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首页> 外文期刊>International Journal of Fracture >Compressive response and failure of fiber reinforced unidirectional composites
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Compressive response and failure of fiber reinforced unidirectional composites

机译:纤维增强单向复合材料的压缩响应和破坏

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The compressive response of polymer matrix fiber reinforced unidirectional composites (PMC's) is investigated via a combination of experiment and analysis. The study accounts for the nonlinear constitutive response of the polymer matrix material and examines the effect of fiber geometric imperfections, fiber mechanical properties and fiber volume fraction on the measured compressive strength and compressive failure mechanism. Glass and carbon fiber reinforced unidirectional composite specimens are manufactured in-house with fiber volume fractions ranging over 10 approx 60 percent. Compression test results with these specimens show that carbon fiber composites have lower compressive strengths than glass fiber composites. Glass fiber composites demonstrate a splitting failure mode for a range of low fiber volume fractions and a simultaneous splitting/kink banding failure mode for high fiber volume fractions. Carbon fiber composites show kink banding throughout the range of fiber volume fractions examined. Nonlinear material properties of the matrix, orthotropic material properties of the carbon fiber, initial geometric fiber imperfections and nonuniform fiber volume fraction are all included in an appropriate finite element analysis to explain some of the observed experimental results. A new analytical model prediction of the splitting failure mode shows that this failure mode is favorable for glass fiber composites, which is in agreement with test results. Furthermore, this model is able to show the influence of fiber mechanical properties, fiber volume fraction and fiber geometry on the splitting failure mode.
机译:通过实验和分析相结合,研究了聚合物基纤维增强单向复合材料(PMC)的压缩响应。该研究考虑了聚合物基体材料的非线性本构响应,并研究了纤维几何缺陷,纤维机械性能和纤维体积分数对测得的抗压强度和压缩破坏机理的影响。玻璃和碳纤维增强的单向复合材料试样是在内部制造的,纤维体积分数在10%到60%之间。这些样品的压缩测试结果表明,碳纤维复合材料的抗压强度比玻璃纤维复合材料低。玻璃纤维复合材料表现出一系列低纤维体积分数的分裂破坏模式,同时表现出高纤维体积分数的分裂/纠缠带破坏模式。碳纤维复合材料在检查的纤维体积分数范围内均显示扭结带。适当的有限元分析中包括了基体的非线性材料特性,碳纤维的正交各向异性材料特性,初始几何纤维缺陷和不均匀的纤维体积分数,以解释一些观察到的实验结果。对分裂破坏模式的新分析模型预测表明,这种破坏模式对于玻璃纤维复合材料是有利的,这与测试结果一致。此外,该模型能够显示纤维机械性能,纤维体积分数和纤维几何形状对分裂破坏模式的影响。

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