一种模拟弹塑性纤维增强复合材料多种破坏机制的相场黏结区框架

IF 2.2 3区 工程技术 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY International Journal of Fracture Pub Date : 2023-06-28 DOI:10.1007/s10704-023-00712-z
Zhaoyang Hu, Xufei Suo, Minjuan Wang, Feng Jiang, Hao Huang, Yongxing Shen
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引用次数: 0

摘要

金属基纤维增强复合材料的力学性能复杂地取决于其结构的许多方面。本文提出了一个相场-内聚区框架,通过数值模拟研究金属基纤维增强弹塑性复合材料中的界面剥离、基体开裂及其竞争关系。该方法结合了用于界面脱粘的显式内聚区模型和用于基体开裂的相场模型。该框架的特点是(1) 无需跟踪裂纹,即可模拟裂纹的扩展和分支;(2) 界面脱粘由内聚区模型描述,不会直接受到块体相场的干扰;(3) 内聚界面的厚度为零,而不是正则化的;(4) 只需很少的约束条件,即可轻松纳入任何合理的内聚法则;(5) 可捕捉基体开裂和界面脱粘这两种失效机制之间的竞争。现有的分析和数值结果验证了这一框架的准确性。所提出的框架显示了研究复合材料中各种复杂裂纹行为的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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A phase-field-cohesive-zone framework to simulate multiple failure mechanisms of elastoplastic fiber-reinforced composites

The mechanical properties of metal matrix fiber-reinforced composites depend on many aspects of their structure in a complicated way. In this paper, we propose a phase-field-cohesive-zone framework to study interface debonding, matrix cracking, and their competition in metal matrix fiber-reinforced elastoplastic composites by numerical simulation. This approach combines an explicit cohesive zone model for interface debonding and a phase field model for matrix cracking. The features of this framework are: (1) crack propagation and branching can be simulated without the need to track the cracks; (2) the interface debonding is described by the cohesive zone model, and is not directly interfered by the phase field in the bulk; (3) the cohesive interface has zero thickness instead of being regularized; (4) any reasonable cohesive law of interest is readily incorporated with very few constraints; (5) the competition of the two failure mechanisms, namely, matrix cracking and interface debonding, is captured. Accuracy of this framework is verified with existing analytical and numerical results. The proposed framework shows a potential in investigating various complicated crack behaviors in composites.

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来源期刊
International Journal of Fracture
International Journal of Fracture 物理-材料科学:综合
CiteScore
4.80
自引率
8.00%
发文量
74
审稿时长
13.5 months
期刊介绍: The International Journal of Fracture is an outlet for original analytical, numerical and experimental contributions which provide improved understanding of the mechanisms of micro and macro fracture in all materials, and their engineering implications. The Journal is pleased to receive papers from engineers and scientists working in various aspects of fracture. Contributions emphasizing empirical correlations, unanalyzed experimental results or routine numerical computations, while representing important necessary aspects of certain fatigue, strength, and fracture analyses, will normally be discouraged; occasional review papers in these as well as other areas are welcomed. Innovative and in-depth engineering applications of fracture theory are also encouraged. In addition, the Journal welcomes, for rapid publication, Brief Notes in Fracture and Micromechanics which serve the Journal''s Objective. Brief Notes include: Brief presentation of a new idea, concept or method; new experimental observations or methods of significance; short notes of quality that do not amount to full length papers; discussion of previously published work in the Journal, and Brief Notes Errata.
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