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Prediction of biaxial failure envelopes for composite laminates based on Generalized Method of Cells

机译:基于单元格广义方法的复合材料层合板双轴破坏包络预测

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摘要

Macro/micromulti-scale analysis based on the efficient implementation of the Generalized Method of Cells coupled with classical lamination theory was conducted to predict failure of composite laminates, applying failure criteria at the constituent level, including fiber, matrix and interface. Representative unit cells with different fiber arrays were constructed in order to study the effect of reinforcement architec ture and failure criteria on strength prediction of composite laminates. In order to compare the microm echanics model's accuracy with commonly-used macroscopic failure theories, the experimental data obtained from the Worldwide Failure Exercise (WWFE) was utilized, and a quantitative assessment method for failure envelopes was developed to evaluate the model's performance. Finally, the types of representative unit cell architectures and failure theories which are applicable for different layups were identified. The results indicate that the predictive performance of the employed micromechanics-based model is closest to the three leading macroscopic failure criteria of Puck, Cuntze and Tsai-Wu, and better than all other microscopic-based failure criteria (Chamis, Mayes, Huang), employed in the WWFE study.
机译:在有效实施通用电池方法的基础上,结合经典层压理论,进行了宏观/微观多尺度分析,以预测复合材料层压板的失效,并在包括纤维,基质和界面在内的组成层面应用了失效标准。为了研究增强结构和破坏准则对复合材料层压板强度预测的影响,构建了具有不同纤维阵列的代表性晶胞。为了将微米力学模型的精度与常用的宏观失效理论进行比较,利用从全球失效演习(WWFE)获得的实验数据,开发了一种定量评估失效包络的方法,以评估模型的性能。最后,确定了适用于不同叠层的代表性晶胞结构和失效理论的类型。结果表明,采用的基于微观力学的模型的预测性能最接近Puck,Cuntze和Tsai-Wu的三个主要宏观失效准则,并且优于所有其他基于微观的失效准则(Chamis,Mayes,Huang),在WWFE研究中受雇。

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