A coupled thermo-chemo-mechanical peridynamic model for predicting process-induced residual stress in fiber-reinforced polymer composites

IF 7.3 1区 工程技术 Q1 ENGINEERING, MULTIDISCIPLINARY Computer Methods in Applied Mechanics and Engineering Pub Date : 2025-03-04 DOI:10.1016/j.cma.2025.117891
Weikang Sun , Jiaxiang Liew , Zhifei Tan , Yang Zhang , Binbin Yin
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Abstract

Fiber reinforced polymer (FRP) composites have extensive applications in aerospace, automobile, marine and sports industries, however, the process-induced residual stress developed during the cure process can lead to microcracks and weaken the macroscopic mechanical performance. In this work, we developed a multiscale PD framework for modeling thermo-chemo-mechanical behaviors of FRP composites for the first time. The whole cure process is modeled by a macroscale thermo-chemical coupling behavior of the FRP specimen followed by a microscale thermo-chemo-mechanical coupling process of the representative volume element (RVE) taken from the macro specimen. After the multiscale cure modeling, the resulted residual stress distribution is maintained when applying the mechanical loading. The proposed PD framework was validated by examining the temperature and degree of cure histories and the stress-strain curves against experimental data. The effects of periodic boundary condition (PBC) treatments, fiber content, fiber distribution and chemical shrinkage are explored. Cure-induced residual stress can amplify the local stress concentration and damage in the fiber‒matrix interfaces. Results show that PBC treatments have negligible influence on the final damage distribution while the fiber content and distribution can pose huge impact on the strain and stress history of the RVE. In addition, chemical shrinkage can complicate the stress state and impact the mechanical response of composites. This model can serve as a potential tool for predicting the process-induced residual stress and damage and contributes to improved composites designs.
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纤维增强聚合物复合材料过程残余应力的热-化学-力学耦合动力学模型
纤维增强聚合物(FRP)复合材料在航空航天、汽车、船舶和体育等领域有着广泛的应用,但在固化过程中产生的过程诱发残余应力会导致材料产生微裂纹,从而削弱其宏观力学性能。在这项工作中,我们首次开发了一个多尺度PD框架来模拟FRP复合材料的热化学力学行为。整个固化过程由宏观尺度的FRP试件热化学耦合行为和微观尺度的代表体积元(RVE)的热化学-力学耦合过程来模拟。多尺度固化建模后,在施加机械载荷时,得到的残余应力分布保持不变。通过研究温度和固化历史以及与实验数据相对应的应力-应变曲线,验证了所提出的PD框架。探讨了周期边界条件(PBC)处理、纤维含量、纤维分布和化学收缩率的影响。固化残余应力会放大纤维-基体界面的局部应力集中和损伤。结果表明,PBC处理对RVE最终损伤分布的影响可以忽略不计,而纤维含量和分布对RVE的应变和应力历史影响很大。此外,化学收缩会使复合材料的应力状态复杂化,影响复合材料的力学响应。该模型可以作为一个潜在的工具来预测过程中引起的残余应力和损伤,并有助于改进复合材料的设计。
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来源期刊
CiteScore
12.70
自引率
15.30%
发文量
719
审稿时长
44 days
期刊介绍: Computer Methods in Applied Mechanics and Engineering stands as a cornerstone in the realm of computational science and engineering. With a history spanning over five decades, the journal has been a key platform for disseminating papers on advanced mathematical modeling and numerical solutions. Interdisciplinary in nature, these contributions encompass mechanics, mathematics, computer science, and various scientific disciplines. The journal welcomes a broad range of computational methods addressing the simulation, analysis, and design of complex physical problems, making it a vital resource for researchers in the field.
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