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A Continuum Damage Model for Intralaminar Progressive Failure Analysis of CFRP Laminates Based on the Modified Puck’s Theory

机译:基于修正圆盘理论的CFRP层压板腹腔内渐进破坏分析的连续损伤模型

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摘要

A continuum damage model is proposed to predict the intralaminar progressive failure of CFRP laminates based on the modified Puck’s theory. Puck’s failure criteria, with consideration of the in situ strength effect, are employed to evaluate the onset of intralaminar failure including fiber fracture and inter-fiber fracture. After damage initiation, a bilinear constitutive relation is used to describe the damage evolution process. In strict accordance with Puck’s concept of action plane, the extent of damage is quantified by the damage variables defined in the fracture plane coordinate system, rather than the traditional material principal coordinate system. Theoretical and experimental evaluation of CFRP laminates under different loading conditions demonstrates the rationality and effectiveness of the proposed numerical model. The model has been successfully implemented in a finite element (FE) software to simulate the intralaminar progressive failure process of CFRP laminates. A good agreement between the experimental and numerical results demonstrates that the present model is capable of predicting the intralaminar failure of CFRP laminates.
机译:提出了一种连续损伤模型,根据改进的Puck理论预测CFRP层压板的层内渐进破坏。考虑到原位强度效应,采用Puck的破坏准则来评估层内破坏的发生,包括纤维断裂和纤维间断裂。损伤开始后,使用双线性本构关系描述损伤演化过程。严格按照帕克(Puck)的作用平面的概念,破坏程度是由断裂平面坐标系(而不是传统的材料主坐标系)中定义的破坏变量来量化的。 CFRP层压板在不同载荷条件下的理论和实验评估证明了所提出数值模型的合理性和有效性。该模型已在有限元(FE)软件中成功实现,以模拟CFRP层压板的层内渐进破坏过程。实验和数值结果之间的良好一致性表明,本模型能够预测CFRP层压板的层内破坏。

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