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Extended finite element method (XFEM) analysis of fiber reinforced composites for prediction of micro-crack propagation and delaminations in progressive damage: a review

机译:纤维增强复合材料的扩展有限元方法(XFEM)分析,用于预测渐进式损伤中的微裂纹传播和分层:综述

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摘要

Various methodologies and frameworks have been developed for extended finite element method (XFEM) to simulate two-dimensional and three-dimensional microcrack initiation and propagation through versatile material models for structures. In addition, mixed-mode cohesive zone is investigated and estimated for delamination, matrix cracking and fiber breakage in composite laminate models. The validation of Multiscale modeling for the fiber uniformity during the tensile behavior, prediction of crack and properties of composite material analyzed by XFEM modeling for the damage modes and comparison with the experimental work and the author's recent experimental case study is presented. The further development is application of extended cohesive damage modelling (ECDM) without the additional complications of degrees of freedom and effective simulation of multicrack propagation and damage model. The capabilities of ECDM to work for single mode delamination and mixed mode delamination with a better efficiency and accuracy are well explained. The study simplifies the application of extended FEM for the prediction of multiple cracks applied to carbon fiber reinforced composites (CFRCs), hence provides a better understanding for extended cohesive damage modelling for the recent developments.
机译:已经为扩展有限元方法(XFEM)开发了各种方法和框架,以模拟二维和三维微裂纹启动和通过用于结构的多功能材料模型的传播。此外,研究和估计混合模式的粘性区域进行分层,基质裂化和复合层压板模型中的纤维破裂。鉴于纤维均匀性在拉伸行为期间的验证,XFEM建模对损伤模式分析的复合材料的预测及与实验工作的比较及作者最近的实验案例研究。进一步的开发是在没有额外的自由度和有效模拟多架传播和损伤模型的情况下应用扩展粘性损伤建模(ECDM)的应用。 ECDM为单模分层和混合模式分层的工作能力得到了很好的解释。该研究简化了扩展有限元的应用,以便预测施加到碳纤维增强复合材料的多个裂缝(CFRC),因此对近期发展的延长内聚损伤建模提供了更好的理解。

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