Analysis of creep crack growth in bonded joints based on a Paris' law-like approach

IF 3.2 3区 材料科学 Q2 ENGINEERING, CHEMICAL
E. Meulman , J. Renart , L. Carreras , J. Zurbitu
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引用次数: 0

Abstract

Creep crack growth is one of the factors that could affect the durability of a bonded joint and compromise the safety of structures over long periods of time. However, numerical tools and test methods relating to creep crack growth in bonded joints are not widely available yet. In this work, a Creep Crack Growth Model (CCGM) is proposed for adhesively bonded joints. The model describes the relation between the crack growth rate and the energy release rate. The CCGM is fitted with results from Roller Wedge Driven creep crack growth (RWDC) tests and validated against the results obtained from tapered double cantilever beam (TDCB) tests with a constant load applied. Additionally, it is demonstrated that the proposed model can be introduced in a fatigue tool commercially available from the finite element method (FEM) code Abaqus to predict creep crack growth. The FEM results show that the phenomenological expression fitted from experimental tests results, which is used as input for the FEM tool, is reproduced with accuracy. Moreover, it is shown that the CCGM is capable of predicting creep crack growth rates when a different specimen geometry is used, thus demonstrating that the model correctly captures the physics of the problem.

基于类巴黎定律方法的粘接接头蠕变裂纹增长分析
蠕变裂纹生长是影响粘接接头耐久性和长期结构安全的因素之一。然而,与粘接接头蠕变裂纹增长相关的数值工具和测试方法尚未普及。在这项工作中,针对粘合剂粘接接头提出了蠕变裂纹增长模型(CCGM)。该模型描述了裂纹生长率与能量释放率之间的关系。CCGM 与辊楔驱动蠕变裂纹增长(RWDC)测试结果相匹配,并与施加恒定载荷的锥形双悬臂梁(TDCB)测试结果进行了验证。此外,研究还证明,可以在有限元法(FEM)代码 Abaqus 的商用疲劳工具中引入所建议的模型,以预测蠕变裂纹的增长。有限元法结果表明,根据实验测试结果拟合的现象表达式(作为有限元法工具的输入)得到了准确再现。此外,研究还表明,当使用不同的试样几何形状时,CCGM 能够预测蠕变裂纹的生长率,从而证明该模型正确地捕捉到了问题的物理现象。
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来源期刊
International Journal of Adhesion and Adhesives
International Journal of Adhesion and Adhesives 工程技术-材料科学:综合
CiteScore
6.90
自引率
8.80%
发文量
200
审稿时长
8.3 months
期刊介绍: The International Journal of Adhesion and Adhesives draws together the many aspects of the science and technology of adhesive materials, from fundamental research and development work to industrial applications. Subject areas covered include: interfacial interactions, surface chemistry, methods of testing, accumulation of test data on physical and mechanical properties, environmental effects, new adhesive materials, sealants, design of bonded joints, and manufacturing technology.
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