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Mechanism based failure of 3D-printed continuous carbon fiber reinforced thermoplastic composites

机译:基于机理的3D印刷连续碳纤维增强热塑性复合材料的失效

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摘要

The present work describes a computational mechanism based failure analysis conducted for 3D-printed continuous carbon fiber reinforced thermoplastic composites (CFRTPCs), which could not be seen in the available literature. The material failure is investigated based on intraply failure evaluation and adopts different failure criteria for the material constituents. The micromechanical modeling employs the Asymptotic Homogenization technique and comprises the selection of a representative volume element statistically equivalent to the microstructure of the material, which is identified from cross-section micrographs. In contrast to recent work, it is demonstrated that an additional relation is required for the macroscopic deviatoric stresses acting over the matrix. This avoids an overestimation of the matrix failure when the reinforced lamina is subjected to longitudinal and shear loads. The resulting failure envelopes are presented and compared to those provided by analytical failure theories available in the literature. The results obtained by the micromechanical approach showed its ability to predict failure of 3D-printed CFRTPCs, in addition to bring different elements for the discussion that could not be captured with analytical models. In this context, it is believed that the characteristics inherent to the microstructure reproduced in the RVE, particularly contributed to obtaining more realistic failure envelopes.
机译:本作者描述了用于3D印刷连续碳纤维增强热塑性复合材料(CFRTPC)的基于计算机制的失效分析,这在可用文献中无法看到。基于对施力故障评估研究了材料故障,采用了材料成分的不同故障标准。微机械建模采用渐近均质化技术,并包括选择统计上等于材料的微观结构的代表性体积元素,其从截面显微照片中鉴定。与最近的工作相比,证明了作用于基质的宏观偏离引伸的额外关系。这避免了当加强薄片经受纵向和剪切载荷时高估矩阵故障。呈现并将所产生的故障包络提供并与文献中可用的分析故障理论提供的那些进行比较。通过微机械方法获得的结果表明其能够预测3D印刷CFRTPC的失效,除了为无法用分析模型捕获的讨论提供不同的元素。在这种情况下,据信,在RVE中再现的微观结构固有的特征,特别是为了获得更现实的故障信封。

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