含量、初始界面裂纹尺寸和初始界面裂纹位置,都对复合材料的整体力学行为有影响。所提出的模型可以推广到其他具有不同成分特性的颗粒增强复合材料,从而为耐用复合材料的设计和优化做出潜在贡献。
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A multiscale micromechanical progressive elastic-damage model for cementitious composites featuring superabsorbent polymer (SAP)
A multiscale micromechanics-based progressive damage model is developed to investigate the overall mechanical behavior and the interfacial microcrack evolutions of the cementitious composites featuring superabsorbent polymer (SAP) under uniaxial tension. Elastic properties, progressive damage process, and homogenization procedure of cementitious composites are systematically integrated in this model. The effective elastic moduli of the composites are determined based on a multiscale micromechanical framework. According to the small strain assumption, the total strain tensor and the elastic-damage compliance tensor are additively decomposed into elastic and damage-induced components. The damage-induced strains and compliances are then deduced from micromechanics. To characterize the progressive elastic-damage induced by microcracks, stages of microcrack propagation are identified from the interface contact stress and the matrix cleavage stress. The complex potentials and stress intensity factors for kinked interface cracks are derived from the distributed dislocations method. By implementing the homogenization process, the macroscopic mechanical behavior is obtained from the micro/mesoscale. The results indicate that the material parameters have clear mechanical significance. Different parameters, such as the SAP addition ratio, aggregate content, initial interfacial crack size, and initial interfacial crack location, are revealed to be influential in the overall mechanical behavior of the composites. The proposed model can be generalized to other particle-reinforced composites with different constituent properties, which can potentially contribute to the design and optimization of durable composites.
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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).
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