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Experimental and Computational Investigations of Process-induced Stress Effects on the Interlaminar Fracture Toughness of Hybrid Composites

机译:过程诱导应力对混杂复合材料层间断裂韧性影响的实验和计算研究

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Hybrid composites allow designers to develop efficient structures, whichstrategically exploit a material’s strengths while mitigating possible weaknesses.However, elevated temperature curing processes and exposure to thermally-extremeservice environments lead to the development of residual stresses. These stressesform at the hybrid composite’s bi-material interfaces, significantly impacting thestress state at the crack tip of any pre-existing flaw within the structure and affectingthe probability that small defects will grow into large-scale delaminations. Therefore,in this study, a carbon fiber reinforced composite (CFRP) is co-cured with a glassfiber reinforced composite (GFRP), and the mixed-mode fracture toughness ismeasured across a wide temperature range (-54°C to +71°C). Upon completion of thetesting, the measured results and observations are used to develop high-fidelity finiteelement models simulating both the formation of residual stresses throughout thecomposite manufacturing process, as well as the mixed-mode testing of the hybridcomposite. The stress fields predicted through simulation assist in understanding thetrends observed during the completed experiments. Furthermore, the modeledpredictions indicate that failure to account for residual stress effects during theanalysis of composite structures could lead to non-conservative structural designs andpremature failure.
机译:混合复合材料使设计师能够开发高效的结构,从而 从战略上利用材料的优势,同时减轻可能的劣势。 但是,高温固化过程和暴露于极热状态 服务环境导致残余应力的发展。这些压力 混合复合材料的双材料界面处的形状,极大地影响了 结构内任何预先存在的裂纹的裂纹尖端处的应力状态并影响 小缺陷将发展为大规模分层的可能性。所以, 在这项研究中,碳纤维增强复合材料(CFRP)与玻璃共固化 纤维增强复合材料(GFRP),其混合模式断裂韧性为 在较宽的温度范围(-54°C至+ 71°C)下测量。完成后 测试,测量结果和观察结果用于开发高保真有限 单元模型模拟整个过程中残余应力的形成 复合材料制造过程以及混合动力的混合模式测试 合成的。通过模拟预测的应力场有助于理解 在完成的实验中观察到的趋势。此外,建模 预测表明,在计算过程中未能考虑残余应力的影响。 复合结构的分析可能会导致非保守的结构设计,并且 过早的失败。

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